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The Coordination Committee formed by GR No. Abhyas - 2116/(Pra.Kra.43/16) SD - 4, Dated 25.4.2016 has given approval to prescribe this textbook in its meeting held on, 20.06.2019 and it has been decided to implement it from academic year 2019-20., , PHYSICS, Standard XI, , Download DIKSHA App on your smartphone. If you scan the Q.R.Code on, this page of your textbook, you will be able to access full text. If you scan, the Q.R.Code provided, you will be able to access audio-visual study, material relevant to each lesson, provided as teaching and learning aids., , 2019, , Maharashtra State Bureau of Textbook Production and, Curriculum Research, Pune.
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The Constitution of India, , Preamble, WE, THE PEOPLE OF INDIA, having, solemnly resolved to constitute India into a, SOVEREIGN, SOCIALIST, SECULAR, DEMOCRATIC REPUBLIC and to secure to, all its citizens:, JUSTICE, social, economic and political;, LIBERTY of thought, expression, belief, faith, and worship;, EQUALITY of status and of opportunity;, and to promote among them all, FRATERNITY assuring the dignity of, the individual and the unity and integrity of the, Nation;, IN OUR CONSTITUENT ASSEMBLY this, twenty-sixth day of November, 1949, do HEREBY, ADOPT, ENACT AND GIVE TO OURSELVES, THIS CONSTITUTION.
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NATIONAL ANTHEM
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Preface, Dear Students,, , It is a matter of pleasure and pride to place this exposition on basic physics in the, hands of the young generation. This is not only textbook of physics for standard XI class , but, embodies material which will be useful for self-study., This textbook aims to create awareness about Physics. The National Curriculum Framework, (NCF) was formulated in the year 2005, followed by the State Curriculum Framework (SCF), in 2010. Based on the given two frameworks, reconstruction of the curriculum and preparation, of a revised syllabus has been undertaken which will be introduced from the academic year, 2019-20. The textbook incorporating the revised syllabus has been prepared and designed by, the Maharashtra State Bureau of Textbook Production and Curriculum Research, (Balbharati),, Pune., The purpose of the book is to prepare a solid foundation for further studies in physics at, the standard XII class. Proficiency in science in general and physics in particular is a basic, requirement for the professional courses such as engineering and medicine etc., apart from, the graduation courses in science itself. With this point of view , each chapter is prepared with, elementary level and encompassing the secondary school level physics to the higher secondary, level. Most of the topics are explained lucidly and in sufficient details, so that the students, understand them well. A number of illustrative examples and figures are included to enlighten, the student proficiency .With this background, the student is expected to solve the exercises, given at the end of the chapters. For students who want more, Internet sites for many topics have, been provided. They can enjoy further reading., After all, physics is a conceptual subject. Knowledge about physical phenomena, is gained as a natural consequence of observation, experience and revelation upon problem, solving., The book is written with this mind-set. The curriculum and syllabus conforms to the, maxims of teaching such as moving from concrete to abstract, known to unknown and from, part to the whole. For the first time, in this textbook of Physics, various activities have been, introduced. These activities will not only help to develop understanding the content but also, provide scope of the for gaining relevant and additional knowledge on your own efforts. A, detailed information of all concepts is also given for a better understanding of the subject., QR Codes have been introduced for gaining additional information, abstracts of chapters and, practice questions/ activities., The efforts taken to prepare the textbook will not only enrich the learning experiences of, the students, but also benefit other stakeholders such as teachers, parents as well as candidates, aspiring for the competitive examinations., We look forward to a positive response from the teachers and students., Our best wishes to all!, , Pune, Date : 20 June 2019, Bhartiya Saur : 30 Jyeshtha 1941, , (Dr. Sunil Magar), Director, Maharashtra State Bureau of, Textbook Production and, Curriculum Research, Pune 4
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- For Teachers -, , P, , P, , P, P, P, , Dear Teachers,, We are happy to introduce the revised, textbook of Physics for Std XI. This book, is a sincere attempt to follow the maxims, of teaching as well as develop a, ‘constructivist’ approach to enhance the, quality of learning. The demand for more, activity based, experiential and innovative, learning opportunities is the need of the, hour. The present curriculum has been, restructured so as to bridge the credibility, gap that exists between what is taught and, what students learn from direct experience, in the outside world. Guidelines provided, below will help to enrich the teachinglearning process and achieve the desired, learning outcomes., To begin with, get familiar with the, textbook yourself, and encourage the, students to read each chapter carefully., The present book has been prepared for, constructivist and activity-based teaching,, including problem solving exercises., Use teaching aids as required for proper, understanding of the subject., Do not finish the chapter in short., Follow the order of the chapters strictly as, listed in the contents because the units are, introduced in a graded manner to facilitate, knowledge building., , P 'Error in measurements' is an important, topic in physics. Please ask the students to, use this in estimating errors in their, measurements. This must become an, integral part of laboratory practices., P Major concepts of physics have a scientific, base. Encourage group work, learning, through each other’s help etc. Facilitate, peer learning as much as possible by, reorganizing the class structure frequently., P Do not use the boxes titled ‘Do you know?’, for evaluation. However, teachers must, ensure that students read this extra, information., P For evaluation, equal weightage should be, assigned to all the topics. Use different, combinations of questions. Stereotype, questions should be avoided., P Use QR Code given in the textbook. Keep, checking the QR Code for updated, information. Certain important links, websites, have been given for references. Also a list, of reference books is given. Teachers as well, as the students can use these references for, extra reading and in-depth understanding of, the subject., Best wishes for a wonderful teaching, experience!, , References:, 1. Fundamentals of Physics - Halliday, Resnick, Walker; John Wiley (sixth ed.)., 2. Sears and Zeemansky's University Physics - Young and Freedman, Pearson Education (12th ed.), 3. Physics for Scientists and Engineers - Lawrence S. Lerner; Jones and Bartlett Publishers, UK., , Front Page : Figure shows the LIGO laboratory in the United States of America and the inset shows the trace of, gravity waves detected upon the merger of two black holes. In the background is the artist's impression of planets, and galaxies., Since ages, mankind is awed by the sheer scale of the universe and is trying to understand the laws governing the, same. Today we observe the events in the universe with highly sophisticated instruments and laboratories such as, the LIGO project seen on the cover. Picture Credit: Caltech/ MIT/ LIGO laboratory., Figure Credit : B. P. Abott et al. Physical Review letts 116, 061102, 2016, DISCLAIMER Note : All attempts have been made to contact copy right/s (©) but we have not heard from them. We will, be pleased to acknowledge the copy right holder (s) in our next edition if we learn from them.
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Competency Statements, Standard XI, Area/ Unit/, Lesson, Units and, Mathematical, Tools, , Motion and, Gravitation, , Properties of, Matter, , Sound and Optics, , •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, , Competency Statements, After studying the content in Textbook student …, Distinguish between fundamental and derived quantities., Distinguish between different system of units and their use., Identify methods to be used for measuring lengths and distances of varying magnitudes., Check correctness of physical equations using dimensional analysis., Establish the relation between related physical quantities using dimensional analysis., Find conversion factors between the units of the same physical quantity in two different, sets of units., Identify different types of errors in measurement of physical quantities and estimate them., Identify the order of magnitude of a given quantity and the significant figures in them., Distinguish between scalar and vector quantities., Perform addition, subtraction and multiplication (scalar and vector product) of vectors., Determine the relative velocity between two objects., Obtain derivatives and integrals of simple functions., Obtain components of vectors., Apply mathematical tools to analyze physics problems., Visualize motions in daily life in one, two and three dimensions., Explain the necessity of Newton’s first law of motion., Categorize various forces of nature into four fundamental forces., State various conservation principles and use these in daily life situations., Derive expressions and evaluate work done by a constant force and variable force., Organize/categorize the common principles between collisions and explosions., Explain the necessity of defining impulse and apply it to collisions, etc., Elaborate the limitations of Newton’s laws of motion., Elaborate different types of mechanical equilibria with suitable examples., Apply the Kepler’s laws of planetary motion to solar system., Elaborate Newton’s law of gravitation., Calculate the values of acceleration due to gravity at any height above and depth below, the earth’s surface., Distinguish between different orbits of earth’s satellite., Explain how escape velocity varies from planet., Explain weightlessness in a satellite., Explain the difference between elasticity and plasticity, Identify elastic limit for a given material., Differentiate between different types of elasticity modules., Judge the suitability of materials for specific applications in daily life appliances., Identify the role of force of friction in daily life., Differentiate between good and bad conductors of heat., Relate underlying physics for use of specific materials for use in thermometers for specific, applications., Apply and relate various parameters related to wave motion., Compare various types of waves with common features and distinguishing features., Analytically relate the factors on which the speed of sound and speed of light depends., Explain the essential factor to describe wave propagation and relate it with phase angle., Apply the laws of reflection to light., Mathematically describe the Doppler effect for sound waves., Apply the laws of refraction to common phenomena in daily life like, a mirage or a, rainbow., Identify the defects in images obtained by mirrors and lenses, with their cause and ways of, reducing or eliminating them., Explain the construction and use of various optical instruments such as a microscope, a, telescope, etc., Relate dispersion of light with colour and apply it analytically with the help of prisms.
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•, , Electricity and, Magnetism, , Communication, and, Semiconductors, , •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, •, , Describe dispersive power as a basic property of transparent materials and relate it with, their refractive indices., Analyze the time taken to receive an echo and calculate distance to the reflecting object., Explain reverberation and acoustics., Distinguish between conductors and insulators., Apply coulomb’s law and obtain the electric field due to a certain distribution of charges., Define dipole, obtain the dipolar field., Relate the drift of electrons in a conductor to resistivity, Calculate resistivity at various temperature., Connect resistors in series and parallel combination., Compare electric and magnetic fields., Draw electric and magnetic lines of force., Obtain magnetic parameters of the Earth., Solve numerical and analytical problems., Explain the properties of an electromagnetic wave., Distinguish between mechanical waves and electromagnetic waves., Identify different types of electromagnetic radiations from γ- rays to radio waves., Distinguish between different modes of propagation of EM waves through earth’s, atmosphere., Identify different elements of a communication system., Explain different types of modulation and identify the types of modulation needed in given, situation., Distinguish between conductors, insulators and semiconductors based on band structure., Differentiate between p type and n type semiconductors and their uses., Explain working of forward and reverse biased junction., Explain the working of semiconductor diode., , CONTENTS, Sr. No, , Title, , Page No, , 1, , Units and Measurements, , 1-15, , 2, , Mathematical Methods, , 16-29, , 3, , Motion in a Plane, , 30-46, , 4, , Laws of Motion, , 47-77, , 5, , Gravitation, , 78-99, , 6, , Mechanical Properties of Solids, , 100-113, , 7, , Thermal Properties of Matter, , 114-141, , 8, , Sound, , 142-158, , 9, , Optics, , 159-187, , 10, , Electrostatics, , 188-206, , 11, , Electric Current Through Conductors, , 207-220, , 12, , Magnetism, , 221-228, , 13, , Electromagnetic Waves and Communication System, , 229-241, , 14, , Semiconductors, , 242-256
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1., , Units and Measurements, , Can you recall?, 1. What is a unit?, 2. Which units have you used in the laboratory for measuring, (i) length (ii) mass (iii) time (iv) temperature?, 3. Which system of units have you used?, , 1.1 Introduction:, Physics is a quantitative science, where, we measure various physical quantities, during experiments. In our day to day life, we, need to measure a number of quantities, e.g.,, size of objects, volume of liquids, amount of, matter, weight of vegetables or fruits, body, temperature, length of cloth, etc. A measurement, always involves a comparison with a standard, measuring unit which is internationally, accepted. For example, for measuring the mass, of a given fruit we need standard mass units, of 1 kg, 500 g, etc. These standards are called, units. The measured quantity is expressed in, terms of a number followed by a corresponding, unit, e.g., the length of a wire is written as 5 m, where m (metre) is the unit and 5 is the value of, the length in that unit. Different quantities are, measured in different units, e.g. length in metre, (m), time in seconds (s), mass in kilogram (kg),, etc. The standard measure of any quantity is, called the unit of that quantity., 1.2 System of Units:, In our earlier standards we have come, across various systems of units namely, (i) CGS: Centimetre Gram Second system, (ii) MKS: Metre Kilogram Second system, (iii) FPS: Foot Pound Second system., (iv) SI: System International, The first three systems namely CGS, MKS, and FPS were used extensively till recently. In, 1971, the 14th International general conference, on weights and measures recommended the, use of ‘International system' of units. This, international system of units is called the, SI units. As the SI units use decimal system,, conversion within the system is very simple and, convenient., , 1.2.1 Fundamental Quantities and Units:, The physical quantities which do not, depend on any other physical quantities for, their measurements are known as fundamental, quantities. There are seven fundamental, quantities: length, mass, time, temperature,, electric current, luminous intensity and amount, of substance., Fundamental units: The units used to measure, fundamental quantities are called fundamental, units. The fundamental quantities, their units, and symbols are shown in the Table 1.1., Table 1.1: Fundamental Quantities with, their SI Units and Symbols, Fundamental quantity SI units, , Symbol, , 1) Length, metre, m, 2) Mass, kilogram kg, 3) Time, second, s, 4) Temperature, kelvin, K, 5) Electric current, ampere A, 6) Luminous Intensity candela cd, 7) Amount of substance mole, mol, 1.2.2 Derived Quantities and Units:, In physics, we come across a large number, of quantities like speed, momentum, resistance,, conductivity, etc. which depend on some or all, of the seven fundamental quantities and can be, expressed in terms of these quantities. These are, called derived quantities and their units, which, can be expressed in terms of the fundamental, units, are called derived units., For example,, SI unit of velocity, Unit of displacement m, �, � � m s �1, Unit of time, s, Unit of momentum = (Unit of mass)×(Unit of, velocity), , 1
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= kg m/s = kg m s-1, Area of the disc of the moon, =, The above two units are derived units., (moon - earth distance) 2, Supplementary units : Besides, the seven, � × (1.737×103 ) 2, =, fundamental or basic units, there are two more, (3.84 ×105 ) 2, units called supplementary units: (i) Plane, = 6.425 � 10-5 sr, angle dθ and (ii) Solid angle dΩ, (i) Plane angle (dθ) : This is the ratio of the, Do you know ?, length of an arc of a circle to the radius of, The relation between radian and degree is, the circle as shown in Fig. 1.1 (a). Thus, π radians = πc = 180°, dθ = ds/r is the angle subtended by the arc, at the centre of the circle. It is measured, in radian (rad). An angle θ in radian is, denoted as θc., (ii) Solid angle (dΩ) : This is the 3-dimensional, analogue of dθ and is defined as the area, of a portion of surface of a sphere to 1.2.3 Conventions for the use of SI Units:, the square of radius of the sphere. Thus (1) Unit of every physical quantity should be, dΩ = dA/r2 is the solid angle subtended by, represented by its symbol., area ds at O as shown in Fig. 1.1 (b). It (2) Full name of a unit always starts with, is measured in steradians (sr). A sphere of, smaller letter even if the name is after a, radius r has surface area 4πr2. Thus, the, person, e.g., 1 newton, 1 joule, etc. But, solid angle subtended by the entire sphere, symbol for unit named after a person, at its centre is Ω = 4πr2/r2 = 4π sr., should be in capital letter, e.g., N after, A, scientist Newton, J after scientist Joule,, etc., ds, (3) Symbols for units do not take plural form, dθ, for example, force of 20 N and not 20, O, B, r, newtons or not 20 Ns., Fig 1.1 (a): Plane angle dθ., (4) Symbols for units do not contain any full, stops at the end of recommended letter,, e.g., 25 kg and not 25 kg.., (5) The units of physical quantities in, dA, numerator and denominator should be, written as one ratio for example the SI, r, unit of acceleration is m/s2 or m s-2 but, not m/s/s., (6) Use of combination of units and symbols, for units is avoided when physical, quantity is expressed by combination of, O, two. e.g., The unit J/kg K is correct while, Fig 1.1 (b): Solid angle dΩ., joule/kg K is not correct., Example 1.1: What is the solid angle subtended (7) A prefix symbol is used before the symbol, by the moon at any point of the Earth, given, of the unit., the diameter of the moon is 3474 km and its Thus prefix symbol and units symbol, distance from the Earth 3.84×108 m., constitute a new symbol for the unit which, Solution: Solid angle subtended by the moon, can be raised to a positive or negative, at the Earth, power of 10., , 2
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1ms = 1 millisecond = 10-3s, 1µs = 1 microsecond = 10-6s, 1ns = 1 nanosecond = 10-9s, Use of double prefixes is avoided when, single prefix is available, 10-6s =1µs and not 1mms., 10-9s = 1ns and not 1mµs, (8) Space or hyphen must be introduced, while indicating multiplication of two, units e.g., m/s should be written as m s-1, or m-s-1 and Not as ms-1 (because ms will, be read as millisecond)., 1.3 Measurement of Length:, One fundamental quantity which we have, , discussed earlier is length. To measure the, length or distance the SI unit used is metre, (m). In 1960, a standard for the metre based, on the wavelength of orange-red light emitted, by atoms of krypton was adopted. By 1983 a, more precise measurement was developed., It says that a metre is the length of the path, travelled by light in vacuum during a time, interval of 1/299792458 second. This was, possible as by that time the speed of light, in vacuum could be measured precisely as, c = 299792458 m/s, Some typical distances/lengths are given in, Table 1.2., , Table 1.2: Some Useful Distances, Measurement, , Length in metre, 2×1022 m, 4×1016 m, 6×1012 m, 6×106 m, 9×103 m, 1×10-4 m, 1×10-8 m, 5×10-11 m, 1×10-15 m, , Distance to Andromeda Galaxy (from Earth), Distance to nearest star (after Sun) Proxima Centuari (from Earth), Distance to Pluto (from Earth), Average Radius of Earth, Height of Mount Everest, Thickness of this paper, Length of a typical virus, Radius of hydrogen atom, Radius of proton, 1.3.1 Measurements of Large Distance:, Parallax method, Large distance, such as the distance of, a planet or a star from the Earth, cannot be, measured directly with a metre scale, so a, parallax method is used for it., Let us do a simple experiment to understand, what is parallax., Hold your hand in front of you and look at, it with your left eye closed and then with your, right eye closed. You will find that your hand, appears to move against the background. This, effect is called parallax. Parallax is defined as, the apparent change in position of an object due, to a change in the position of the observer. By, measuring the parallax angle (θ) and knowing, the distance between the eyes E1E2 as shown in, Fig. 1.2, we can determine the distance of the, object from us, i.e., OP as E1E2/θ., , P, θ, , O, , E1, , O, , E2, , Fig.1.2: Parallax method for determining, distance., As the distances of planets from the Earth, are very large, we can not use two eyes method, as discussed here. In order to make simultaneous, observations of an astronomical object, we, select two distant points on the Earth., Consider two positions A and B on the, surface of Earth, separated by a straight line at, , 3
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Planet, distance b as shown in Fig. 1.3. Two observers, at these two points observe a distant planet S, d, simultaneously. We measure the angle ∠ASB, between the two directions along which the, planet is viewed at these two points. This angle,, D, represented by symbol θ, is the parallax angle., As the planet is far away, i.e., the distance, α, of the planet from the Earth is very large in, comparison to b, b/D << 1 and, therefore, θ is, very small., We can thus consider AB as the arc of, Earth, length b of the circle and D its radius., Fig. 1.4: Measurement of size of a planet, AB = b and AS = BS = D and θ ≅ AB/ D,, 1.3.4 Measurement of Very Small Distances:, where θ is in radian, When we intend to measure the size of, D=b/ θ, A, the atoms and molecules, the conventional, apparatus like Vernier calliper or screw guage, will not be useful. Therefore, we use electron, microscope or tunnelling electron microscope, to measure the size of atoms., B, , Do you know ?, Fig.1.3: Measurement of distances of planets, 1.3.2 Measurement of Distance to Stars:, For measuring large distances, astronomers, Sun is the star which is closest to the use the following units., Earth. The next closest star is at a distance of, 1 astronomical unit, (AU) = 1.496×1011m, 4.29 light years. The parallax measured from, 1 light year = 9.46×1015m, two most distance points on the Earth for stars, 1 parsec (pc) = 3.08×1016m ≅ 3.26 light, will be too small to be measured and for this years, purpose we measure the parallax between two, A light year is the distance travelled, farthest points (i.e. 2 AU apart, see box below) by light in one year. The astronomical unit, along the orbit of the Earth around the Sun (see (AU) is the mean distance between the centre, figure in example 1.2 below)., of the Earth and the centre of the Sun., 1.3.3 Measurement of the Size of a Planet or, A parsec (pc) is the distance from where, a Star:, 1AU subtends an angle of 1 second of arc., If d is the diameter of a planet, the angle, 1″, subtended by it at any single point on the Earth, is called angular diameter of the planet. Let α, be the angle between the two directions when, 1pc, r, two diametrically opposite points of the planet, are viewed through a telescope as shown in Fig., 1AU, Sun, 1.4. As the distance D of the planet is large, (assuming it has been already measured), we, can calculate the diameter of the planet as, d, ��, Example 1.2: A star is 5.5 light years away, D, from, the Earth. How much parallax in arcsec, � d = � D , , --- (1.2), will it subtend when viewed from two opposite, , 4
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points along the orbit of the Earth?, , 1AU, , Solution: Angle subtended, θ = 1° 54' = 114' = 114×2.91×10-4 rad, , = 3.317×10-2 rad, Diameter of the Earth = θ × distance to the, moon from the Earth, , = 3.317×10-2×3.84×108 m, , = 1.274×107m, 1.4 Measurement of Mass:, Since 1889, a kilogram was the mass of a, shiny piece of platinum-iridium alloy kept in a, special glass case at the International Bureau, of weights and measures. This definition of, mass has been modified on 20th May 2019, the, reason being that the carefully kept platinumiridium piece is seen to pick up micro particles, of dirt and is also affected by the atmosphere, causing its mass to change. The new measure, of kilogram is defined in terms of magnitude, of electric current. We know that electric, current can be used to make an electromagnet., An electromagnet attracts magnetic materials, and is thus used in research and in industrial, applications such as cranes to lift heavy, pieces of iron/steel. Thus the kilogram mass, can be described in terms of the amount of, current which has to be passed through an, electromagnet so that it can pull down one side, of an extremely sensitive balance to balance the, other side which holds one standard kg mass., While dealing with mass of atoms, and molecules, kg is an inconvenient unit., Therefore, their mass is measured in atomic, mass unit. It will be easy to compare mass of, any atom in terms of mass of some standard, atom which has been decided internationally to, be C12 atom. The (1/12)th mass of an unexcited, atom of C12 is called atomic mass unit (amu)., 1 amu = 1.660540210-27 kg with an, uncertainty of 10 in the last two decimal places., 1.5 Measurement of Time:, The SI unit of time is the second (s). For, many years, duration of one mean Solar day, was considered as reference. A mean Solar day, is the average time interval from one noon to, the next noon. Average duration of a day is, taken as 24 hours. One hour is of 60 minutes, , 1AU, , Solution: Two opposite points A and B along, the orbit of the Earth are 2 AU apart. The, angle subtended by AB at the position of the, star is = AB/distance of the star from the Earth, 2AU 2 � 1.496 � 1011 m, =, �, � 5.75 � 10�6 rad, 15, 5.5 ly 5.5 � 9.46 � 10 m, = 5.75 � 10�6 � 57.297 � 60 � 60 arcsec, = 1.186 arcsec, , Do you know ?, Small distances are measured in units, of (i) fermi = 1F = 10-15 m in SI system. Thus,, 1F is one femtometre (fm) (ii) Angstrom =, 1 A0 =10-10 m, For measuring sizes using a microscope, we need to select the wavelength of light, to be used in the microscope such that it, is smaller than the size of the object to be, measured. Thus visible light (wavelength, from 4000 A0 to 7000 A0) can measure, sizes upto about 4000 A0 . If we want to, measure even smaller sizes we need to use, even smaller wavelength and so the use, of electron microscope is necessary. As, you will study in the XIIth standard, each, material particle corresponds to a wave. The, approximate wavelength of the electrons in, an electron microscope is about 0.6 A0 so, that one can measure atomic sizes ≈ 1 A0, using this microscope., Example 1.3: The moon is at a distance of, 3.84×108 m from the Earth. If viewed from two, diametrically opposite points on the Earth, the, angle subtended at the moon is 1° 54'. What is, the diameter of the Earth?, , 5
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and each minute is of 60 seconds. Thus a mean, Solar day = 24 hours = 246060 = 86400 s., Accordingly a second was defined as 1/86400, of a mean Solar day., It was later observed that the length of a, Solar day varies gradually due to the gradual, slowing down of the Earth’s rotation. Hence,, to get more standard and nonvarying (constant), unit for measurement of time, a cesium atomic, clock is used. It is based on periodic vibrations, produced in cesium atom. In cesium atomic, clock, a second is taken as the time needed, for 9,192,631,770 vibrations of the radiation, (wave) emitted during a transition between two, hyperfine states of Cs133 atom., , quantities. For convenience, the basic quantities, are represented by symbols as ‘L’ for length,, ‘M’ for mass, ‘T’ for time, ‘K’ For temperature,, ‘I’ for current, ‘C’ for luminous intensity and, ‘mol’ for amount of mass., The dimensions of a physical quantity, are the powers to which the concerned, fundamental units must be raised in order to, obtain the unit of the given physical quantity., When we represent any derived quantity, with appropriate powers of symbols of the, fundamental quantities, then such an expression, is called dimensional formula. This dimensional, formula is expressed by square bracket and no, comma is written in between any of the symbols., Illustration:, (i) Dimensional formula of velocity, displacment, Velocity =, time, , Do you know ?, Why is only carbon used and not any, other element for defining atomic mass unit?, Carbon 12 (C12) is the most abundant isotope, of carbon and the most stable one. Around, 98% of the available carbon is C12 isotope., Earlier, oxygen and hydrogen were used, as the standard atoms. But various isotopes, of oxygen and hydrogen are present in higher, proportion and therefore it is more accurate, to use C12., , [L], � [L1M 0 T �1 ], [T], ii) Dimensional formula of velocity gradient, velocity, velocity gradient =, distance, , Dimensions of velocity �, , Dimensions of velocity gradient, , [LT �1 ], �, � [L0 M 0 T �1 ], 1.6 Dimensions and Dimensional Analysis:, [ L], As mentioned earlier, a derived physical, iii) Dimensional formula for charge., quantity can be expressed in terms of some, combination of seven basic or fundamental charge = current time, Dimensions of charge = [I] [T] = [L0M0T1I1], Table 1.3: Some Common Physical Quantities their, SI Units and Dimensions, S., No, 1, 2, 3, 4, , Physical, quantity, Density, Acceleration, Momentum, Force, , Formula, ρ = M/V, a = ν/t, P = mν, F = ma, , 5, 6, 7, 8, , Impulse, Work, Kinetic Energy, Pressure, , J = F. t, W = F.s, KE = 1/2 mν2, P = F/A, , SI unit, , Dimensional, formula, 3, -3, [L M1T°], kilogram per cubic metre (kg/m ), metre per second square (m/s2), [L1M°T-2], kilogram metre per second (kg m/s) [L1M1T-1], kilogram metre per second square, [L1M1T-2], (kg m/s2) or newton (N), newton second (Ns), [L1M1T-1], joule (J), [L2M1T-2], joule (J), [L2M1T-2], kilogram per metre second square, [L-1M1T-2], 2, (kg/ms ), , 6
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and, -2b=1, ∴b = -1/2, ∴a = -b = -(-1/2), ∴ a = 1/2, ∴ T = k l1/2 g -1/2, , Table 1.3 gives the dimensions of, various physical quantities commonly used in, mechanics., 1.6.1 Uses of Dimensional Analysis:, (i) To check the correctness of physical, equations: In any equation relating, different physical quantities, if the, dimensions of all the terms on both the, sides are the same then that equation is, said to be dimensionally correct. This is, called the principle of homogeneity of, dimensions. Consider the first equation of, motion., v = u + at, Dimension of L.H.S = [v] = [LT-1], [u] =[LT-1], [at] = [LT-2] [T] = [LT-1], Dimension of R.H.S= [LT-1]+ [LT-1], [L.H.S] = [R.H.S], As the dimensions of L.H.S and R.H.S, are the same, the given equation is, dimensionally correct., (ii) To establish the relationship between, related physical quantities: The period, T of oscillation of a simple pendulum, depends on length l and acceleration due, to gravity g. Let us derive the relation, between T, l, g :, Suppose T ∝ la, and T ∝ gb, , ... T ∝ lagb, T = k lagb,, , , where k is constant of proportionality and, it is a dimensionless quantity and a and b, are rational numbers. Equating dimensions, on both sides,, [M0L0T1] = k [L1]a [LT-2]b, = k [La+b T-2b], [L0T1] = k [La+bT-2b], Comparing the dimensions of the, corresponding quantities on both the sides we, get, a+b=0, ∴ a = -b, , ∴T = k l / g, The value of k is determined experimentally, and is found to be 2π, �T = 2� l / g, (iii) To find the conversion factor between, the units of the same physical quantity, in two different systems of units: Let us, use dimensional analysis to determine the, conversion factor between joule (SI unit, of work) and erg (CGS unit of work)., Let 1 J = x erg, Dimensional formula for work is [M1L2T-2], Substituting in the above equation, we can, write, [M11L12 T1-2 ] = x [M 21L 2 2 T2 -2 ], x=, , [M11L12 T1-2 ], [M 21L 2 2 T2 -2 ], 1, , , , , , 2, , � M 1 � � L1 � � T1 �, or, x � �, � � � � �, � M 2 � � L 2 � � T2 �, , �2, , where suffix 1 indicates SI units and 2, indicates CGS units., In SI units, L, M, T are expressed in m,, kg and s and in CGS system L, M, T are, represented in cm, g and s respectively., 1, , 2, , � kg � � m � � s �, � x�� � �, � � �, � g � � cm � � s �, 1, , -2, , 2, , �, g� �, cm �, �2, or x � � 103 � � (100), � (1), g, cm, �, � �, �, 3, 4, 7, � x � (10 ) (10 ) � 10, � 1 joule = 107 erg, , Example 1.4: A calorie is a unit of heat and it, equals 4.2 J, where 1 J = kg m2 s-2. A distant, civilisation employs a system of units in which, the units of mass, length and time are α kg, β m, , 7
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and γ s. Also J' is their unit of energy. What will, 1, standard symbols, the equation S = at 2, be the magnitude of calorie in their units?, 2, is dimensionally correct. However, the, Solution: Let us write the new units as A, B, 1, complete equation is S = ut + at 2, and C for mass, length and time respectively., 2, We are given, 1.7 Accuracy, Precision and Uncertainty in, 1 A = α kg, Measurement:, 1B=βm, Physics is a science based on observations, 1C=γs, and experiments. Observations of various, 1 cal = 4.2 J = 4.2 kg m2 s-2, physical quantities are made during an, 2, -2, experiment. For example, during the, � A �� B � � C �, = 4.2 � � � � � �, atmospheric study we measure atmospheric, � � �� � � � � �, pressure, wind velocity, humidity, etc. All the, 4.2 � 2, measurements may be accurate, meaning that, =, AB2 C-2, the measured values are the same as the true, �� 2, values. Accuracy is how close a measurement, 4.2 � 2, �, =, J, is to the actual value of that quantity. These, �� 2, measurements may be precise, meaning that, 4.2� 2, J� multiple measurements give nearly identical, Thus in the new units, 1 calorie is =, �� 2, values (i.e., reproducible results). In actual, 1.6.2 Limitations of Dimensional Analysis:, measurements, an observation may be both, 1) The value of dimensionless constant can accurate and precise or neither accurate nor, be obtained with the help of experiments precise. The goal of the observer should be to, get accurate as well as precise measurements., only., 2) Dimensional analysis can not be used to, Possible uncertainties in an observation, derive relations involving trigonometric, may arise due to following reasons:, exponential, and logarithmic functions as, 1) Quality of instrument used., these quantities are dimensionless., 2) Skill of the person doing the experiment., 3) This method is not useful if constant of, proportionality is not a dimensionless, 3) The method used for measurement., quantity., 4) External or internal factors affecting the, Illustration : Gravitational force between result of the experiment., two point masses is directly proportional, to product of the two masses and inversely, Can you tell?, proportional to square of the distance, If ten students are asked to measure the, between the two, length of a piece of cloth up to a mm, using a, mm, �F � 12 2, metre scale, do you think their answers will, r, m1m 2, be identical? Give reasons., Let F � G 2, r, , The constant of proportionality 'G' is NOT 1.8 Errors in Measurements:, dimensionless. Thus earlier method will, Faulty measurements of physical quantity, not work., can lead to errors. The errors are broadly divided, 4) If the correct equation contains some more into the following two categories :, terms of the same dimension, it is not a) Systematic errors : Systematic errors are, possible to know about their presence using errors that are not determined by chance but, dimensional equation. For example, with are introduced by an inaccuracy (involving, , 8
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which experiment is performed. For example,, the temperature may change during the course, of an experiment, pressure of any gas used in, the experiment may change, or the voltage of, the power supply may change randomly, etc., 1.8.1 Estimation of error:, Suppose the readings recorded repeatedly, for a physical quantity during a measurement, are, a1, a2, a3, ................an ., Arithmetic mean amean is given by, , either the observation or measurement process), inherent to the system. Sources of systematic, error may be due to imperfect calibration of the, instrument, and sometimes imperfect method of, observation., Each of these errors tends to be in one, direction, either positive or negative. The, sources of systematic errors are as follows:, (i) Instrumental error: This type of error, arises due to defective calibration of an, instrument, for example an incorrect, zeroing of an instrument will lead to such, kind of error ('zero' of a thermometer not, graduated at proper place, the pointer, of weighting balance in the laboratory, already indicating some value instead of, showing zero when no load is kept on it,, an ammeter showing a current of 0.5 amp, even when not connected in circuit, etc)., (ii) Error due to imperfection in, experimental technique: This is an error, due to defective setting of an instrument., For example the measured volume of a, liquid in a graduated tube will be inaccurate, if the tube is not held vertical., (iii) Personal error: Such errors are, introduced due to fault of the observer., Bias of the observer, carelessness in, taking observations etc. could result in, such errors. For example, while measuring, the length of an object with a ruler, it is, necessary to look at the ruler from directly, above. If the observer looks at it from an, angle, the measured length will be wrong, due to parallax., Systematic errors can be minimized by, using correct instrument, following proper, experimental procedure and removing, personal error., b) Random errors: These are the errors which, are introduced even after following all the, procedures to minimize systematic errors. These, type of errors may be positive or negative. These, errors can not be eliminated completely but we, can minimize them by repeated observations, and then taking their mean (average). Random, errors occur due to variation in conditions in, , a 1 + a 2 + a 3 + ................ + a n, n, n, 1, = ∑ ai, --- (1.3), n i=1, , a mean =, a mean, , This is the most probable value of the, quantity. The magnitude of the difference, between mean value and each individual value, is called absolute error in the observations., Thus for ‘a1’, the absolute error ∆a1 is, given by, �a1 = | a mean � a1 |,, for a 2 ,, �a 2 � | a mean � a 2 |, and so for a n it will be, �a n � | a mean � a n |, The arithmetic mean of all the absolute, errors is called mean absolute error in the, measurement of the physical quantity., �a1 � �a 2 � ........ � �a n, n, n, 1, � � �a i, --- (1.4), n i=1, , �a mean =, , The measured value of the physical, quantity a can then be represented by, a = amean ± ∆amean which tells us that, the actual value of ‘a’ could be between, amean - ∆amean and amean + ∆amean. The ratio of, mean absolute error to its arithmetic mean, value is called relative error., --- (1.5), , 9
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When relative error is represented as resistance., percentage it is called percentage error., a) Errors in sum and in difference:, � a mean, Suppose two physical quantities A, Percentage error =, �100, --- (1.6), and B have measured values A ± ∆A and, a mean, B ± ∆B, respectively, where ∆A and ∆B are, their mean absolute errors. We wish to find the, Activity :, absolute error ∆Z in their sum., Perform an experiment using a Vernier, Z=A+B, callipers of least count 0.01cm to measure, Z ± ∆Z = (A ± ∆A)+(B ± ∆B), the external diameter of a hollow cylinder., = (A+B) ± ∆A ± ∆B, Take 3 readings at different position on the, cylinder and find (i) the mean diameter (ii) the, ± ∆Z = ± ∆A ± ∆B,, absolute mean error and (iii) the percentage, For difference, i.e., if Z = A-B,, error in the measurement of diameter., Z ± ∆Z = (A ± ∆A)-(B ± ∆B), = (A-B) ± ∆A± ∆B, Example 1.5: The radius of a sphere measured, repeatedly yields values 5.63 m, 5.54 m, 5.44, ± ∆Z = ± ∆A± ∆B,, m, 5.40 m and 5.35 m. Determine the most, There are four possible values for ∆Z,, probable value of radius and the mean absolute, namely (+ ∆A - ∆B), (+∆A+∆B), (-∆A-∆B),, relative and percentage errors., (-∆A+∆B). Hence maximum value of absolute, Solution: Most probable value of radius is its error is ∆Z = ∆A+∆B in both the cases., arithmetic mean , , When two quantities are added or, 5.63 � 5.54 � 5.44 � 5.40 � 5.35, subtracted, the absolute error in the final result, �, m, 5, is the sum of the absolute errors in the individual, � 5.472 m, quantities., b) Errors in product and in division:, Mean absolute error, Suppose Z=AB and measured values of A, � 5.63 � 5.472 � 5.54 � 5.472 �, and, B, are (A ± ∆A) and (B ± ∆B) Then, �, 1�, � �� 5.44 � 5.472 � 5.40 � 5.472 � m, Z ± ∆Z= (A ± ∆A) (B ± ∆B), 5�, �, 2, �, 5, ., 35, �, 5, ., 47, = AB ± A∆B ± B∆A ± ∆A∆B, �, �, Dividing L.H.S by Z and R.H.S. by AB we, 0.452, �, � 0.0904 m, get, 5, 0.0904, = 0.017, 5.472, % error = 1.7%, 1.8.2 Combination of errors:, When we do an experiment and measure, various physical quantities associated with, the experiment, we must know how the errors, from individual measurement combine to give, errors in the final result. For example, in the, measurement of the resistance of a conductor, using Ohms law, there will be an error in the, measurement of potential difference and that of, current. It is important to study how these errors, combine to give the error in the measurement of, , � �z � � �B �A � �A � � �B � �, �1 � z � � �1 � B � A � � A � � B � �, ��, ��, �, � �, �, , Relative=, error, , Since ∆A/A and ∆B/B are very small we, shall neglect their product. Hence maximum, relative error in Z is, �Z �A �B, �, �, --- (1.7), Z, A, B , This formula also applies to the division of, two quantities., Thus, when two quantities are multiplied, or divided, the maximum relative error in the, result is the sum of relative errors in each, quantity., , 10
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c) Errors due to the power (index) of, measured quantity:, Suppose, Z = A 3 = A.A.A, �Z �A �A �A, �, �, �, Z, A, A, A, , Squaring both sides, T 2 = 4� 2 l / g, l, � g = 4� 2 2, T, Now �l = 0.1, l = 100 cm, �T = 0.01s, T = 2 s, Percentage error =, , from the multiplication rule above., Hence the relative error in Z =A3 is three, times the relative error in A. So if Z = An, �Z, �A, --- (1.8), �n, Z, A , A p Bq, Cr, �Z, �A, �B, �C, �p, �q, �r, Z, A, B, C, , � �l 2�T �, � 100, �� �, T ��, � l, � 0.l 2 � 0.01 �, � 100, ��, �, 2 ��, � l00, � (0.001 � 0.01) � 100 � 1.1, Percentage error in measurement of g is 1.1%, , In general, if Z =, , --- (1.9), , The quantity in the formula which has, large power is responsible for maximum error., Example 1.6: In an experiment to determine, the volume of an object, mass and density are, recorded as m = (5 ± 0.15) kg and ρ = (5 ± 0.2), kg m-3 respectively. Calculate percentage error, in the measurement of volume., Solution : We know,, Density =, , Mass, , Volume, Mass, M, � Volume =, �, Density �, , � �m, � m, , �, , �� �, , � � 100, � �, � 0.15 0.2 �, =�, �, � � 100, 5 �, � 5, , Percentage error in volume = �, , = � 0.03 � 0.04 � � 100, , = � 0.07 � � 100 � 7%, , Example 1.7: The acceleration due to gravity is, determined by using a simple pendulum of length, l = (100 ± 0.1) cm. If its time period is T = (2 ±, 0.01) s, find the maximum percentage error in, the measurement of g., Solution: The time period of oscillation of a, simple pendulum is given by, T = 2π, , l, g, , �g � 100, g, , 1.9 Significant Figures:, In the previous sections, we have studied, various types of errors, their origins and the, ways to minimize them. Our accuracy is limited, to the least count of the instrument used during, the measurement. Least count is the smallest, measurement that can be made using the given, instrument. For example with the usual metre, scale, one can measure 0.1 cm as the least value., Hence its least count is 0.1cm., Suppose we measure the length of a metal, rod using a metre scale of least count 0.1cm., The measurement is done three times and the, readings are 15.4, 15.4, and 15.5 cm. The most, probable length which is the arithmetic mean as, per our earlier discussion is 15.43. Out of this, we are certain about the digits 1 and 5 but are, not certain about the last 2 digits because of the, least count limitation., The number of digits in a measurement, about which we are certain, plus one additional, digit, the first one about which we are not certain, is known as significant figures or significant, digits., Thus in above example, we have 3, significant digits 1, 5 and 4., The larger the number of significant figures, obtained in a measurement, the greater is the, accuracy of the measurement. If one uses the, instrument of smaller least count, the number of, significant digits increases., , 11
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Rules for determining significant figures, 1) All the nonzero digits are significant,, for example if the volume of an object is, 178.43 cm3, there are five significant digits, which are 1,7,8,4 and 3., 2) All the zeros between two nonzero digits, are significant, eg., m = 165.02 g has 5, significant digits., 3) If the number is less than 1, the zero/zeroes, on the right of the decimal point and to, the left of the first nonzero digit are not, significant e.g. in 0.001405, the underlined, zeros are not significant. Thus the above, number has four significant digits., 4) The zeros on the right hand side of the last, nonzero number are significant (but for, this, the number must be written with a, decimal point), e.g. 1.500 or 0.01500 have, both 4 significant figures each., On the contrary, if a measurement yields, length L given as, L = 125 m = 12500 cm = 125000 mm, it, has only three significant digits., To avoid the ambiguities in determining the, number of significant figures, it is necessary to, report every measurement in scientific notation, (i.e., in powers of 10) i.e., by using the concept, of order of magnitude., The magnitude of any physical quantity can, be expressed as A×10n where ‘A’ is a number, such that 0.5 ≤ A<5 and ‘n’ is an integer called, the order of magnitude., (i) radius of Earth = 6400 km, , = 0.64×107m, The order of magnitude is 7 and the number, of significant figures are 2., (ii) Magnitude of the charge on electron e, = 1.6×10-19 C, Here the order of magnitude is -19 and the, number of significant digits are 2., Internet my friend, 1. videolectures.net/mit801f99_lewin_lec01/, 2. hyperphysics.phy-astr.gsu.edu/hbase/, hframe.html, , 12, , Definitions of SI Units, Till May 20, 2019 the kilogram did not have, a definition; it was mass of the prototype, cylinder kept under controlled conditions, of temperature and pressure at the SI, museum at Paris. A rigorous and meticulous, experimentation has shown that the mass of, the standard prototype for the kilogram has, changed in the course of time. This shows, the acute necessity for standardisation of, units. The new definitions aim to improve, the SI without changing the size of any, units, thus ensuring continuity with existing, measurements. In November 2018, the, 26th General Conference on Weights and, Measures (CGPM) unanimously approved, these changes, which the International, Committee for Weights and Measures, (CIPM) had proposed earlier that year. These, definitions came in force from 20 May 2019., (i) As per new SI units, each of the seven, fundamental units (metre, kilogram, etc.), uses one of the following 7 constants, which are proposed to be having exact, values as given below:, The Planck constant,, h = 6.62607015 × 10−34 joule-second, (J s or kg m2 s-1)., The elementary charge,, e = 1.602176634 × 10−19 coulomb (C or, A s)., The Boltzmann constant,, k = 1.380649 × 10−23 joule per kelvin, (J K−1 or kg m2 s-2 K-1)., The Avogadro constant (number),, NA = 6.02214076 × 1023 reciprocal mole, (mol−1)., The speed of light in vacuum,, c = 299792458 metre per second (m s−1)., The ground state hyperfine structure, transition frequency of Caesium-133, atom,, ΔνCs = 9192631770 hertz (Hz or s-1)., The luminous efficacy of monochromatic, radiation of frequency 540 × 1012 Hz, Kcd, = 683 lumen per watt (lm⋅W−1) = 683 cd, sr s3 kg-1 m-2, where sr is steradian; the SI, unit of solid angle.
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used). The arrows arriving at that unit, refer to the constant and the fundamental, unit (or units, wherever used) for defining, that unit. The arrows going away from a, unit indicate other units which use this, unit for their definition., , (ii) Definitions of the units second and mole, are based only upon their respective, constants, for example (a) the second, uses ground state hyperfine structure, transition frequency of Caesium-133, atom to be exactly 9192631770 hertz., Thus, the second is defined as, 9192631770 periods of that transition,, (b) the mole uses Avogadro’s number, to be NA = 6.02214076 × 1023. Thus, one, mole is that amount of substance which, contains exactly 6.02214076 × 1023, molecules., (iii) Definitions of all the other fundamental, units use one constant each and at least, one other fundamental unit, for example,, the metre makes use of speed of light in, vacuum as a constant and second as, fundamental unit. Thus, metre is defined, as the distance traveled by the light in, vacuum in exactly 1/299792458 second., (iv) The figures show the dependency of, various units upon their respective, constants and other units (wherever, , For example, as described above, in fig (a), i) the arrows directed to metre are from second, and c. The arrows going away from the metre, indicate that the metre is used in defining, the kilogram the candela and the kelvin,, (ii) the newly defined unit kilogram uses, Planck constant, the metre and the second,, while the kilogram itself is used in defining, the kelvin and the candela. This definition, relates the kilogram to the equivalent mass of, the energy of a photon given its frequency,, via the Planck constant., Figure (a) refers to new definitions while, the figure (b) refers to the corresponding, definitions before 20 May 2019. Interested, students may compare them to know which, definitions are modified and how., , Fig (b) Old SI, , Fig (a) New SI, , 13
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s, , ise, erc, , Ex, , 1., i), , ii), , , , iii), , , iv), , v), , , 2., i), ii), , iii), iv), v), , , , vi), , Exercises, , Choose the correct option., [L1M1T-2] is the dimensional formula for, (A) Velocity (B) Acceleration, (C) Force , (D) Work, The error in the measurement of the, sides of a rectangle is 1%. The error in, the measurement of its area is, (A) 1% , (B) 1/2%, (C) 2% , (D) None of the above., Light year is a unit of, (A) Time , (B) Mass, (C) Distance (D) Luminosity, Dimensions of kinetic energy are the, same as that of, (A) Force , (B) Acceleration, (C) Work , (D) Pressure, Which of the following is not a, fundamental unit?, (A) cm , (B) kg , (C) centigrade (D) volt, Answer the following questions., Star A is farther than star B. Which star, will have a large parallax angle?, What are the dimensions of the quantity, l l / g , l being the length and g the, acceleration due to gravity?, Define absolute error, mean absolute, error, relative error and percentage error., Describe what is meant by significant, figures and order of magnitude., If the measured values of two quantities, are A ± ∆A and B ± ∆B, ∆A and ∆B, being the mean absolute errors. What is, the maximum possible error in A ± B?, Show that if Z = A, B, �Z �A �B, �, �, Z, A, B, Derive the formula for kinetic energy of, a particle having mass m and velocity v, using dimensional analysis, , Solve numarical examples., The masses of two bodies are measured, to be 15.7 ± 0.2 kg and 27.3 ± 0.3 kg., What is the total mass of the two and the, error in it?, , [Ans : 43 kg, ± 0.5 kg], ii) The distance travelled by an object in, time (100 ± 1) s is (5.2 ± 0.1) m. What is, the speed and it's relative error?, , [Ans : 0.052 ms-1, ± 0.0292 ms-1], iii) An electron with charge �e� enters a, uniform. magnetic field B with a, velocity v . The velocity is perpendicular, to the magnetic field. The force on the, charge e is given by, , ��, | F |= Bev Obtain the dimensions of B ., , , [Ans: [L0M1T -2I-1]], iv) A large ball 2 m in radius is made up of, a rope of square cross section with edge, length 4 mm. Neglecting the air gaps in, the ball, what is the total length of the, rope to the nearest order of magnitude?, , [Ans : ≈106 m = 103km], v), Nuclear radius R has a dependence on, the mass number (A) as R =1.3×1016 1/3, A m. For a nucleus of mass number, A=125, obtain the order of magnitude of, R expressed in metre., , [Ans : -15], vi) In a workshop a worker measures the, length of a steel plate with a Vernier, callipers having a least count 0.01 cm., Four such measurements of the length, yielded the following values: 3.11 cm,, 3.13 cm, 3.14 cm, 3.14 cm. Find the, mean length, the mean absolute error, and the percentage error in the measured, value of the length. , , [Ans: 3.13 cm, 0.01 cm, 0.32%], 3., i), , 14
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vii) Find the percentage error in kinetic, energy of a body having mass 60.0 ±, 0.3 g moving with a velocity 25.0 ± 0.1, cm/s., , [Ans: 1.3%], viii) In Ohm's experiments , the values of, the unknown resistances were found, to be 6.12 Ω , 6.09 Ω, 6.22 Ω, 6.15, Ω. Calculate the mean absolute error,, relative error and percentage error in, these measurements., , [Ans: 0.04 Ω ,0.0065 Ω , 0.65%], ix) An object is falling freely under the, gravitational force. Its velocity after, travelling a distance h is v. If v depends, upon gravitational acceleration g and, distance, prove with dimensional, analysis that v = k gh where k is a, constant., b, x), v � at ��, � v 0 is a dimensionally valid, t�c, , , equation. Obtain the dimensional, formula for a, b and c where v is velocity,, t is time and v0 is initial velocity., , [Ans: a- [L1M°T-2], b- [L1M°T°],, , c- [L°M°T1] ], xi) The length, breadth and thickness of, a rectangular sheet of metal are 4.234, m, 1.005 m, and 2.01 cm respectively., Give the area and volume of the sheet to, correct significant figures., , [Ans: 4.255 m2, 8.552 m3], , xii) If the length of a cylinder is l =, (4.00±0.001) cm, radius r = (0.0250, ±0.001) cm and mass m = (6.25±0.01), gm. Calculate the percentage error in the, determination of density., , [Ans: 8.185% ], xiii) When the planet Jupiter is at a distance of, 824.7 million kilometers from the Earth,, its angular diameter is measured to be, 35.72" of arc. Calculate the diameter of, the Jupiter., , [Ans: 1.428×105 km ], xiv) If the formula for a physical quantity is, a 4 b3, , X = 1/ 3 1/ 2 and if the percentage error, c d, in the measurements of a, b, c and d, are 2%, 3%, 3% and 4% respectively., Calculate percentage error in X., , [Ans: 20% ], xv) Write down the number of significant, figures in the following: 0.003 m2,, 0.1250 gm cm-2, 6.4 x 106 m, 1.6 x 10-19, C, 9.1 x 10-31 kg., , [Ans: 1, 4, 2, 2, 2 ], xvi) The diameter of a sphere is 2.14 cm., Calculate the volume of the sphere to the, correct number of significant figures., , [Ans: 5.13 cm3 ], , 15, , ***
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2., , Mathematical Methods, , Can you recall?, 1. What is the difference between a scalar and a vector?, 2. Which of the following are scalars or vectors?, (i) displacements (ii) distance travelled (iii) velocity, (iv) speed (v) force (vi) work done (vii) energy, 2.1 Introduction:, described by their magnitude are called scalars,, You will need certain mathematical tools i.e. they are specified by a number and a unit., to understand the topics covered in this book. For example when we say that a given metal, Vector analysis and elementary calculus are rod has a length 2 m, it indicates that the rod, two among these. You will learn calculus in is two times longer than a certain standard unit, details, in mathematics, in the XIIth standard. metre. Thus the number 2 is the magnitude, In this Chapter, you are going to learn about and metre is the unit; together they give us a, vector analysis and will have a preliminary complete idea about the length of the rod. Thus, introduction to calculus which should be length is a scalar quantity. Similarly mass, time,, sufficient for you to understand the physics that temperature, density, etc., are examples of, scalars. Scalars can be added or subtracted by, you will learn in this book., rules of simple algebra., 2.2 Vector Analysis:, In the previous Chapter, you have studied 2.2.2 Vectors:, Physical quantities which need magnitude, different aspects of physical quantities like, as, well, as direction for their complete, their division into fundamental and derived, quantities and their units and dimensions. description are called vectors. Examples of, You also need to understand that all physical vectors are displacement, velocity, force etc., quantities may not be fully described by their, A vector can be represented by a directed, magnitudes and units alone. For example if you line segment or by an arrow. The length of the, are given the time for which a man has walked line segment drawn to scale gives the magnitude, with a certain speed, you can find the distance of the vector, e.g., displacement of a body from, travelled by the man, but you cannot find out P to Q can be represented as P, Q,, where exactly the man has reached unless where the starting point P is called the tail, you know the direction in which the man has and the end point Q (arrow head) is called the, walked., head, ��� of the vector. Symbolically we write it as, Therefore, you can say that some physical PQ . Symbolically vectors are also represented, letter with an arrow above, quantities, which are called scalars, can be by a single, ��, � �capital, �, ��, �, described with magnitude alone, whereas some it, e.g., X , A , etc. Magnitude of a vector X is, ��, �, other physical quantities, which are called written as | X |., vectors, need to be described with magnitude, Let us see a few examples of different, as well as direction. In the above example the types of vectors., distance travelled by the man is a scalar quantity, (a) Zero vector (Null vector): A vector, while the final position of the man relative to, having zero magnitude with a particular, his initial position, i.e., his displacement can be, direction (arbitrary) is called zerovector., described by magnitude and direction and is a, Symbolically it is represented as 0 ., vector quantity. In this Chapter you will study, (1) Velocity vector of a stationary particle, different aspects of scalar and vector quantities. , is a zero vector., 2.2.1 Scalars:, (2) The acceleration vector of an object, Physical quantities which can be completely , , 16
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moving with uniform velocity is a zero, vector., (b) Resultant vector: The resultant of two or, more vectors is that single vector, which, produces the same effect, as produced by, all the vectors together., (c) Negative vector (opposite vector): A, negative vector of a given vector is a, vector of the same magnitude but opposite, in direction to that of the given vector., , , In Fig. 2.1, B is a negative vector to A ., , A, B, , ��, , M is written as u M and is given by, , ��, �, , M = u� M M , , --- (2.1), , M, , or, u� M =, M, , --- (2.2), , ��, �, , Hence u M has magnitude unity, and has the, ��, same direction as that of M . We use i , j ,, and k , respectively, as unit vectors along the, x, y and z directions of a rectangular (three, dimensional) coordinate system., u� x = �i, u� y = �j and u� z = k�, �, �, �, z, x � y, �, �, ∴ i = , j = and k = , --- (2.3), x, , y, , z, , , �� ��, Fig. 2.1: Negative vector., Here X , y and z are vectors along x, y and, (d) Equal vector: Two vectors A and B z axes, respectively., representing same physical quantity are, 2.3 Vector Operations:, said to be equal if and only if they have, the same magnitude and direction. Two 2.3.1 Multiplication of a ��Vector by a Scalar:, Multiplying a vector P by a scalar quantity,, equal vectors are shown in Fig. 2.2., say s, yields another vector. Let us write, A, ��, ��, Q = sP --- (2.4), B, ��, Q will be a vector whose direction is the, ��, Fig. 2.2: Equal vectors., same as that of�� P and magnitude is s times the, (e) Position vector: A vector which gives, magnitude of P ., the position of a particle at a point with, respect to the origin of a chosen co- 2.3.2 Addition and Subtraction of Vectors:, The addition or subtraction of two or more, ordinate system is called the position, vectors of the same type, i.e., describing the, vector of the particle., same physical quantity, gives rise to a single, vector, such that the effect of this single vector, is the same as the net effect of the vectors which, have been added or subtracted ., It is important to understand that only, vectors of the same type (describing same, physical quantity), can be, ��, �� added or subtracted, e.g. force F1 and force��F2 ��, can ��, be, � added to give, the resultant force F = F1 + F2 . But a force, Fig 2.3: Position vector., vector can not be added to a velocity vector., ���, ����, In Fig 2.3, = OP is the position vector of, It, is easy to find addition of vectors AB, �, ��, �, the particle present at P., and BC having the same or opposite direction, (f) Unit vector: A vector having unit but different magnitudes. If individual vectors, magnitude in a given direction is called, �� are parallel (i.e., in the same direction), the, a unit vector in that direction. If M magnitude of their resultant is the addition of, ���� ���� ���, is a non-zero, vector i.e. its magnitude individual magnitudes, i.e., AC = AB + BC, ��, �, M =| M | is not zero, the unit vector along, , 17
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and direction of the resultant is the same as, that of the individual vectors as shown in Fig, 2.4 (a). However, if the individual vectors are, anti-parallel (i.e., in the opposite direction), the, magnitude of their resultant is the difference of, the individual magnitudes, and the direction is, ����, ���� ���, that of the larger vector i.e., AC = AB - BC, as shown in Fig. 2.4 (b)., , t, , an, , lt, esu, , �� R, C, , , , B, , , , A, , ��, , �, , �, , Fig. 2.5 (b): Resultant vector C = A + B ., We can use the triangle law for showing, Fig. 2.4 (a): Resultant of parallel displacements., that, (a) Vector addition is commutative., ��, ��, For any two vectors P and Q ,, , Fig 2.4 (b): Resultant of anti-parallel forces., --- (2.5), P + Q = Q + P , Figure 2.6�� (a) shows addition of the two, 2.3.3 Triangle Law for Vector Addition:, ��, vector, and Q� in �two �different, P, When vectors of a given type do not act, ��, � ways. Triangle, in the same or opposite directions, the resultant OAB shows P + Q = R = OB , while triangle, �� �� �� ����, can be determined by using the triangle law of OCB shows Q + P = R =OB ., �� �� �� ��, vector addition which is stated as follows:, ∴ P +Q = Q + P, If two vectors describing the same physical, quantity are represented in magnitude and, direction by the two sides of a triangle taken, in order, then their resultant is represented in, magnitude and direction by the third side of the, triangle drawn in the opposite sense (from the, starting point of first vector to the end point of, the second vector)., , , , , , Let A and B be two vectors in the plane, of paper as shown in Fig. 2.5 (a). The sum of, these two vectors can be obtained by using the, triangle law described above as shown in Fig., ��, 2.5 (b). The resultant vector is indicated by C ., , Fig. 2.6 (a): Commutative law., (b) Vector addition is associative, , ��, If A , B and C are three vectors then, , �, , �, , ��, , �, , �, , ��, , ( A + B ) +C = A +( B +C ), , , , , , P, , A, , B, , , , Q, , B, , , , B + ��, C, , , , +B, , ��, C, , A, , O, , , , A, , , , R, , , , , , Fig. 2.5 (a): Two vectors A and B in a plane,, , 18, , R, , Fig. 2.6 (b): Associative law., Figure 2.6 (b) shows addition of 3 vectors
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, ��, in two different ways to give, C, A , B and, , ��, , �, , �, , ��, , �, , �, , ��, , �, , �, , ��, , , A5, , Example 2.1: Express vector AC in terms of, ���, ���, vectors AB and CB shown in the following, figure., , C, , B, , Solution: Using the triangle law of addition of, vectors we can write, ���� ��� ���, AC +CB = AB, , ��� ���, , ∴ AC = AB - CB, , Example 2.2: From the following figure,, determine the resultant of four forces, , , A1 , A2 , A3 and A4, , C, , , , , , A3, , A4, , D, , B, , , , B, , A2, , , , ����, , ����, , A3, , D, , i.e., ( A + B ) +C = A +( B +C ), --- (2.6), Thus the Associative law is proved., , A, , , , , , A4, 3, , �, , R = A +( B + C ) --- from triangle OPR, , +A , , �, , +, , �, , , , �, , R = ( A + B ) +C --- from triangle OQR, , A1, , resultant R ., , ����, Join OC to complete triangle OBC as, shown in (b)., ��� ��, � ��� � � �, Now, OC = OB + BC = A1 + A2 + A3, C, , , , A1, , , , O, , A1, , +, , , , A2, , , , A2, , A, , Fig. (b), From triangle OCD,, ��� �, ��� ��� � � � �, OD = A5 = OC + CD = A1 + A2 + A3 + A4, ���, OD is the resultant of the four vectors,, Thus, , , A1 , A2 , A3 and A4 , represented by, ���� ���� ����, ����, OA, AB, BC and CD , respectively., 2.3.4 Law of parallelogram of vectors:, Another geometrical method of adding two, vectors is called parallelogram law of vector, addition which is stated as follows:, If two vectors of the same type, originating, from the same point (tails at the same point), are represented in magnitude and direction by, two adjacent sides of a parallelogram, their, resultant vector is given in magnitude and, direction by the diagonal of the parallelogram, starting from the same point as shown in Fig., 2.7., , , , A5, , A2, , , , O, , A, , A1, , Solution: Join, shown in (a), , ���, , to complete ∆ OAB as, , OB, , C, , , , , , A3, , A4, , D, , B, , , , + A2, A1, , , , A5, , , , O, , A1, , Fig. (a), ��� � �, Now, OB = OA + AB = A1 + A2, ���, , ���, , , , A2, , A, , ∝, Fig 2.7: Parallelogram law of vector addition., ���� ��, In, Fig., 2.7,, vector, OA, = P and vector, ��� ��, OB = Q , represent two vectors originating from, point O, inclined to each other at an angle θ. If, we complete the parallelogram,, ��� � then according, OC, = R represents the, to this law, the diagonal, resultant vector., , , , To find the magnitude of R , drop a, , 19
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perpendicular from C to reach OA (extended) at, D. In right angled triangle ODC, by application, by Pythagoras theorem,, OC2 = OD2+DC2, = (OA+AD)2 + DC2, OC2 = OA2+2OA.AD+AD2+DC2, In the right angled triangle ADC, by, application of Pythagoras theorem, AD2+DC2=AC2, ... OC2=OA2+2OA. AD+ AC2 --- (2.7), Also,, ���� ��, � ���� ���� ��, ���� ��, =, OA P,, =, AC OB = Q and OC = R, In ∆ ADC, cos θ = AD/AC, ... AD=AC cos θ = Q cos θ, Substituting in Eq. (2.7), R2 = P2+Q2+2 P Q cos θ., , P sin � �, �1 �, similarly derived that � � tan �, �, � Q � P cos � �, Example 2.3: Water is flowing in a stream, with velocity 5 km/hr in an easterly direction, relative to the shore. Speed of a boat is relative, to still water is 20 km/hr. If the boat enters the, stream heading North, with what velocity will, the boat actually travel?, , , , Solution: The resultant velocity R of the boat, can be obtained by adding the two velocities, using ∆ OAB shown in the figure. Magnitude, of the resultant velocity is calculated as follows:, 5 km/hr, A, B, , � R = P 2 +Q 2 + 2 P Q cos�, , --- (2.8), Equation (2.8), gives us the magnitude of, resultant vector R ., To find the direction of the resultant vector, R , we will have to find the angle (α) made by, , , , α, , O, R=, , The direction of the resultant velocity is, , DC, DC, OA + AD, , From the figure, sin� =, , --- (2.9), , DC, , AC, � DC = AC sin� = Q sin�, , Also,, AD = AC cosθ = Q cosθ, ��, and OA = P ,, Substituing in Eq. (2.9), we get, tan � =, , Q sin�, P + Q cos �, , � 5 �, -1, � � tan (0.25), � 20 �, � 14 0 04�, , = tan -1 �, , OD, , =, , 20 2 � 52, , � 425 � 20.61 km / hr, , ��, , R with P ., In � ODC, tan � =, , R, , 20 km/hr, , ∴, The velocity of the boat is 20.61 km/hr in a, direction 14004′ east of north., 2.4 Resolution of vectors:, A vector can be written as a sum of two, or more vectors along certain fixed directions., , Thus a vector V can be written as, �, --- (2.11), V � V1�� � V2 �� � V3 ��, , � , �� are unit vectors along chosen, where �� , �, , directions. V1, V2 and V3 are known as, , � Q sin� �, � � = tan �, --(2.10), components, of, V along the three directions, �, � P + Q cos � � , � , � and � ., Equation (2.10), gives us the direction of, The process of splitting a given vector, resultant vector R ., into, its components is called resolution of the, , ��, If β is the angle between R and Q , it can be vector. The components can be found along, -1, , 20
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, directions at any required angles, but if these, ., Equation (2.16) gives, the, magnitude, of, R, , components are found along the directions, which are mutually perpendicular, they are To find the direction of R , from Fig. 2.8,, Ry, called rectangular components., tan� =, Rx, � Ry �, --- (2.17), �� = tan -1 � �, R, � x � , , � ��, R z are the, Similarly, if R x , R y and, , rectangular components of R along the x,, y and z axes of the rectangular Cartesian coFig. 2.8 : Resolution of a vector., system in three dimensions, then , Let us see how to find rectangular ordinate, �� �� ��, ��, R = R x + R y + R z = Rx i� + Ry �j + Rz k�, components in two dimensions., � ���, ��, ---- (2.18), Consider a vector R = OC , originating or , R = Rx 2 + Ry 2 + Rz 2, from the origin of a rectangular co-ordinate, If two vectors are equal, it means that their, system as shown in Fig. 2.8., corresponding components are also equal and, Drop perpendiculars from C that meet the vice versa., , x-axis��at, � A�and y-axis, ��, � �of at B. , A =B, If, OA = R x and OB = R y ; R x and R y being the, ���, , , , , , , components of OC along the x and y axes, i.e., if Ax i + Ay j + Az k = Bx i + By j + Bz k , then, respectively., Ax = Bx , Ay = By and Az = Bz, Then by the law of parallelogram of Example 2.4: Find a unit vector in the direction, vectors,, , of the vector 3i + 4 j, --(2.12), R = R x + R y , Solution:, �, �, R = Rx �i + Ry �j --- (2.13), Let V = 3�i + 4 �j, � �, Magnitude, of, , V, = | V | = 32 � 4 2 � 25 � 5, , where i and j are unit vectors along the x �, , �, and y axes respectively, and Rx and Ry are the V = α� | V | , where α is a unit vector along V ., �, magnitudes of the two components of, V, 3, 4, R ., �, � � � = �i + �j, Let θ be the angle made by R with the, 5, |V | 5, x-axis, then, �, �, Example 2.5: Given a = �i + 2 �j and b = 2i� + �j ,, Rx, cos� =, what are the magnitudes of the two vectors? Are, R, --- (2.14) these two vectors equal?, � Rx = R cos�, , Solution:, sin� =, , , , Ry, , R, � Ry = R sin�, , --- (2.15), Squaring and adding Eqs. (2.14) and, (2.15), we get, R 2 cos 2 � + R 2 sin 2� = Rx 2 + Ry 2, � R 2 = Rx 2 + Ry 2, or , R = Rx 2 + Ry 2, , |a | =, , 1 +2 =, , 5, , |b| =, , 2 +1 =, , 5, , , , 2, , 2, , 2, , 2, , , , The magnitudes of a and b are equal., However, their corresponding components are, not equal i.e., ax≠ bx and ay ≠ by . Hence, the two, vectors are not equal., , --- (2.16), , 21
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Pc, , O, , θ, , (3) Scalar product obeys the distributive law of, multiplication, �� �� , �� �� �� , P . (Q + R ) = P .Q + P . R, �� ��, (4) Special cases of scalar product P . Q = P, Q cos θ, ��, (i) If θ = 0, i.e., the two vectors P and, parallel ��, to each other, then, ��, ., P Q = P Q cos θ = P Q, , -----------, , osθ, , ��, Q, , -----------------, , 2.5 Multiplication of Vectors:, We saw that we can add or subtract, vectors of the same type to get resultant vectors, of the same type. However, when we multiply, vectors of the same or different types, we get, a new physical quantity which may either be, a scalar (scalar product) or a vector (vector, product). Also note that the multiplication of a, scalar with a scalar is always a scalar and the, multiplication of scalar with a vector is always, a vector. Let us now study the characteristics, of a scalar product and vector product of two, vectors., 2.5.1 Scalar Product (Dot Product):, The scalar product or ��dot product of two, ��, nonzero vectors P and Q is defined as the, product of magnitudes of the two vectors and the, cosine of the angle θ between��the two vectors., ��, The scalar product of P and Q is written as,, �� . ��, --- (2.19), P Q = PQ cos θ, , ��, ��, where θ is the angle between P and Q ., Characteristics of scalar product, (1) The scalar product of two vectors is, equivalent to the product of magnitude of one, vector with the magnitude of the component of, the other vector in the direction of the first., , Q cos θ, , ��, P, , P, , Fig. 2.9: Projection of vectors., From, Fig. 2.9,, �� . ��, P Q = PQ cos θ, = P (Q cos θ), ��, ��, Q in the direction of P ), = P (component, of, �� ��, Similarly P . Q = Q (P�� cos θ), ��, = Q (component of P in the direction of Q ), (2) Scalar product obeys the commutative law, of vector��multiplication., �� ��, �� ., P Q = P Q cos θ = Q P cos θ = Q . P, , 22, , ��, Q are, , Thus, i ⋅ i = j ⋅ j = k ⋅ k =1, Do you know ?, Scalar and vector products are very, useful in physics. They make mathematical, formulae and their derivation very elegant., Figure below shows a toy car pulled, ��, through a displacement S . The force F, responsible, for this is not in the direction of, , S but is at an angle θ to it. Component of, ��, displacement along the direction of force F, is S cosθ. According to the definition, the, work done by a force is the product of the, force and the displacement in the direction, of force. ∴W = FS cosθ. According to the, definition of scalar product,, �� , , F . S = F S cosθ, �� , , ∴W = F . S, Also W = F (S cosθ) = (F cosθ) S, Hence dot or scalar product is the, product of magnitude of one of the vectors, and component of the other vector in the, direction of the first., Power is the rate of doing work on a, ��, body by an external force, assumed to, F, , be constant in time. If v is the velocity of, the body under the action of the force then, ��, power, by the scalar product of F, P is given, �� , and v i.e., P = F . v .
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(ii) If θ = 180°, i.e., the two vectors P and Q, are anti-parallel, then, �� ��, P . Q = P Q cos 180° = -P Q, , (iii) If θ = 90°, i.e., the two vectors are, perpendicular to each other, then, �� ��, P . Q = P Q cos 90° = 0, Thus, i ⋅ j = j ⋅ k = k ⋅ i =0, �� ��, �� ��, (5) If P = Q then P . Q = P2 = Q2, (6) Scalar product of vectors expressed in terms, of rectangular components :, ��, Let P = Px �i + Py �j + Pz k�, ��, and Q = Qx �i +Q y �j +Qz k�, �� ��, Then P � Q = Px Qx + Py Q y + Pz Qz, Proof :, �� ��, P � Q =(Px �i + Py �j + Pz k� ) � (Qx �i +Q y �j +Qz k� ), = Px �i � (Qx �i +Q y �j +Qz k� ), , Solution:, � �, v 1 � v 2 � ( �i + 2 �j +3 k� ) � (3 �i +4 �j - 5 k� ), =1×3 +2 ×4 +3×, ×(-5), =-4, as �i � �i = �j � �j = k� � k� =1,, and �i � �j = �i � k� = �j � k� = �j � �i = k� � �i = k� � �j =0, 2.5.2 Vector Product (cross product):, The vector ��, product or cross product of two, ��, vectors ( P and Q ) is a vector whose magnitude, is equal to the product of magnitudes of the, two vectors and sine of the smaller angle (θ), between the two vectors. The direction of the, product vector is given by u r which is a unit, vector perpendicular to the plane containing the, two vectors and is given by the right hand screw, rule. This is shown in Fig. 2.10 (a) and (b), � �� ��, a) R = P � Q = PQ sin � u� r , --- (2.18), � �� ��, b) S = Q � P = PQ sin � u� s , --- (2.19), , +Py �j � (Qx �i +Q y �j +Qz k� ), +Pz k� � (Qx �i +Q y �j +Qz k� ), =( �i � �i ) Px Qx +( �i � �j ) Px Q y +( �i � k� )Px Qz, , , , +( �j � �i ) Py Qx +( �j � �j ) Py Q y +( �j � k� )Py Qz, , R, ��, Q, , +( k� � �i ) Pz Qx +( k� � �j ) Pz Q y +( k� � k� ) Pz Qz, , u r, , Since, �i � �i = �j � �j = k� � k� =1, and �i � �j = �j � k� = k� � �i = �i � k� = �j � �i = k� � �j =0, �� ��, � P � Q = Px Qx +0 +0, , O, , θ, ��, P, , �� ��, Fig. 2.10 (a): Vector product R = P × Q ., , + 0 + Py Q y +0, , ��, Q, , +0 +0 + Pz Qz, , �� ��, � P � Q = Px Qx + Py Q y + Pz Qz, , , (7) If a � b� a � c , where a ≠ 0 , it is not necessary, that b = c . Using the distributive law, we can, , , write a � b � c � 0 . It implies that either b - c, = 0 or a is perpendicular, to b - c . It does not, necessarily imply that b � c � 0, , �, , �, , Example 2.6: Find the scalar product of the, two vectors, �, �, v � �i � 2 �j � 3 k� and v � 3 �i � 4 �j � 5 k�, 1, , 2, , 23, , O, u s, , θ, ��, P, , , , S, , �� ��, Q, Fig. 2.10 (b): Vector product S = × P .,
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According to the right hand screw rule,, �� if, the, �� screw is rotated in a direction from P to, Q through the smaller angle, then the direction, in which the tip, of the screw advances is the, direction of�� R , perpendicular, to the plane, ��, of vector, containing P and Q . One example, ��, or cross product is the force F experienced, by, , a charge q moving with velocity v through a, uniform, magnetic field of magnetic induction, , B . It is an empirical, �� law, � (experimentally, ��, determined) given by F � q v � B ., Do you know ?, , 1.As linear displacement x is the distance, travelled by a body along, the line of travel,, angular displacement θ is the angle swept, by a body about a given axis. The rate, of change of angular displacement, is the, , angular velocity denoted by ω . If a body, is rotating about as axis, it possesses, ω, an angular, velocity . If at a point at a, distance r from the axis of rotation, the, , , body has linear velocity v , then v = ω × r ., , �, , �� ��, , � �, , , , �� �, , � �, , � ��, , --- (2.21), , (3) Special cases of cross product, , | P ×Q |= P Q sin θ, , --- (2.22), (i) If q =0. i.e., if the two nonzero vectors are, parallel to each, their vector product is a, �� �other,, �, zero vector | P ×Q |= P Q ⋅ 0 = 0, (ii) If q = 180°, i.e., if the two nonzero vectors, are anti-parallel,, their vector product is a zero, , vector | P ×Q |= P Q sin 180� � P Q sin � � 0, (iii) If q = 90°, i.e., if the two nonzero vectors, are perpendicular to each other, the magnitude, of their vector product is equal to the product of, magnitudes of the two vectors., , Thus i × j = k , j × k = i and k × i = j, , , , , (4) If P = Q then | P ×Q |= | P ×P |=| Q ×Q |= 0 ., Thus i × i = j × j = k × k =0, , ��, , (5) Let P = Px �i + Py �j + Pz k�, � �, , and, , �, , ��, , Q = Qx �i +Q y �j +Qz k�, , ��, , P ×Q = Px �i + Py �j + Pz k� × Qx �i +Q y �j +Qz k�, , �, , � �, � �, � �, + P Q � �j ×�i � + P Q � �j × �j � + P Q � �j ×k� �, + P Q � k� ×i� � + P Q � k� × �j � + P Q � k� ×k� �, , = Px Qx �i ×i� + Px Q y �i × �j + Px Qz �i ×k�, y, , x, , y, , y, , y, , z, , z, , x, , z, , y, , z, , z, , Now �i ×�i = �j × �j = k� ×k� =0, and, �i ×k� = - �j , �j ×�i = -k� , k� × �j = -�i, �i × �j = k� , �j ×k� = �i , k� ×�i = �j., �� ��, ∴ P ×Q = 0 + Px Q y k� - Px Qz �j, , Characteristics of Vector Product:, (1) Vector product does not obey commutative, law of multiplication., �� ��, , ��, , | P ×Q |= P Q sin 90° = P Q, , 2. An external force is needed to move a body, from one point to other. Similarly to rotate, a body about an axis passing through it,, torque is required. Torque is a vector with, its direction along the axis of rotation and, magnitude, �� describing the turning effect, of force F acting on the body to rotate it, about, the, given, �� axis. Torque τ is given, as τ = r × F , r being the perpendicular, distance of a point on the body where the, force is applied from the axis of rotation., , P ×Q ≠ Q ×P, , �, , A×( B +C ) = A×B + A×C, , --- (2.20), , - Py Qx k� +0 + Py Qz �i, + Pz Qx �j - Pz Q y �i +0, , =(Py Qz - Pz Q y ) �i, , However, | P ×Q |= | Q ×P | i.e., the magnitudes, + (Pz Qx - Px Qz ) �j, are the same but the directions are opposite to, +(Px Q y - Py Qx ) k�, each other., This can be written in a determinant form as, (2) The vector product obeys the distributive, law of multiplication., , 24
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i �j, , �k, , P × Q = Px Py Pz, , , , --- (2.23), , �, Example 2.8: If A = 5i� +6 �j + 4k� and, �, B = 2i� - 2 �j + 3k� , determine the angle between, , , , A and B ., , Qx Q y Qz, , , (6) The magnitude of cross product of two, . B = A B cosθ = AxBx+AyBy+AzBz, A, Solution:, vectors is numerically equal to the area of a, parallelogram whose adjacent sides represent, Ax Bx + Ay B y + Az Bz, cosθ =, the two vectors., cosθ =, , cosθ =, , Fig 2.11: Area of parallelogram and vector, product., As shown in fig. 2.11,, , AB, Ax Bx + Ay By + Az Bz, , Ax 2 + Ay 2 + Az 2, , Bx 2 + B y 2 + B z 2, , (5)(2) +(6)(-2) +(4)(3), , 25 +36 +16 4 +4 +9, 10, = 0.2764, =, 77. 17, , θ = cos -1 0.2765 =73°58', , �, Example 2.9: Given P = 4�i - �j + 8 k� and, ��, �, ��, � ��, � � �� �, �, �j + 4 k� , find m if P and Q have the, �, Q, =, 2, i, m, are, inclined, at, P = OA , Q = OB, P and Q, same direction., an angle θ., ��, ��, Perpendicular BD, of length h drawn on Solution: Since P and Q have the same, OA, gives the height of the parallelogram with direction, their corresponding components must, OA as base., be in the same proportion, i.e.,, Py, Area of parallelogram, Px, P, =, = z, = base × height, Qx Q y Qz, BD, 4 -1 8, = OA � BD, as sin � �, =, =, OB, 2 -m 4, = P Q sin�, , �� ��, , ∴m =, , � P ×Q, , 1, 2, , 2.6 Introduction to Calculus:, = magnitude of the vector product --- (2.24), Calculus is the study of continuous (not, Example 2.7: The angular momentum, �, �, discrete), changes in mathematical quantities., , , L = r × p , where r is a position vector and p is This branch of mathematics was first developed, linear momentum of a body., by G.W Leibnitz and Sir Issac Newton in the, ��, �, �, th, �, �, �, �, �, �, If r = 4i ×6 j - 3k and p = 2i +4 j - 5k , find L 17 century and is extensively used in several, branches of science. You will study calculus, Solution:, in mathematics in XIIth standard. Here we will, �i, �j, k�, learn the basics of the two branches of calculus, � � �, namely differential and integral calculus. These, L =r×p = 4, 6, -3, are necessary to understand the topics covered, 2, 4, -5, in this book., �, �, 2.6.1 Differential Calculus:, ∴ L = (-30 +12) �i + (-6 + 20) �j +(16 - 12)k, Let us consider a function y = f(x). Here x, �, �, �, = -18i +14 j + 4k ., is called an independent variable and f(x) gives, the value of y for different values of x and is the, , 25
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dependent variable. For example x could be the, position of a particle moving along x-axis and, y = f(x) could be its velocity at that position, x. We can thus draw a graph of y against x as, shown in Fig. 2.12 (a). Let A and B be two points, on the curve giving values of y at x = x0 and, x = x0 + ∆x, where ∆x is a small increment in x., The slope of the straight line joining A and B is, �y, given by tan � �, ., �x, If we make ∆x smaller, the point B will, come closer to A and if we keep making ∆x, smaller and smaller, we will ultimately reach a, stage when B will coincide with A. This process, is called taking the limit ∆x going to zero and, lim . In this limit the line AB, is written as �x�0, extended on both sides to P and Q will become, the tangent to the curve at A, i.e., at, , Thus,, dy, dx, , x0, , �x � 0, , ( y � �y ) � y, �x, , f ( x0 + �x ) � f ( x0 ), df(x), � lim, dx x0 �x �0, �x, , We can drop the subscript zero and write, a general formula which will be valid for all, values of x as, dy, dx, , � lim, , �x � 0, , f(x + �x) - f(x) df(x), =, --- (2.25), �x, dx, , In XIIth standard you will learn about, the properties of derivatives and how to find, derivatives of different functions. Here we will, just list the properties as we will need them in, later Chapter s. dy/dx is called the derivative of, y with respect to x (which is the rate of change of, y with respect to change in x) and the process of, finding the derivative is called differentiation., Let f1(x) and f2(x) be two different functions of, x and let s be a constant. Some of the properties, of differentiation are, d(sf(x)), df(x), , --- (2.26), 1., =s, dx, dx, 2., , Fig. 2.12 (a): Average rate of change of y, with respect to x., , � lim, , 3., , d, dx, d, dx, , (f1 (x) + f 2 (x)) =, , df1 (x), dx, , (f1 (x)× f 2 (x)) = f1 (x), , , , +, , df 2 (x), , df 2 (x), dx, , dx, + f 2 (x), , --- (2.27), df1 (x), dx, , --- (2.28), , d � f1 (x) �, 1 df1 (x) f1 (x) df 2 (x), - 2, 4., �, �=, dx � f 2 (x) � f 2 (x) dx, f 2 (x) dx, --- (2.29), 5. If x depends on time another variable t then,, df(x) df(x) dx, --- (2.30), =, dt, dx dt, , Fig. 2.12 (b): Rate of change of y with, respect to x at x0, x = xo. In this limit both ∆x and ∆y will go to, zero. However, when two quantities tend to, zero, their ratio need not go to zero. In fact, � �y �, lim � �, �x � 0 �x becomes the slope of the tangent, � �, shown by PQ in Fig. 2.12 (b). This is written as, dy/dx at x = xo., , 6., , The derivatives of some simple functions, of x are given below., , 26
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1., , d, dx, , x, ax, 2. d(e ) = e x and d(e ) = ae ax, , dx, , d, , 3., , 2.6.2 Integral calculus, Integral calculus is the branch of, mathematics dealing with properties of integrals, and their applications. Physical interpretation, of integral of a function f(x), i.e., ∫ f(x)dx is, the area under the curve f(x) versus x. It is the, reverse process of differentiation as we will see, below., We know how to find the area of a, rectangle, triangle etc. In Fig. 2.13(a) we have, shown y which is a function of x, A and B being, two points on it., , (x n ) = n x n-1 --- (2.31), , --- (2.32), , dx, , (ln x) =, , 1, , --- (2.33), , dx, x, d, 4., ( sin x) = cos x --- (2.34), dx, 5. d, --- (2.35), ( cos x) = - sin x, , dx, 6. d ( tan x) = sec 2 x --- (2.36), dx, d, 2, , 7., , ( cot x) = - cosec x , , --- (2.37), , dx, 8. d ( sec x) = tan x sec x , dx, d, , 9., , --- (2.38), , ( cosec x) = - cosec x cot x , , dx, , --- (2.39), , Example 2.10: Find the derivatives of the, functions., (a) f(x) = x 8, (b) f(x) = x 3 + sin x, , Fig. 2.13 (a): Area under a straight line., , (c) f(x) = x 3sin x, , Solution : n, (a) Using dx = nx n-1 ,, dx, , 8, , d(x ), dx, , = 8x7, , (b) Using, d, , (f1 (x) + f 2 (x)) =, , dx, d ( sin x), dx, d, dx, , df1 (x), dx, , +, , df 2 (x), , and, , dx, , = cos x, , (x 3 + sin x) =, , d(x 3 ), , +, , dx, , d ( sin x), dx, , 2, , = 3x + cos x, , c) Using, d, dx, , (f1 (x) f 2 (x)) = f1 (x), , and, d, dx, , d( sin x), dx, 3, , df 2 (x), dx, , +, , df1 (x), dx, , f 2 (x), , = cos x, , (x sin x) = x, , 3, , d ( sin x), dx, , +, , d(x 3 ), dx, , = x 3 cos x +3x 2 sin x, , sin x, , Fig. 2.13 (b): Area under a curve., The area under the curve (straight line), from x = a to x = b is shown by shaded area., This can be obtained as sum of the area of the, rectangle ADEC = f(a) (b-a) and the area of the, triangle ABC = 1/2 (b-a) (f(b)-f(a)), Figure 2.13(b) shows another function of, x. We do not have a simple formula to calculate, the area under this curve. For this calculation,, we use a simple trick. We divide the area into a, large number of vertical strips as shown in the, figure. We assume thickness (width) of each, strip to be so small that it can be assumed to be, a rectangle as shown in the figure and add the, areas of these rectangles. Thus the area under, the curve is given by, , 27
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Area under the curve, =, , n, , n, , i =1, , i =1, , Indefinite integrals of some basic functions, are given below. Their definite integrals can be, obtained by using the Eq. (2.44), , � �Ai = � (xi - xi -1 ) f(xi ), , where n is the number of strips and ∆Ai is the, area of the ith strip., As the strips are not really rectangles, the, area calculated above is not exactly equal to the, area under the curve. However as we increase, n, the sum of areas of rectangles gets closer to, the actual area under the curve and becomes, equal to it in the limit n →∞. Thus we can write,, Area under the curve, , n+1, , 1. ∫ x n dx = x, , --- (2.47), n, +1, , 1, 2. ∫ dx = ln x , --- (2.48), x, , , n, , = lim, --- (2.40), � (xi - xi -1 ) f(xi ) , n ��, i =1, Integration helps us in getting exact area if, the change is really continuous, i.e., n is really, , ∫, , �, , n, , x=a, , i=l, , --- (2.41), The process of obtaining the integral is called, integration. We can also write, F(x) = ∫ f(x)dx, , � F(x), , d, dx, , (F(x)), , , , b, b, = F(b) - F(a) = � f(x)dx, a, a, , ∫ f(x)dx, , 2.11:, , Evaluate, , the, , following, , ∫ x dx, 8, , ∫ x dx, 2, , 2, , ∫ (x + sin x) dx, , (c), , Solution: (a) Using formula, x n+1, x9, n, 8, x, dx, =, x, dx, =, ,, ∫, n +1 ∫, 9, (b) Using Eq. (2.44),, , ∫, , 5, , 2, , x 2 dx =, , x3 5, 3 2, , =, , 5, , 3, , 3, , -, , 2, , 3, , 3, , =, , 125 - 8, 3, , =, , 117, 3, , (c) Using Eq. (2.45),, , --- (2.43), , � � f (x) + f (x)� dx =� f (x)dx + � f (x)dx, and � sin x dx = cos x, we get � (x + sin x) dx, 1, , 2, , � x dx + � sin x dx =, , --- (2.44), , 1, , x2, 2, , 2, , - cos x, , Internet my friend, , Properties of integration, 1. � � f1 (x) + f 2 (x) � dx = � f1 (x)dx + � f 2 (x)dx, --- (2.45), 2. ∫ K f(x)dx = K, , --- (2.51), , 5, , --- (2.42), , , F(x) is called the indefinite (without any, limits on x) integral of f(x). Differentiation, is the reverse process to that of integration., Therefore,, f(x) =, , 5. ∫ e x dx = e x , , (b), , f(x) dx = lim � (xi - xi-1 ) f(xi ), n ��, , --- (2.50), , f(x)dx and is, , called the definite integral of f(x) from x = a to, x = b., Thus,, , 4. ∫ cos x dx = sin x , , (a), , x =a, , x=b, , --- (2.49), , Example, integrals:, , x =b, , infinite. It is represented as, , 3. ∫ sin x dx = - cos x , , 1. hyperphysics.phy-astr.gsu.edu/hbase/vect., html#veccon, 2. hyperphysics.phy-astr.gsu.edu/hbase/, hframe.html, , for K = constant, , --- (2.46), , 28
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ises, , erc, , Ex, , Exercises, , �, 1. Choose the correct option., iv) Find a vector which is parallel to v = �i - 2 �j, i) The resultant of two forces 10 N and 15 N, and has a magnitude 10., acting along + x and - x-axes respectively,, 10 20 �, �, is, ij�, � Ans :, , 5, 5 �, �, (A) 25 N along + x-axis, �, (B) 25 N along - x-axis, v) Show that vectors a = 2�i + 5 �j - 6k� and, (C) 5 N along + x-axis, �, 5, b = �i + �j - 3k� are parallel., (D) 5 N along - x-axis, 2, ii) For two vectors to be equal, they should, 3. Solve the following problems., have the, �, , (A) same magnitude, i) Determine a ×b , given a = 2i� +3 �j and, �, (B) same direction, b = 3i� +5 �j ., (C) same magnitude and direction, (D) same magnitude but opposite direction �� Ans : k ��, �, iii) The magnitude of scalar product of two, ii) Show that vectors a = 2i� +3 �j +6k� ,, unit vectors perpendicular to each other is, �, �, , b = 3i� - 6 �j +2k� and c =6i� +2 �j - 3k� are, (A) zero , (B) 1, mutually perpendicular., (C) -1 , (D) 2, iv) The magnitude of vector product of two iii) Determine the vector product of, ��, ��, �, � +3 �j - k� and v �i +2 �j - 3k� ,, unit vectors making an angle of 60° =, with, v1 2i, =, 2, each other is, � Ans : - 7i +5 j +k �, , (A) 1 , (B) 2, �, �, ��, ��, �, �, (C) ��3/2 , (D), 3, /, 2, �, �, ��, iv) Given v1 = 5i + 2 j and v 2 = ai - 6 j are, ��, v) If A, B and C are three vectors, then, perpendicular to each other, determine the, which of the following is not correct?, value of a. , �� �� �� �� �� �� ��, 12 �, �, (A) A � B � C � A � B � A � C, , �� Ans : �, �� �� �� ��, 5�, �, (B) A � B � B � A, v) Obtain derivatives of the following, �� �� �� ��, functions:, (C) A � B � B � A, �� �� �� �� �� �� ��, (i) x sin x , (ii) x4+cos x , (D) A � B � C � A � B � B � C, (iii) x/sin x, 2. Answer the following questions., �, � Ans : (i) sin x + x cos x,, � �i - �j, �, �, i) Show that a =, is a unit vector., �(ii) 4x 3 - sin x, (iii) 11 - x cos2 x �, 2, sin x sin x �, �, ��, ��, �, , � +4 �j +k� and v �i - �j - k� ,, ii) If v1 3i=, =, 2, vi) Using the rule for differentiation for, �� ��, �, v, +, v, quotient of two functions, prove that, , determine the magnitude of 1 2 ., d � sin x �, [Ans: 5], 2, ��, �, � cos x � = sec x, ��, dx, �, �, �, �, iii) For v1 = 2i� - 3 �j and v 2 � �6i +5 j , , determine, the magnitude and direction of vii) Evaluate the following integral:, �� ��, �, � /2, 5, v1 + v 2 ., (i) � sin x dx, (ii) � x dx, 0, 1, , �, � , 1�, -1 �, Ans, :, 2, 5, ,, �, =, tan, �, with, axis, x, � 2�, �, �, � Ans : (i) 1,(ii) 12�, �, �, �, �, , ***, , �, , �, , �, , �, , 29
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3., , Motion in a Plane, Can you recall?, , 1. What is meant by motion? , 2. What is rectilinear motion?, 3. What is the difference between displacement and distance travelled?, 4. What is the difference between uniform and nonuniform motion?, 3.1 Introduction:, We see objects moving all around us. Motion, is a change in the position of an object with time., We have come across the motion of a toy car, when pushed along some particular direction,, the motion of a cricket ball hit by a batsman for, a sixer and the motion of an aeroplane from one, place to another. The motion of objects can be, divided in three categories: (1) motion along a, straight line, i.e., rectilinear motion, (2) motion, in two dimensions, i.e., motion in a plane and,, (3) motion in three dimensions, i.e., motion in, space. The above cited examples correspond to, three types of motions, respectively. You have, studied rectilinear motion in earlier standards., In rectilinear motion the force acting on the, object and the velocity of the object both are, along one and the same line. The distances are, measured along the line only and we can indicate, distances along the +ve and –ve axes as being, positive and negative, respectively. The study, of the motion of an object in a plane or in space, becomes much easier and the corresponding, equations become more elegant if we use vector, quantities. In this Chapter we will first recall, basic facts about rectilinear motion. We will, use vector notation for this study as it will be, useful later when we will study the motion in, two dimensions. We will then study the motion, in two dimensions which will be restricted to, projectile motion only. Circular motion, i.e., the, motion of an object around a circular path will, be introduced here and will be studied in detail, in the next standard., 3.2 Rectilinear Motion:, Consider an object moving along a straight, line. Let us assume this line to be along the, , , , x-axis. Let x1 and x 2 be the position vectors, , of the body at times t1 and t2 during its motion., , The following quantities can be defined for the, motion., 1. Displacement: The displacement of the, object between t1 and t2 is the difference, between the position vectors of the object at, the two instances. Thus, the displacement, is given by, , , , --- (3.1), s � � x � x 2 � x1, Its direction is along the line of motion, of the object. Its dimensions are that of, length. For example, if an object has, travelled through 1 m from time t1 to t2, along the +ve x-direction, the magnitude, of its displacement is 1 m and its direction, is along the +ve x-axis. On the other, hand, if the object travelled along the, +ve y direction through the same distance, in the same time, the magnitude of its, displacement is the same as before, i.e., 1, m but the direction of the displacement is, along the +ve y-axis., 2. Path length: This is the actual distance, travelled by the object during its motion., It is a scalar quantity and its dimensions, are also that of length. If an object travels, along the x-axis from x = 2 m to x = 5 m, then the distance travelled is 3 m. In this, case the displacement is also 3 m and its, direction is along the +ve x-axis. However,, if the object now comes back to x = 4, then, the distance through which the object has, moved increases to 3 + 1 = 4 m. Its initial, position was x = 2 m and the final position, is now x = 4 m and thus, its displacement, is ∆x = 4 – 2 = 2 m, i.e., the magnitude of, the displacement is 2 m and its direction, is along the +ve x-axis. If the object now, moves to x =1, then the distance travelled,, i.e., the path length increases to 4 + 3 =, , 30
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7 m while the magnitude of displacement, becomes 2 – 1 = 1 m and its direction is, along the negative x-axis., 3. Average velocity: This is defined as the, displacement of the object during the time, interval over which average velocity is, being calculated, divided by that time, interval. As displacement is a vector, quantity, the velocity is also a vector, quantity. Its dimensions are [L1 M0 T-1]., If the position vectors of the object are, , , , , x1, , and x 2 at times t1 and t2 respectively, then, the average velocity is given by, , , x 2 � x1, v av �, --- (3.2), (, t, t, ), 2, 1, , , For example, if the positions of an object, are x = +2 m and x = +4 m at times t = 0 and, t = 1 minute respectively, the magnitude, of its average velocity during that time is, vav = (4 - 2)/(1- 0) = 2 m per minute and its, direction will be along the +ve x-axis, and, �, we write vav = 2�i m/min where i is a unit, vector along x-axis., 4. Average speed: This is defined as the, total path length travelled during the time, interval over which average speed is being, calculated, divided by that time interval., Average speed = vav = path length/time, interval. It is a scalar quantity and has the, same dimensions as that of velocity, i.e.,, [L1 M0 T-1]., If the rectilinear motion of the object is, only in one direction along a line, then, the magnitude of its displacement will, be equal to the distance travelled and so, the magnitude of average velocity will be, equal to the average speed. However if the, object reverses its direction (the motion, remaining along the same line) then the, magnitude of displacement will be smaller, than the path length and the average, speed will be larger than the magnitude of, average velocity., 5. Instantaneous velocity: I n s t a n t a n e o u s, velocity of an object is its velocity at a, , given instant of time. It is defined as the, limiting value of the average velocity of, the object over a small time interval (∆t), around t when the value of the time interval, (∆t) goes to zero., �, �, �, � �x � d x, ,, --- (3.3), v � lim ��, ��, � t �0 �t �, dt, �, �, , , , dx, being the derivative of x with respect, , dt, to t (see Chapter 2)., 6. Instantaneous speed: Instantaneous speed, is the speed of an object at a given instant, of time t. It is the limiting value of the, average speed of the object taken over, a small time interval (∆t) around t when, the time interval goes to zero. In such a, limit, the path length will be equal to the, magnitude of the displacement and so the, instantaneous speed will always be equal, to the magnitude of the instantaneous, velocity of the object., Always Remember:, For uniform rectilinear motion, i.e., for an, object moving with constant velocity along, a straight line, 1. The average and instantaneous, velocities are equal., 2. The average and instantaneous speeds, are the same and are equal to the, magnitude of the velocity., For nonuniform rectilinear motion, 1. The average and instantaneous, velocities are different., 2. The average and instantaneous speeds, are different., 3. The average speed will be different, from the magnitude of average velocity., Example 3.1: A person walks from point P to, point Q along a straight road in 10 minutes,, then turns back and returns to point R which, is midway between P and Q after further 4, minutes. If PQ is 1 km, find the average speed, , 31
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and velocity of the person in going from P to R., Solution: The path length travelled by the, person is 1.5 km while the displacement is the, distance between R and P which is 0.5 km. The, time taken for the motion is 14 min., The average speed = 1.5 / 14 = 0.107 km/min =, 6.42 km/hr., The magnitude of the average velocity = 0.5/14, = 0.0357 km/min = 2.142 km/hr., Graphical Study of Motion, We can study the motion of an object by, using graphs showing its position as a function, of time. Figure 3.1 shows the graphs of position, as a function of time for five different types, of motion of an object. Figure 3.1(a) shows, an object at rest, for which the x-t graph is a, horizontal straight line. Since the position, is not changing, displacement of the object, zero. Velocity is displacement (which is zero), divided by time interval or the derivative of, displacement with respect to time. It can be, obtained from the slope of the line plotted in, the figure which is zero., Figure 3.1(b) shows x-t graph for an object, moving with constant velocity along the +ve xaxis. Since velocity is constant, displacement, is proportional to elapsed time. The slope, of the straight line is +ve, showing that the, velocity is along the +ve x-axis. As the motion, is uniform, the average velocity is same as the, instantaneous velocity at all times. Also, the, speed is equal to the magnitude of the velocity., Figure 3.1(c) shows the x-t graph for a, body moving with uniform velocity but along, the -ve x-axis, the slope of the line being -ve., Figure 3.1(d) shows the x-t graph of an object, having oscillatory motion with constant speed., The direction of velocity changes from +ve to, -ve and vice versa over fixed intervals of time., , Fig 3.1 (b): Object with uniform velocity, along +ve x-axis., , Fig 3.1 (c): Object with uniform velocity, along -ve x-axis., , Fig 3.1 (d): Object performing oscillatory, motion., , Fig.3.1 (e): Object in nonuniform motion., Figure 3.1(e) shows the motion of an, , Fig 3.1 (a): Object at rest., , 32
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object with nonuniform velocity. Its velocity, changes with time and, therefore, the average, and instantaneous velocities are different., Figure shows the average velocity over time, interval from t1 to t4 around time t0, which can, be seen from Eq. (3.2) to be the slope of line, AB. For a smaller time interval from t2 to t3, the, average velocity is the slope of the line CD. If, we keep reducing the time interval around t0, we, will ultimately come to a limit, when the time, interval will go to zero and lines AB, CD... will, go over to the tangent to the curve at t0. The, instantaneous velocity at t0 will thus be equal to, the slope of the tangent PQ at t0 (see Eq. (3.3))., 7. Acceleration: Acceleration is defined as, the rate of change of velocity with time. It is, a vector quantity and its dimensions are [L1, M0 T-2]. The average acceleration of an object, , , having velocities v1 and �v 2 at times t1 and t2 is, given by, , � v 2 � v1 � --- (3.4), a�, � t2 � t1 �, , the displacement of the object during that time, interval (as shown below). Figure 3.2(d) shows, the motion of an object having nonuniform, acceleration. The average acceleration between, t1 and t2 around t0 and the instantaneous, accelerations at t0 for the object are shown by, straight lines AB and CD respectively., , Instantaneous acceleration is the limiting, value of the average acceleration when the, time interval goes to zero. It is given by, �, �, �, � � v � dv, a � lim �, �, , --- (3.5), � t �0 �t �, �, � dt, The instantaneous acceleration at a given, time is the slope of the tangent to the velocity, versus time curve at that time. Figure 3.2, shows the velocity versus time (v - t) graphs for, four different cases. Figure 3.2(a) represents, the motion of an object with zero acceleration,, i.e., constant velocity. The shaded area under, the velocity-time graph over some time interval, t1 to t2, shown in Figs. 3.2(a) is equal to v0, (t2 - t1) which is the magnitude of the displacement, of the object from t1 to t2. Figure 3.2(b) is the, velocity-time graph for an object moving with, constant +ve acceleration (magnitude of velocity, uniformly increasing with time). Figure 3.2(c), shows similar motion but the object has -ve, acceleration, i.e., the acceleration is opposite, to the direction of velocity which, therefore,, decreases uniformly with time. The area under, both the curves between two instants of time is, , 33, , v0, v, , Fig 3.2 (a): Object moving with constant, velocity., v2, v v, 1, , Fig 3.2 (b): Object moving with velocity (v), along +ve x-axis with uniform acceleration, along the same direction., , v, , v1, v2, , Fig 3.2 (c): Object moving with velocity (v), with negative uniform acceleration.
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v, , Fig. 3.2 (d): Object moving with nonuniform, acceleration., The area under the velocity-time curves, in Figs. 3.2(a) to (d) can be written using the, definition of integral given in Chapter 2 as, t2, , t, , Equations of Motion for Uniform, Acceleration:, We can graphically derive Newton's, equations of motion for an object moving with, uniform acceleration. Consider an object having, position x = 0 at t = 0. Let the velocity at t = 0 be, u and at time t be v. The graphical representation, of motion is shown in Fig. 3.3. The acceleration, is given by the slope of the line AB. Thus,, v�u v�u, Acceleration, a �, �, t �0, t, � v � u � at� , --- (3.7), This is the first equation of motion., v, , t, , 2, 2, dx, v�, dt, �, �, �, dt, �, �, Area = �, �t dt �t dx ��x(t2 ) � x(t1 ) --- (3.6), t1, 1, 1, , v, , = displacement of the object from t1 to t2., Always Remember:, For uniform acceleration, for a rectilinear, motion:, 1. Velocity-time graph is linear., 2. The area under the velocity-time graph, between two instants of time t1 and t2, gives the displacement of the object, during that time interval., 3. The slope of the velocity-time graph is, the acceleration of the object, For nonuniform acceleration in a rectilinear, motion:, 1. Velocity-time graph is nonlinear., 2. The area under the velocity-time graph, between two instants of time t1 and t2, gives the displacement of the object, during that time interval., 3. The instantaneous acceleration of the, object at a given time is equal to the, slope of the tangent to the curve at that, point., While using the concept of area under the, curve, the origin of the velocity axis (for v-t, graph) must be zero., , O, , Fig.3.3: Derivation of equation of motion, for motion with uniform acceleration., As we know, the area under the curve in, velocity-time graph is the displacement of, the object. Thus displacement s = area of the, quadrilateral OABD. = area of triangle ABC +, area of rectangle OACD., 1, = � v � u � t �� �ut, 2, 1 2, --- (3.8), Using Eq. (3.7), s �� �ut �� � at, 2, This is the second equation of motion., As the acceleration is constant, the, velocity is increasing linearly with time and, we can use average velocity vav, to calculate the, displacement using Eq. (3.7) as , � v � u � � v � u� � v � u�, s � vav t � �, �t �, 2a, � 2 �, , �, , �, , ��s �� � v 2 � u 2 / � 2a �, , �, � �v 2 � �u 2 � �2 �a .s , , 34, , --- (3.9)
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This is the third equation of motion. Vector, notation was not included here as the motion, was rectilinear., The most common example of uniform, rectilinear motion with uniform acceleration of, an object in day to day life is a freely falling, body. When a body starts with zero velocity at, a certain height from the ground and falls under, the influence of the gravity of the Earth , it is, said to be in free fall. The only other force that, acts on it is that of the air resistance or friction., For displacements of a few metres, this force is, too small and can be neglected. The acceleration, of the body is the acceleration due to gravity, which is along the vertical direction and can be, assumed to be constant over distances which are, small compared to the radius of the Earth . Thus, the velocity and acceleration are both along the, vertical direction and the motion is a uniform, rectilinear motion with uniform acceleration., Do you know ?, The distance travelled by an object starting, from rest and having a uniform acceleration, in successive seconds are in the ratio, 1:3:5:7... Consider a freely falling object., Let us calculate the distances travelled by, it in equal intervals of time t0 (say). This, can be done using the second equation, of motion s = u t0 +(1/2) g t02. The initial, velocity is zero. Therefore, the distance, travelled in the first t0 interval = (1/2) g, t02. For simplification let us write (1/2), g = A. Then the distance travelled in the, first t0 time interval = d1 = At02. In the time, interval 2t0, the distance travelled = A(2t0)2., Hence, the distance travelled in the second, t0 interval is d2 = A(4t02 - t02) = 3A t02 = 3, d1. The distance travelled in time interval, 3t0 = A(3t0)2. Thus, the distance travelled, in the 3rd t0 interval = d3 = A(9t02 – 4t02) =, 5A t02 = 5d1. Continuing, one can see that the, distances d1, d2, d3 .. are in the ratio 1:3:5:7..., This is true for any rectilinear motion,, starting from rest, with positive uniform, acceleration., , Example 3.2: A stone is thrown vertically, upwards from the ground with a velocity 15, m/s. At the same instant a ball is dropped from, a point directly above the stone from a height, of 30 m. At what height from the ground will, the stone and the ball meet and after how much, time? (Use g = 10 m/s2 for ease of calculation)., Solution: Let us assume that the stone and, the ball meet after time t0. The distances (not, displacements) travelled by the stone and the, ball in that time can be obtained from Eq. (3.8), as, 1, g t02, sstone = 15 t0 –, 2, 1, sball = g t02, 2, When they meet, sstone + sball = 30, 1, 1, g t02 + g t02 = 30, 15 t0 2, 2, t0 = 30/15 = 2 s, 1, ∴ sstone = 15 (2) – � (10) (2)2 = 30 -20 =10 m, 2, Thus the stone and the ball meet at a height of, 10 m., 8. Relative Velocity: You must have often, experienced relative motion. The most striking, example is when you are going in a train and, another train travelling in the same direction, along parallel tracks, overtakes you. If you look, at that train, it actually seems to be moving, much slower than what your train seemed, to move and yet it is overtaking you. On the, other hand if your train overtakes another, train, travelling on a parallel track in the same, direction, and you look at that train, you feel, that your train has suddenly slowed down. Why, does this happen? This is because when you, look at the neighbouring train, you are actually, experiencing relative motion, i.e., your motion, with respect to the other train or the motion, of the other train with respect to you. Thus, in, the first case as the other train overtakes you, what you perceive is the velocity of the train, with respect to you, i.e., the difference in the, velocities of the two trains which most often is, much smaller than the velocity of your train. In, the second case, you are moving faster but when, you look at that train you only feel your velocity, , 35
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relative to it and, therefore, your velocity, appears to be lower than its actual value. We, can define relative velocity of object A with, respect to object B as the difference between, their velocities, i.e.,, vAB = vA – vB , --- (3.10), Similarly, the velocity of B with respect to A is, given by, vBA = vB – vA --- (3.11), We assume that at time t = 0, A and B were, at the same point x = 0. As they are travelling, with different velocities, the distance between, them will go on increasing with time in direct, proportion to the difference in their velocities,, i.e., the relative velocity between them., Example 3.3: An aeroplane A, is travelling, in a straight line with a velocity of 300 km/hr, with respect to Earth. Another aeroplane B,, is travelling in the opposite direction with a, velocity of 350 km/hr with respect to Earth., What is the relative velocity of A with respect, to B? What should be the velocity of a third, aeroplane C moving parallel to A, relative to, the Earth if it has a relative velocity of 100, km/hr with respect to A?, Solution: Let vA, vB and vC be the velocities of, the three planes relative to the Earth. Relative, velocity of A with respect to B = vAB = vA - vB =, 300 – (-350) = 650 km/hr, Relative velocity of C with respect to A = vCA =, vC - vA = 100 km/hr., Thus, vC = vCA + vA= 400 km/hr, , the value of average speed will be different as, the magnitude of the displacement need not, be equal to the path length. For example, if a, particle travels along a circle and comes back, to its original position, its displacement will, be zero but the path length will be equal to the, circumference of the circle., 3.3.1 Average and Instantaneous Velocities:, For studying the motion of an object in two, dimensions, for simplicity, we will take the plane, to be the x-y plane. To describe the position of, an object in this plane we will have to specify,, both its x and y coordinates. The definitions, of displacement, average and instantaneous, velocities, average and instantaneous speeds, and acceleration will be the same as those for, rectilinear motion except that each of these, quantities will now have components along the, x and y directions. Let us assume the object to, be at point P at time t1 as shown in Fig. 3.4 (a)., ∆y, , ∆x, , Fig. 3.4 (a) Motion in two dimensions, , 3.3 Motion in Two Dimensions-Motion in a, Plane:, So far we were considering rectilinear, motion of an object. The direction of motion of, the object was always along one straight line., Now we will consider the motion of an object, in two dimensions, i.e., along a plane. Here, the, direction of the force acting on an object will not, be in the same line as its initial velocity. Thus,, Fig. 3.4 (b) Instantaneous velocity, the velocity and acceleration will have different, The position of the object will be described, directions. For this reason we have to use vector, , equations. The definitions of various terms by its position vector r 1 �. This can be written in, given in section 3.2 will remain valid except terms of its components along the x and y axes, that the magnitude of the average velocity and as, , 36
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each, in SI units., , , , Solution: v1 = d x 1/dt = 0 as x 1 does not depend, on time t., Thus, the particle is at rest., , , , v 2 = d x 2 /dt = 5 i + 5 j m/s. v 2 does not, change with time. � a 2 � 0�, , which is the vector form of Eq. (3.8)., Eq. (3.30) and (3.31) can be resolved into their, x and y components so as to get corresponding, scalar equations as follows., vx = ux + ax t , --- (3.32), , v 2 � 52 � 52 � 5 2 m / s , tan θ = 5/5 = 1 or θ =, , 1, --- (3.34), s x � ux t � �a x t 2 , 2, 1, s y � �u y t � a y t 2 , and, --- (3.35), 2, We can see that Eqs. (3.32) and (3.34), involve only the x components of displacement,, velocity and acceleration while Eqs. (3.33) and, (3.35) involve only the y components of these, quantities. Thus the two sets of equations are, independent of each other and can be solved, independently. We can thus see that the motion, along the x direction of an object is completely, controlled by the x components of velocity and, acceleration while that along the y direction is, completely controlled by the y components of, these quantities. This makes it easy to study the, motion in two dimensions which gets converted, to two independent rectilinear motions along, two perpendicular directions., , 45°. Thus, the direction of v2 makes an angle of, 45° to the horizontal., , , v 3 = d x 3 / dt =5 i +20t j ., � v 3 � 52 � (20t ) 2 m / s . Its direction is along, � 20t �, θ = tan-1 �, � with the horizontal., � 5 �, , dv 3, =, a3 =, 20 ˆj m / s 2, dt, Thus, the particle 3 is getting accelerated along, the y-axis at 20 m/s2., 3.3.3 Equations of Motion for an Object, travellinging a Plane with Uniform, Acceleration:, We have derived equations of motion for, an object in rectilinear motion in section 3.2., We will now derive similar equations for a, particle moving with uniform acceleration in, two dimensions., Let the initial velocity of the, , object, be u at t = 0 and its velocity at time t be, , v . As the acceleration is constant, the average, acceleration and the instantaneous acceleration, will be equal. By using the definition of, acceleration (Eq. (3.21)), we get, , , a = ( v - u )/(t - 0), , , , or v = u + a t , --- (3.30), which is the same as Eq. (3.7) but is in vector, form., Let the displacement from time t = 0 to t, , be s . This can be calculated from the average, velocity of the object during this time. For, , , u+v, constant acceleration, v av =, 2, , , , , � u� v � � u�u�a t �, � s � vav t � ��, �� t � ��, �� t, 2, � 2 � �, �, , 1, ∴ s = u t + � a t2 , --- (3.31),, 2, , � �, , and, , vy = uy + ay t, , , , --- (3.33), , Always Remember:, Motion in two dimensions can be, resolved into two independent motions in, mutually perpendicular directions., Example 3.5: The initial velocity of an object, , is u = 5 i + 10 j m/s. Its constant acceleration, , is a = 2 i + 3 j m/s2. Determine the velocity, and the displacement after 5 s., Solution:, , �v � u � a t, � � 5iˆ �� 10, � ˆj � 2iˆ �� �3 ˆj � 5 � � 15iˆ �� �25 ˆj, , �, , � �, , �, , � v � v 2x � v 2y, � 152 � 252 � 225 � 625 � 850, � 29.15 m / s, � vy �, , Direction of v with x-axis is tan-1 � � � tan-1, � vx �, , 38
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25 �, � 15 � � tan-1(1.667) = 59o, � �, , 1, s � u t � a �t 2, 2, 1, � ˆj � 5 � � 2iˆ �� �3 ˆj 52, � � 5iˆ �� 10, 2, ˆ, ˆ, � 50i �� � 87.5 � j �, , �, , �, , �, , Solution: Let the velocity, of the aeroplane, with respect to Earth be v AE, , velocity of wind, with respect to Earth be v WE. The, velocity, of aeroplane with respect to wind, v AW can be, determined by the following expression:, , , , , , , =, +, =, = – 100 i +300 j ,, , �, , v AW, , v AE v EW, , v AE v WE, , considering north along +y axis., , , , Magnitude of v AW =, , � s � sx2 � s 2y � 502 � 87.52, � 2500 � 7656.25, � 10156.25 � 100.78 m, 87.5, � 60�15 ' with x-axis., 50, 3.3.4 Relative Velocity:, Relative velocity between two objects, moving in a plane can be defined in a way similar, to that for objects moving along a straight line., The relative velocity of object A having velocity, , v A , with respect to the object B having velocity, , v B , is given by, , , , v AB = v A – v B , --- (3.36), Similarly, the relative velocity of object B with, respect to object A , is given by, , , v BA = v B - v A , , --- (3.37), We can see that the magnitudes of the two, relative velocities (vAB and vBA) are equal and, their directions are opposite., Consider a number of objects A, B, C, D, ---- Y, Z, moving with respect to the other. Using, the symbol vAB for representing the velocity of, A relative to B etc, the velocity of A relative to, Z can be written as, �1, at tan, , , , , , , , v AZ � v AB � v BC � vCD � ... � v XY � vYZ, , Note the order of subscripts (A→B→C→D--→Z)., Example 3.6: An aeroplane is travelling, northward with a speed of 300 km/hr with, respect to the Earth, when wind is blowing from, east to west at a speed of 100 km/hr. What is, the velocity of the aeroplane with respect to the, wind?, , � 1� 0000 � 90000 �, , = 100 10 km/hr, and its direction,, � 300 �, � � tan �1 �, � 71.6� is towards north of, �100 ��, �, , east., 3.3.5 Projectile Motion:, Any object in flight after being thrown, with some velocity is called a projectile and, its motion is called projectile motion. We often, see projectile motion in our day-to-day life., Children throw stones towards trees for getting, tamarind pods or mangoes. A bowler bowls a, ball towards a batsman in cricket, a basket ball, player throws a ball towards the basket, all these, are illustrations of projectile motion. In this, motion, we have objects (projectiles) with given, initial velocity, moving under the influence of, the Earth's gravitational field. The projectile, has two components of velocity, one in the, horizontal, i.e., along x-direction and the other, in the vertical, i.e., along the y direction. The, acceleration due to gravity acts only along the, vertically downward direction. The horizontal, component of velocity, therefore, remains, unchanged as no force is acting in the horizontal, direction, while the vertical component changes, in accordance with laws, of motion with, , , , a x being 0 and a y (= - g ) being the downward, acceleration due to gravity (upward is positive)., Unless stated otherwise, retarding forces like air, resistance, etc., are neglected for the projectile, motion., Let us assume that the initial velocity of, , the projectile is u and its direction makes an, angle θ with the horizontal as shown in Fig., 3.5. The projectile is thrown from the ground., We take the x-axis along the ground and y-axis, in the vertical direction. The horizontal and, vertical components of initial velocity are u, , 39
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cosθ and u sinθ respectively. The horizontal, component remains unchanged in absence of, any force acting in that direction, while the, vertical component changes according to (Eq., 3.33) with ay = -g and uy = u sinθ., , B, , Fig.3.5: Trajectory of a projectile., Thus, the components of velocity at time t are, given by, vx = ux = u cosθ , --- (3.38), vy = uy – gt = u sinθ – gt, --- (3.39), As 0 < θ < 90°, the vertical component initially, is in the upward direction. Similarly, the, displacements of the projectile in the horizontal, and vertical directions at time t, according to, Eqs. (3.34) and (3.35) are given by, sx = ucosθ.t ---- (3.40), 1, sy = usinθ.t �- � gt2 , --- (3.41), 2, The direction of motion of the projectile at any, time t makes an angle α with the horizontal, which is given by, tan α = vy(t)/vx(t) , --- (3.42), The vertical velocity keeps on decreasing, as the projectile goes up and becomes zero, at certain time. At that time the height of the, projectile is maximum. The velocity then, starts increasing in the downward direction as, the particle is now falling under the Earth 's, gravitational field with a constant horizontal, component of velocity. After a while the, projectile reaches the ground. The trajectory of, the object is shown in Fig. 3.5. The projectile, is assumed to start from the origin of the, coordinate system, O. The point of maximum, height is indicated by P and the point where it, falls down to the ground is indicated by Q. The, horizontal and vertical components of velocity, , are shown at these points as well as at two, intermediate points A and B, on the trajectory, of the projectile. Note that the horizontal, component of velocity remains the same, i.e.,, ux, while the vertical component decreases, and becomes zero at P. After that it changes its, direction, its magnitude increases and becomes, equal to uy again at Q. The horizontal distance, covered by the projectile before it falls to the, ground is OQ. We can derive the equation of, the trajectory of the projectile as follows., Let the time taken by the projectile to reach, the maximum height be t0. The trajectory of the, object being symmetrical, it can be shown by, using equations of motion, that the object will, take the same time in going up in air and coming, down to the ground. At the highest point P, t = t0, and vy = 0. Using Eq. (3.39),, we get, 0 = u sinθ – gt0, t0 = (u sinθ)/g , --- (3.43), ∴ Total time in air = T = 2t0 is the time of flight., The total horizontal distance travelled by, the particle in this time T can be obtained by, using Eq. (3.40) as, R = ux. T = u cosθ.2t0 = u cosθ. (2u sinθ)/g, = 2 ux uy /g = u2(2 sinθ cosθ)/g, = u2 sin2θ/g , --- (3.44), This maximum horizontal distance, travelled by the projectile is called the horizontal, range R of the projectile and depends on the, magnitude and direction of initial velocity of the, projectile as well as the value of acceleration, due to gravity at that place., For maximum horizontal range,, sin2 � � 1� � 2� � 900 or � � 450 �, u2, �for�� � 450, g, The maximum height H reached by the, projectile, having certain value of θ, is the, distance travelled along the vertical (y), direction in time t0. This can be calculated by, using Eq. (3.41) as, 1, H = u sin θ . t0 – g t02, 2, � u sin� � 1 � u sin� �2, � u sin � �, �– g, � g � 2 �� g ��, Hence, R � Rmax �, , 40
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=, , 2, u 2sin 2� u y, , �, 2g, 2g, , Maximum horizontal distance travelled, R = 2.ux.uy/g = 2(15)(20)/10 = 60 m, Equation of motion for a projectile, We can derive the equation of motion of, the projectile which is the relation between, the displacements of the projectile along the, vertical and horizontal directions. This can be, obtained by eliminating t between the equations, giving these displacements, i.e., Eqs. (3.40) and, (3.41)., , As the projectile starts from x = 0, we can, write sx = x and sy = y. , sx, x, � s x � � u cos� � t ���� t �, ��, u cos� u cos�, , --- (3.45), , Do you know ?, All the above expressions of T, R, Rmax and, H are valid if the entire motion is governed, only by gravitational acceleration g, i.e.,, retarding forces like air resistance are, absent. However, in reality, it is never so. As, a result, time of ascent ta and time of decent, td are not equal but ta > td . Also, in order, to achieve maximum horizontal range for, given initial velocity, the angle of projection, should be greater than 450 and the range is, 2, much less than u ., g, , 1, � y � � u sin� � t � gt 2, 2, , Example 3.7: A stone is thrown with an, initial velocity components of 20 m/s along, the vertical, and 15 m/s along the horizontal, direction. Determine the position and velocity, of the stone after 3 s. Determine the maximum, height that it will reach and the total distance, travelled along the horizontal on reaching the, ground. (Assume g = 10 m/s2), Solution: The initial velocity of the stone in, x-direction = u cos θ = 15 m/s and in y-direction, = u sinθ = 20 m/s., After 3 s, vx = u cosθ = 15 m/s and vy = u sinθ –, gt = 20 – 10(3)= - 10 m/s = 10 m/s downwards., � v � v 2x � v 2y � 152 � 102, � 225 � 100 � 325, � 18.03 m / s, , tan α = vy/ vx = 10/15 = 2/3, ∴α = tan-1 (2/3) = 33° 41' with the horizontal., sx = (u cosθ) t = 15×3 = 45 m,, 1, sy = (u sinθ) t – gt2 = 20 × 3 - 5(3)2 = 15 m., 2, Thus the stone will be at a distance 45 m along, horizontal and 15 m along vertical direction, from the initial position after time 3 s. The, velocity is 18.03 m/s making an angle 33° 41', with the horizontal., The maximum vertical distance travelled is, given by H = (u sinθ)2/(2g) = 202/(2 ×10) = 20 m, , � x, � � u sin� � �, � u cos�, , � 1 � x �, � � 2 g � u cos� �, �, �, �, , 1�, g, � y � � tan� � x � � 2, 2 � u cos 2�, , � 2, �x, �, , 2, , --- (3.46), , This is the equation of the trajectory of the, projectile. Here, u and θ are constants for the, given projectile motion. The above equation is, of the form, y = Ax + Bx2 , --- (3.47), which is the equation of a parabola. Thus,, the path, i.e., the trajectory of a projectile is a, parabola., 3.4 Uniform Circular Motion:, An object moving with constant speed, along a circular path is said to be in uniform, circular motion (UCM). Such a motion is only, possible if its velocity is always tangential to its, circular path, without change in its magnitude., To change the direction of velocity,, acceleration is a must. However, if the, acceleration or its component is in line with, the velocity (along or opposite to the velocity),, it will always change the speed (magnitude of, velocity) in which case it will not continue its, uniform circular motion. In order to achieve both, these requirements, the acceleration must be (i), perpendicular to the tangential velocity, (ii) of, constant magnitude and (iii) always directed, , 41
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towards the centre of the circular trajectory., Such an acceleration is called centripetal, (centre seeking) acceleration and the force, causing this acceleration is centripetal force., Thus, in order to realize a circular motion,, there are two requirements; (i) tangential, velocity and (ii) centripetal force of suitable, constant magnitude., An example is the motion of the moon, going around the Earth in an early circular orbit, as a result of the constant gravitational attraction, of fixed magnitude felt by it towards the Earth., Do you know ?, A parabola is a symmetrical open curve, obtained by the intersection of a cone, with a plane which is parallel to its side., Mathematically, the parabola is described, with the help of a point called the focus and, a straight line called the directrix shown in, the accompanying figure. The parabola is, the locus of all points which are equidistant, from the focus and the directrix. The chord of, the parabola which is parallel to the directrix, and passes through the focus is called latus, rectum of the parabola as shown in the, accompanying figure., , , the circle is the radius vector r . Its magnitude is, radius r and it is directed away from the centre, to the particle, i.e., away from the centre of, the circle. As the particle performs UCM, this, radius vector describes equal angles in equal, intervals of time. At this stage we can define, a new quantity called angular speed ω which, gives the angle described by the radius vector,, per unit time. It is analogous to speed which is, distance travelled per unit time., During one complete revolution, the angle, described is 2π and the time taken is period T., Hence, the angular speed, , � 2� � � v �, Angle 2�, �, �, time, T, � 2� r � r, � v �, �, �, The unit of ω is radian/sec., ��, , --- (3.49), , P0, , Fig.3.6: Uniform circular motion., 3.4.2 Expression for Centripetal Acceleration:, Figure 3.6 shows a particle P performing a, UCM in anticlockwise sense along a circle of, radius r with angular speed ω and period T. Let, us choose the coordinates such that this motion, is in the xy- plane having centre at the origin O., Initially (for simplicity), let the particle be at P0, on the positive x-axis. At a given instant t, the, radius vector of P makes an angle θ with the, x-axis., d�, ��, �� � � t and so, dt, , x and y components of the radius vector r will, then be rcosθ �and �rsinθ respectively., �, � r � � rcos� � �i � � rsin� � �j, , 3.4.1 Period, Radius Vector and Angular, Speed:, Consider an object of mass m, moving with, a uniform speed v, along a circle of radius r. Let, T be the time period of revolution of the object,, i.e., the time taken by the object to complete one, revolution or to travel a distance of 2πr., Thus, T = 2πr/v, Distance 2� r, --- (3.48)., � Speed v �, �, Time, T, � � rcos �� t �� �i � � rsin �� t �� �j --- (3.50), During circular motion of a point object,, the position vector of the object from centre of Time derivative of position vector r gives, , 42
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, instantaneous velocity v and time derivative, , of velocity v gives instantaneous acceleration, , a . Magnitudes of r and ω are constants., , dr, �v �, � r ��sin �� t � iˆ � � cos �� t � ˆj, dt, � r� �sin �� t � iˆ � cos �� t � ˆj, , �, , �, , �, , �, , --- (3.51), , , dv, �a �, � r� �� cos �� t � iˆ � �sin �� t � ˆj, dt, , � �� 2 rcos �� t � iˆ � rsin �� t � ˆj � �� 2 r, , �, , �, , �, , �, , Fig 3.7: Conical pendulum, , --- (3.52), Here minus sign shows that the acceleration is, , opposite to that of r , i.e., towards the centre., This is the centripetal acceleration., The magnitude of acceleration,, , v2, --- (3.53), � � v , r, The force providing this acceleration should also, be along the same direction, hence centripetal., ��, �, �, � F � ma � � m� 2 r --- (3.54), a � � 2r �, , mv 2, 2, F, �, m, �, r, �, � m� v - (3.55), Magnitude of, r, Conical pendulum, In a simple pendulum a mass m is suspended, by a string of length l and moves along an arc of, a vertical circle. If the mass instead revolves in, a horizontal circle and the string which makes a, constant angle with the vertical describes a cone, whose vertex is the fixed point O, then massstring system is called a conical pendulum as, shown in Fig. 3.7. In the absence of friction, the, system will continue indefinitely once started., As shown in the figure, the forces acting, on the bob of mass, m, of the conical pendulum, are: (i) Gravitational force, mg, acting vertically, ��, downwards, (ii) Force due to tension T acting, along the string directed towards the support., These are the only two forces acting on the bob., For the bob to undergo horizontal circular, motion, (radius r) the resultant force must be, centripetal, (directed towards the centre of the, circle). In other words vertical gravitational, force must be balanced., , ��, Thus, we resolve tension T into two, mutually perpendicular components. Let θ be, the angle made by the string with the vertical at, any position. The component T cos θ is acting, vertically upwards. The inclination should be, such that T cos θ = mg, so that there is no net, vertical force., The resultant force on the bob is then T, sin θ which is radial or centripetal or directed, towards centre O' T sin θ = mv2/r = mrω2., (mv 2 / r ) v 2, tan � �, �, mg, rg, Since we know v =, � tan � �, , 2π r, T, , 4� 2 r 2, T 2 rg, , T � 2�, , r, g tan �, , T � 2�, , l sin �, ( r � l sin � ), g tan �, , T � 2�, , l cos �, g, , h, ( h � l cos � ), --- (3.56), g, where l is length of the pendulum and h is the, vertical distance of the horizontal circle from, the fixed point O., Example 3.8: An object of mass 50 g moves, uniformly along a circular orbit with an, angular speed of 5 rad/s. If the linear speed of, the particle is 25 m/s, what is the radius of the, , 43, , T � 2
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circle? Calculate the centripetal force acting on, t = 0, the velocity is given by u � 20�i � 35 �j, the particle., km/s. After one minute the velocity becomes, �, v � �20�i � 35 �j . What is the magnitude of the, Do you know ?, acceleration?, 1. The centripetal force is not one of the, Solution: Magnitude of initial and final, external forces acting on the object., velocities =, As can be seen from above, the actual, � u � (20) 2 � (35) 2 m / s, forces acting on the bob are T and mg,, the resultant of these is the centripetal, = 1625 m / s, force. Conversely, if the resultant force, = 40.3 m / s, is centripetal, motion must be circular., As the velocity reverses in 1 min, the time, 2. In planetary motion, the gravitational, period of revolution is 2 min., force between Sun and the planets, uT, 2� r, provides the necessary centripetal, T�, , giving r �, u, 2�, force for the circular motion., 2, 2, Solution: The linear speed and angular speed a � u � u 2� � 2� u � 2� � 3.14 � 40.3, are related by v = ωr, 2� � 60, r, uT, T, �2, ∴ r = v/ω = 25/5 m = 5 m., � 2.11 m s, mv 2, =, Centripetal force acting on the object =, r, 2, 0.05 � 25, � 6.25 N., 5, Example 3.9: An object is travelling in a, horizontal circle with uniform speed. At, , s, , ise, erc, , Ex, , Internet my friend, 1. hyperphysics.phy-astr.gsu.edu/hbase/mot., html#motcon, 2. www.college-physics.com/book/mechanics, , Exercises, , 1. Choose the correct option., i) An object thrown from a moving bus is, on example of, , (A) Uniform circular motion, , (B) Rectilinear motion, , (C) Projectile motion , , (D) Motion in one dimension, ii) For a particle having a uniform circular, motion, which of the following is constant, , (A) Speed, (B) Acceleration, (C) Velocity, (D) Displacement, iii) The bob of a conical pendulum under, goes, , (A) Rectilinear motion in horizontal, plane, , (B) Uniform motion in a horizontal circle, , , , (C) Uniform motion in a vertical circle, (D) Rectilinear motion in vertical circle, iv) For uniform acceleration in rectilinear, motion which of the following is not, correct?, , (A) Velocity-time graph is linear, , (B) Acceleration is the slope of velocity, time graph, (C) The area under the velocity-time, graph equals displacement, , (D) Velocity-time graph is nonlinear, v) If three particles, A, B and, C are having, velocities v A , v B and vC which of the, following formula gives the relative, velocity of A with respect to B, , , , , , ( B ) v A � vC � v B, (A) v A + v B, , 44
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, , , , ii). A car moving along a straight road with a, (C) v A - v B, (D) vC - v A, speed of 120 km/hr, is brought to rest by, 2. Answer the following questions., applying brakes. The car covers a distance, i) Separate the following in groups of, of 100 m before it stops. Calculate (i) the, scalar and vectors: velocity, speed,, average retardation of the car (ii) time, displacement, work done, force, power,, taken by the car to come to rest., energy, acceleration, electric charge,, , [Ans: 50/9 m/sec2, 6 sec], angular velocity., iii) A car travels at a speed of 50 km/hr for 30, ii) Define average velocity and instantaneous, minutes, at 30 km/hr for next 15 minutes, velocity. When are they same?, and then 70 km/hr for next 45 minutes., iii) Define free fall., What is the average speed of the car? , iv) If the motion of an object is described by, , [Ans: 56.66 km/hr], x = f(t) write formulae for instantaneous iv) A velocity-time graph is shown in the, velocity and acceleration., adjoining figure., v) Derive equations of motion for a particle, moving in a plane and show that the, motion can be resolved in two independent, B, motions in mutually perpendicular, 20- -------------A, directions., v m/s 1510vi) Derive equations of motion graphically, 5for a particle having uniform acceleration,, moving along a straight line., O 1 2 3 4 5 6 7 8, vii) Derive the formula for the range and, D, C, E, time (s), maximum height achieved by a projectile, thrown from the origin with initial Determine:, velocity u at an angel θ to the horizontal. , (i) initial speed of the car (ii) maximum, speed, attained by the car (iii) part of the, viii) Show that the path of a projectile is a, graph showing zero acceleration (iv) part, parabola., of the graph showing constant retardation, ix) What is a conical pendulum? Show that its, (v) distance travelled by the car in first 6, l cos �, sec., time period is given by 2�, , where l, g, , [Ans: (i) 0 (ii) 20 m/sec (iii) AB, , is the length of the string, θ is the angle , (iv) BC (v) 90 m], that the string makes with the vertical and v) A man throws a ball to maximum, g is the acceleration due to gravity., horizontal distance of 80 meters. Calculate, x) Define angular velocity. Show that the, the maximum height reached., centripetal force on a particle undergoing , [Ans: 20 m], , uniform circular motion is -mω2 r ., vi) A particle is projected with speed v0 at, 3. Solve the following problems., angle θ to the horizontal on an inclined, i) An aeroplane has a run of 500 m to take, surface making an angle � (� � � ) to the, off from the runway. It starts from rest, horizontal. Find the range of the projectile, and moves with constant acceleration to, along the inclined surface., cover the runway in 30 sec. What is the, 2 v 02 cos � sin(� � � ), ], [Ans: R �, velocity of the aeroplane at the take off ? , g cos 2 �, [Ans: 120 km/hr], , 45
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vii) A metro train runs from station A to B to ix) A car moves in a circle at the constant speed, C. It takes 4 minutes in travelling from, of 50 m/s and completes one revolution, station A to station B. The train halts at, in 40 s. Determine the , magnitude of, station B for 20 s. Then it starts from, acceleration of the car., station B and reaches station C in next 3 , [Ans: 7.85 m s-2], minutes. At the start, the train accelerates x) A particle moves in a circle with constant, for 10 sec to reach the constant speed of, speed of 15 m/s. The radius of the, 72 km/hr. The train moving at the constant, circle is 2 m. Determine the centripetal, speed is brought to rest in 10 sec. at next, acceleration of the particle., station. (i) Plot the velocity- time graph, [Ans: 112.5 m s-2], for the train travelling from the station , A to B to C. (ii) Calculate the distance xi) A projectile is thrown at an angle of 30° to, the horizontal. What should be the range, between the stations A, B and C. , of initial velocity (u) so that its range, [Ans: AB = 4.6 km, BC =3.4 km], will be between 40m and 50 m? Assume, viii) A train is moving eastward at 10 m/sec. A, g = 10 m s-2., waiter is walking eastward at 1.2m/sec;, [Ans: 21.49 ≤ u ≤ 24.03 m s-2], and a fly is flying toward the north across , the waiter’s tray at 2 m/s. What is the, ***, velocity of the fly relative to Earth, , [Ans: 11.4 m/s, 10° due north of east], , 46
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4., , Laws of Motion, Can you recall?, , 1. What are different types of motions?, 2. What do you mean by kinematical equations, and what are they?, 3. Newton’s laws of motion apply to most, bodies we come across in our daily lives., 4. All bodies are governed by Newton’s law of, gravitation. Gravitation of the Earth results, into weight of objects., 4.1. Introduction:, If an object continuously changes its, position, it is said to be in motion. Mechanics, is a branch of Physics that deals with motion., There are basically two branches of mechanics, (i) Statics, where we deal with objects at rest, or in equilibrium under the action of balanced, forces and (ii) Kinetics, which deals with actual, motion., Kinetics can be further divided into two, branches (i) Kinematics: In kinematics, we, describe various motions without discussing, their cause. Various parameters discussed in, kinematics are distance, displacement, speed,, velocity and acceleration. (ii) Dynamics: In, dynamics we describe the motion along with its, cause, which is force and/or torque. Parameters, discussed in dynamics are momentum, force,, energy, power, etc. in addition to those in, kinematics., It must be understood that motion is strictly, a relative concept, i.e., it should always be, described in context to a reference frame. For, example, if you are in a running bus, neither, you nor your co-passengers sitting in the bus are, in motion in your reference, i.e., moving bus., However, from the ground reference, bus, you, and all the passengers are in motion., If not random, motions in real life may, be understood separately as linear, circular, or rotational, oscillatory, etc., or some, combinations of these. While describing any, of these, we need to know the corresponding, forces responsible for these motions. Trajectory, , of any motion is decided by acceleration a and, , the initial velocity u ., , 5. Acceleration is directly proportional to, force for fixed mass of an object., 6. Bodies possess potential energy and kinetic, energy due to their position and motion, respectively which may change. Their, total energy is conserved in absence of any, external force., a) Linear motion: Initial velocity may be, zero or non-zero. If initial velocity is zero, (starting from rest), acceleration in any, direction will result into a linear motion., If initial velocity is not zero, the, acceleration must be in line with the initial, velocity (along the same or opposite, direction to that of the initial velocity) for, resultant motion to be linear., b) Circular motion: If initial velocity is, not zero and acceleration is throughout, perpendicular to the velocity, the resultant, motion will be circular., c) Parabolic motion: If acceleration is, constant and initial velocity is not in, line with the acceleration, the motion is, parabolic, e.g., trajectory of a projectile, motion., , , d) Other combinations of u and a will result, into different more complicated motion., 4.2. Aristotle’s Fallacy:, Aristotle (384BC-322BC) stated that, “an external force is required to keep a body, in uniform motion”. This was probably based, on a common experience like a ball rolling, on a surface stops after rolling through some, distance. Thus, to keep the ball moving with, constant velocity, we have to continuously, apply a force on it. Similar examples can be, found elsewhere, like a paper plane flying, through air or a paper boat propelled with some, initial velocity., Correct explanation to Aristotle’s fallacy, was first given by Galileo (1564-1642), which, was later used by Newton (1643-1727) in, , 47
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formulating laws of motion. Galileo showed 4.3.1. Importance of Newton’s First Law of, Motion:, that all the objects stop moving because of, some resistive or opposing forces like friction, (i) It shows an equivalence between ‘state, viscous drag, etc. In these examples such forces, of rest’ and ‘state of uniform motion, are frictional force for rolling ball, viscous, along a straight line’ as both need a net, drag or viscous force of air for paper plane and, unbalanced force to change the state. Both, viscous force of water for the boat., these are referred to as ‘state of motion’., The distinction between state of rest and, Thus, in reality, for an uninterrupted, uniform motion lies in the choice of the, motion of a body an additional external force is, ‘frame of reference’., required for overcoming these opposing forces., (ii) It defines force as an entity (or a physical, Can you tell?, quantity) that brings about a change in, the ‘state of motion’ of a body, i.e., force, 1. Was Aristotle correct?, is something that initiates a motion or, 2. If correct, explain his statement with an, controls a motion. Second law gives, illustration., its quantitative understanding or its, 3. If wrong, give the correct modified, mathematical expression., version of his statement., (iii) It defines inertia as a fundamental property, 4.3. Newton’s Laws of Motion:, of every physical object by which the, First law: Every inanimate object continues to, object resists any change in its state of, be in its state of rest or of uniform unaccelerated, motion. Inertia is measured as the mass, motion unless and until it is acted upon by an, of the object. More specifically it is called, external, unbalanced force., inertial mass, which is the ratio of net force, ��, ( |F |) to the corresponding acceleration, Second law: Rate of change of linear momentum, of a rigid body is directly proportional to the, (| a |)., applied force and takes place in the direction of 4.3.2. Importance of Newton’s Second Law, the applied force. On selecting suitable units, it, of Motion:, �� dp�, ��, F, =, takes��the form, (where F is the force (i) It gives mathematical formulation for, �, dt, quantitative measure of force as rate of, and p = mv is the linear momentum., change of linear momentum., Third law: To every action (force), there is an, equal and opposite reaction (force)., Discussion: From Newton’s second law of, �� dp� d, �, � � � mv � . For a given body,, motion, F �, dt dt, mass m is constant., �, ��, dv, �, �F � m, � ma … (for constant mass), ��dt, �, Thus, if F = 0,�v is constant. Hence if there, is no force, velocity will not change. This is, nothing but Newton’s first law of motion., Can you tell?, What is then special about Newton’s, first law if it is derivable from Newton’s, second law?, , 48, , Do you know ?, Mathematical expression for force must be, �� dp�, ��, remembered as F = dt and not as F = ma�, �, �� dp� d � mv� � dm �, � dv �, F�, �, �, �v� � m� �, dt, dt, dt, � dt �, dm , , �, � v � � ma, dt, For a given body, mass is constant, i.e.,, dm, ��, = 0 and only in this case, F = ma�, dt, In the case of a rocket, both the terms, are needed as both mass and velocity are, varying.
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, , (ii) It defines momentum �� p � mv � instead, of velocity as the fundamental quantity, related to motion. What is changed by a, force is the momentum and not necessarily, the velocity., (iii) Aristotle’s fallacy is overcome by, considering resultant unbalanced force., 4.3.3 Importance of Newton’s Third Law of, Motion:, (i) It defines action and reaction as a pair of, equal and opposite forces acting along the, same line., (ii) Action and reaction forces are always on, different objects., Consequences:, Action force exerted by a body x on body, ��, y, conventionally written as F yx , is the force, experienced by y., �� As a result, body y exerts reaction force, F xy on body x., �� In this case, body x experiences the force, F xy only while the body y experiences the force, ��, F yx only., ��, ��, Forces F xy and F yx are equal in magnitude, and opposite in their directions, but there is no, question of cancellation of these forces as those, are experienced by different objects., ��, ��, Forces F xy and F yx need not be contact, forces. Repulsive forces between two magnets, is a pair of action-reaction forces. In this case, the two magnets are not in contact. Gravitational, force between Earth and moon or between, Earth and Sun are also similar pairs of noncontact action-reaction forces., Example 4.1: A hose pipe used for gardening is, ejecting water horizontally at the rate of 0.5 m/s., Area of the bore of the pipe is 10 cm2. Calculate, the force to be applied by the gardener to hold, the pipe horizontally stationary., Solution: If ejecting water horizontally is, considered as action force on the water, the, water exerts a backward force (called recoil, force) on the pipe as the reaction force., �, �� dp� d � mv� � dm �, dv, F�, �, �, v�m, dt, dt, dt, dt, , As v, the velocity of ejected water is, dm , dm, v , where, is the rate at, constant, F =, dt, dt, which mass of water is ejected by the pipe., As the force is in the direction of velocity, dm, v, (horizontal), we can use scalars. � F �, dt, dm d �V � � d � Al � �, dl, ��, ��, � A� � A� v, dt, dt, dt, dt, , where V = volume of water ejected, A = area of cross section of bore = 10 cm2, ρ = density of water = 1 g/cc, l = length of the water ejected in time t, dl, = v= velocity of water ejected, dt, = 0.5 m/s = 50 cm/s, dm, F�, v � � A� v � v � A� v 2 � 10 � 1� 502, dt, � 25000 �dyne � 0.25�N, Equal and opposite force must be applied by, the gardener., 4.4. Inertial and Non-Inertial Frames of, Reference, Consider yourself standing on a railway, platform or a bus stand and you see a train or, bus moving. According to you, that train or bus, is moving or is in motion. As per the experience, of the passengers in the train or bus, they are at, rest and you are moving (in backward direction)., Hence motion itself is a relative concept. To, know or describe a motion you need to describe, or define some reference. Such a reference, is called a frame of reference. In the example, discussed above, if you consider the platform as, the reference, then the passengers and the train, are moving. However, if the train is considered, as the reference, you and platform, etc. are, moving., Usually a set of coordinates with a, suitable origin is enough to describe a frame, of reference. If position coordinates of an, object are continuously changing with time, in a frame of reference, then that object is in, motion in that frame of reference. Any frame of, reference in which Newton’s first law of motion, is applicable is the simplest understanding of an, , 49
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inertial frame of reference. It means, if there is, no net force, there is no acceleration. Thus in an, inertial frame, a body will move with constant, velocity (which may be zero also) if there is no, net force acting upon it. In the absence of a net, force, if an object suffers an acceleration, that, frame of reference is not an inertial frame and is, called as non-inertial frame of reference., Measurements in one inertial frame can be, converted to measurements in another inertial, frame by a simple transformation, i.e., by, simply using some velocity vectors (relative, velocity between the two frames of reference)., Illustration: Imagine yourself inside a car, with all windows opaque so that you can not, see anything outside. Also consider that there, is a pendulum tied inside the car and not set, into oscillations . If the car just starts its motion, (with reference to outside or ground), you will, experience a jerk, i.e., acceleration inside the car, even though there is no force acting upon you., During this time, the string of the pendulum, may be steady, but not vertical. During time, of acceleration, the car can be considered to, be a non-inertial frame of reference. Later on, if the car is moving with constant velocity, (with reference to the ground), you will not, experience any jerky motion within the car and, the car can be considered as an inertial frame of, reference. In this case, the pendulum string will, be vertical, when not oscillating., Do you know ?, The situations/phenomena that can be, explained using Newton’s laws of motion, fall under Newtonian mechanics. So far, as our daily life situations are considered,, Newtonian mechanics is perfectly applicable., However, under several extreme conditions, we need to use some other theories., Limitation of Newton’s laws of motion, (i) Newton’s laws are applicable only in the, inertial frames of reference (discussed, later). If the body is in a frame of, reference of acceleration (a), we need to, , use a pseudo force � �ma � in addition, to all the other forces while writing the, , force equations., (ii) Newton’s laws are applicable for point, objects., (iii) Newton’s laws are applicable to rigid, bodies. A body is said to be rigid if the, relative distances between its particles, do not change for any deforming force., (iv) For objects moving with speeds, comparable to that of light, Newton’s, laws of motion do not give results that, match with the experimental results and, Einstein's special theory of relativity has, to be used., (v) Behaviour and interaction of objects, having atomic or molecular sizes cannot, be explained using Newton’s laws of, motion, and quantum mechanics has to, be used., A rocket in intergalactic space (gravity free, space between galaxies) with all its engines shut, is closest to an ideal inertial frame. However,, Earth’s acceleration in the reference frame of, the Sun is so small that any frame attached to, the Earth can be used as an inertial frame for, any day-to-day situation or in our laboratories., 4.5 Types of Forces:, 4.5.1. Fundamental Forces in Nature:, All the forces in nature are classified into, following four interactions that are termed as, fundamental forces., (i) Gravitational force: It is the attractive, force between two (point) masses, separated by a distance. Magnitude of, gravitational force between point masses, m1 and m2 separated by distance r is given, Gm1m2, by F =, r2, , where G = 6.67×10-11 SI units. Between, two point masses (particles) separated by, a given distance, this is the weakest force, having infinite range. This force is always, attractive. Structure of the universe is, governed by this force., , Common experience of this force for us is, gravitational force exerted by Earth on, us, which we call as our weight W., , 50
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GM �, GMm, � m � 2 � � mg, 2, R, � R �, ,, where M and R represent respectivily, mass and radius of the Earth. Distance, between ourselves and Earth is taken as, radius of the Earth when we are on the, surface of the Earth because our size is, negligible as compared to radius of the, Earth (6.4×106 m)., , �W �, , , , , , , , , , � GM � 6.67 � 10�11 � 6 � 1024, � 2 ��, 2, � R �, 6.4 � 106, , �, , �, , ≅ 9.8 m/s2 = g = gravitational acceleration, or gravitational field intensity., We feel this force only due to normal, reaction from the surface of our contact, with Earth., All individual bodies also exert, gravitation force on each other but it is, too small compared to that by the Earth., For example, mutual gravitational force, between two SUMO wrestlers, each, of mass 300 kg, assuming the distance, between them is 0.5 m, will be, , , This force is negligibly small in, comparison to the weight of each SUMO, wrestler ≅ 3000 N., (ii) Electromagnetic (EM) force: It is an, attractive or repulsive force between, electrically charged particles. Earlier,, electric and magnetic forces were, thought to be independent. After the, demonstrations by Michael Faraday, (1791-1867) and James Clerk Maxwell, (1831-1879), electric and magnetic, forces were unified through the theory, of electromagnetism. These forces are, stronger than the gravitational force., Our life is practically governed by these, forces. Majority of forces experienced in, our daily life, such as force of friction,, normal reaction, tension in strings,, , 51, , collision forces, elastic forces, viscosity, (fluid friction), etc. are EM in nature., Under the action of these forces, there, is deformation of objects that changes, intermolecular distances thereby resulting, into reaction forces., (iii) Strong (nuclear) force: This is the strongest, force that binds the nucleons together, inside a nucleus. Though strongest, it is a, short range (< 10-14 m) force. Therefore is, very strong attractive force and is charge, independent., (iv) Weak (nuclear) force: This is the, interaction between subatomic particles, that is responsible for the radioactive, decay of atoms, in particular beta, emission. The weak nuclear force is not as, weak as the gravitational force, but much, weaker than the strong nuclear and EM, forces. The range of weak nuclear force is, exceedingly small, of the order of 10-16 m., Weak interaction force:, The radioactive isotope C13 is, converted into N14 in which a neutron is, converted into a proton. This property is, used in carbon dating to determine the age, of a sample., In radioactive beta decay, the nucleus, emits an electron (or positron) and an, uncharged particle called neutrino. There, are two types of β-decay, β+ and β-., During β+decay, a proton is converted, into a neutron (accompanied by positron, emission) and during � � decay a neutron, is converted into a proton (accompanied by, electron emission)., Another most interesting illustration, of weak forces is fusion reaction in the, core of the Sun. During this, protons are, converted into neutrons and a neutrino is, emitted due to energy balance. In general,, emission of a neutrino is the evidence, that there is conversion of a proton into a, neutron or a neutron into a proton. This is, possible only due to weak forces.
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Example 4.2. Three identical point masses are, fixed symmetrically on the periphery of a circle., Obtain the resultant gravitational force on any, point mass M at the centre of the circle. Extend, this idea to more than three identical masses, symmetrically located on the periphery. How, far can you extend this concept?, Solution:, (i) Figure below shows three identical point, masses m on the periphery of a circle of, radius r. Mass M is at the centre of the, circle. Gravitational forces on M due, to these masses are attractive and are, directed as shown., GMm, In magnitude, FMA = FMB = FMC =, r2, , force exerted by a ring mass on any other, mass at its centre is zero., In three-dimensions, we can imagine a, uniform hollow sphere to be made up of infinite, number of such rings with a common diameter., Thus, the gravitational force for any mass kept, at the centre of a hollow sphere is zero., Do you know ?, Unification of forces: Newton unified, terrestrial (related to Earth and hence to, our daily life) and celestial (related to, universe) domains under a common law of, gravitation. The experimental discoveries, of Oersted (1777-1851) and Faraday showed, that electric and magnetic phenomena are in, general inseparable leading to what is called, ‘EM phenomenon’. Electromagnetism, and optics were unified by Maxwell with, the proposition that light is an EM wave., Einstein attempted to unify gravity and, electromagnetism under general relativity, but could not succeed. The EM and the weak, nuclear force have now been unified as a, single ‘electro-weak’ force., , , , , Forces FMB and FMC are resolved along, FMA and perpendicular to FMA as shown., Components perpendicular to FMA cancel, each other. Components along FMA are, 1, FMB cos 600 = FMC cos 600 = 2 FMA each., Magnitude of their resultant is FMA and its, direction is opposite to that of FMA. Thus,, the resultant force on mass M is zero., (ii) For any even number of equal masses,, the force due to any mass m is balanced, (cancelled) by diametrically opposite, mass. For any odd number of masses, as, seen for 3, the components perpendicular, to one of them cancel each other while the, components parallel to one of these add up, in such a way that the resultant is zero for, any number of identical masses m located, symmetrically on the periphery., (iii) As the number of masses tends to, infinity, their collective shape approaches, circumference of the circle, which is, nothing but a ring. Thus, the gravitational, , 4.5.2. Contact and Non-Contact Forces:, For some forces, like gravitational force,, electrostatic force, magnetostatic force, etc.,, physical contact is not an essential condition., These forces exist even if the objects are distant, or physically separated. Such forces are noncontact forces., Forces resulting only due to contact are, called contact forces. All these are EM in nature,, arising due to some deformation. Normal, reaction, forces occurring during collision,, force of friction, etc., are contact forces. There, are two common categories of contact forces., Two objects in contact, while exerting mutual, force, try to push each other away along their, common normal. Quite often we call it as, ‘normal reaction’ force or ‘normal’ force. While, standing on a table, we push the table away from, us (downward) and the table pushes us away, from it (upward) both being equal in magnitude, and acting along the same ‘normal’ line., , 52
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Force of friction is also a contact force that, arises whenever there is a relative motion or, tendency of relative motion between surfaces, in contact. This is the parallel (or tangential), component of the reaction force. In this case,, the molecules of surfaces in contact, which have, developed certain equilibrium, are required to, be separated., 4.5.3 Real and Pseudo Forces:, Consider ourselves inside a lift (or, elevator). When the lift just starts moving up, (accelerates upward), we feel a bit heavier as, if someone is pushing us down. This is not, imaginary or not just a feeling. If we are standing, on a weighing scale inside this lift, during this, time the weighing scale records an increase in, weight. During travelling with uniform upward, velocity no such change is recorded. While, stopping at some upper floor, the lift undergoes, downward acceleration for decreasing the, upward velocity. In this case the weighing scale, records loss in weight and we also feel lighter., These extra upward or downward forces are (i), Measurable, means they are not imaginary, (ii), not accountable as per Newton’s second law in, the inertial frame and (iii) not among any of the, four fundamental forces., When we are inside a bus such forces, are experienced when the bus starts to move, (forward acceleration), when the bus is about, to stop (backward acceleration) or takes a turn, (centripetal acceleration). In all these cases, we are inside an accelerated system (which is, our frame of reference). If a force measuring, device is suitably used – like the weighing scale, recording the change in weight – these forces, can be recorded and will be found to be always, opposite to the acceleration of your frame, of reference. They are also exactly equal to, , , -m a , where m is our mass and a is acceleration, of the system (frame of reference)., We have already defined or described real, forces to be those which obey Newton’s laws, of motion and are one of the four fundamental, forces. Forces in above illustrations do not, satisfy this description and cannot be called real, forces. Hence these are called pseudo forces., , Pseudo in this case does not mean imaginary, (because these are measurable with instruments), but just means non-real. These forces are, , , measured to be � �ma � . Hence, a term � �ma �, added to resultant force enables us to apply, Newton’s laws of motion to a non-inertial frame, , of reference of acceleration a . Negative sign, refers to their direction, which is opposite to, that of the acceleration of the reference frame., As per the illustration of the lift with, , a, downward acceleration, , the weight, , , , experienced will be W � mg � � �ma �, , , As g �and �a are along the same direction, in this case, W � mg � ma . This explains the, feeling of a loss in weight., ��, �, a1 , we, During, upward, acceleration,, say, ���, �, �, W, have, 1 � mg � � � ma1 �, ��, , ��, �, , In this case, g and�a1 are oppositely, directed. �W1 � mg � � � ma1 � � mg � ma1 that, explains gain in weight or existence of extra, downward force., In mathematics we define a number to be, real if its square is zero or positive. Solution, set of equations like x2 - 6x + 10 = 0 does, not satisfy the criterion to be a real number., Such numbers are complex numbers which, include i � �1 along with some real, part. It means every non-real need not be, imaginary as in literal verbal sense., Example 4.3: A car of mass 1.5 ton is running, at 72 kmph on a straight horizontal road. On, turning the engine off, it stops in 20 seconds., While running at the same speed, on the same, road, the driver observes an accident 50 m in, front of him. He immediately applies the brakes, and just manages to stop the car at the accident, spot. Calculate the braking force., Solution: On turning the engine off,, u � 20 �m�s �1 ,�v � 0, �t � 20 �s, v�u, � �1�m�s �2, �a �, t, This is frictional retardation (negative, acceleration)., After seeing the accident,, , 53
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u � 20 �m�s �1 ,�v � 0, �s � 50 �m �, � a1 �, , v 2 � u2, � � �4 �m�s �2, 2s, , This retardation is the combined effect of, braking and friction. Thus, braking retardation, � 4 � 1 � 3�m�s �2 ., ∴Braking force = mass × braking, retardation = 1500 × 3 = 4500 N, 4.5.4. Conservative and Non-Conservative, Forces and Concept of Potential, Energy:, Consider an object lying on the ground, is lifted and kept on a table. Neglecting air, resistance, the amount of work done is the, work done against gravitational force and, it is independent of the actual path chosen, (Remember, as there is no air resistance,, gravitational force is the only force). Similarly,, while keeping the same object back on the, ground from the table, the work is done by the, gravitational force. In either case the amount of, work done is the same and is independent of the, ��, actual path chosen. The work done by force F, in moving the object through a distance dx��can, �, be mathematically, as dW = F .dx, �� represented, �, =-dU or dU � � F .dx ., If work done by or against a force is, independent of the actual path, the force is said, to be a conservative force. During the work, done by a conservative force, the mechanical, energy (sum of kinetic and potential energy), is conserved. In fact, we define the concept, of potential at a point or potential energy, (in the topic of gravitation) with the help of, conservative forces only. The work done by or, against conservative forces reflects an equal, amount of change in the potential energy. The, corresponding work done is used in changing, the position or in achieving the new position in, the gravitational field. Hence, potential energy, is often referred to as the energy possessed on, account of position., In the illustration given above, the work, done is reflected as increase in the gravitational, potential energy when the displacement is, , against the (gravitational) force. Same amount, of potential energy is decreased when the, displacement is in the direction of force. In, either case it is independent of the actual path, but depends only upon the initial and final, positions. This change in the potential energy, takes place in such a way that the mechanical, energy is conserved., As discussed above, increase in�� the, �� �, �, potential energy, dU � � F .dx or U � � � F .dx, ��, where F is a conservative force. This concept,, will be described in details in Chapter 5 on, Gravitation in context of gravitational potential, energy and gravitational potential., During this process, if friction or air, resistance is present, additional work is, necessary against the frictional force (for the, same displacement). This work is strictly path, dependent and not recoverable. Such forces, (like friction, air drag, etc.) are called nonconservative forces. Work done against these, forces appears as heat, sound, light, etc. The, work done against non-conservative forces, is not recoverable even if the path is exactly, reversed., 4.5.5. Work Done by a Variable Force:, The popular, �� �formula for calculating work, done is W � F � s � F s cos� where�� θ is the, angle between the applied force F and the, , displacement s ., This, only if both, �� formula is applicable, , force F and displacement s are constant and, finite. In several real-life situations, the force, is not constant. For example, while lifting an, object through several thousand kilometres, the, gravitational force is not constant. The viscous, forces like fluid resistance depend upon the, speed, hence, quite often are not constant with, time. In order to calculate the work done by, such variable forces we use integration., Illustration:�� Figure 4.1(a) shows variation, of a force F plotted against corresponding, , displacements in its direction s . As the, displacement is in the direction of the applied, force, vector nature is not used. We need to, calculate the work done by this force during, , 54
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displacement from s1 to s2. As the force is, variable, using W � F � s2 � s1 � directly is not, possible. In order to use integration, let us, divide the displacement into a large number of, infinitesimal (infinitely small) displacements., One of such displacements is ds. It is so small, that the force F is practically constant for this, displacement. Practically constant means the, change in the force is so small that the change, can not be recorded. The shaded strip shows one, of such displacements. As the force is constant,, the area of this strip F.ds is the work done dW, for this displacement. Total work done W for, displacement � s2 � s1 � can then be obtained by, using integration., s2, , �W � �F .ds, s1, , Method of integration��is applicable if the, , exact way of variation in F with s is known, and that function is integrable., The area under the curve between s1 and, s2 also gives the work done W (if the force axis, necessarily starts with zero), as it consists of all, the strips of ds between s1 and s2. In Fig. 4.1(b),, the variation in the force is linear. In this case,, the area of the trapezium AS1S2B gives total, work done W., , Fig 4.1 (a): Work done by nonlinearly, varying force., , Fig 4.1 (b): Work done by linearly varying, force., , Example 4.4: Over a given region, a force (in, newton) varies as F = 3x2 - 2x + 1. In this region,, an object is displaced from x1 = 20 cm to x2 = 40, cm by the given force. Calculate the amount of, work done., Solution:, s2, , 0.4, , s1, , 0.2, , W � �F .ds � � (3x 2 � 2 x � 1)dx, � �� x 3 � x 2 � x ��, , 0.4, 0.2, , � ��0.43 � 0.4 2 � 0.4 �� � ��0.23 � 0.22 � 0.2 ��, � 0.304 � 0.168 � 0.136 �J, 4.6. Work Energy Theorem:, If there is a decrease in the potential energy, (like a body falling down) due to a conservative, force, it is entirely converted into kinetic energy., Work done by the force then appears as kinetic, energy. Vice versa if an object is moving, against a conservative force its kinetic energy, decreases by an amount equal to the work done, against the force. This principle is called workenergy theorem for conservative forces., Case I: Consider an object of mass m moving, , with velocity u experiencing a constant, ��, opposing force F which slows it down, �� to, , , , v during displacement s . As u and F are, oppositely directed, the entire motion will be, along the same line. In this case we need not use, the vector form, just ± signs should be good, enough., F, is the acceleration, we can write, If a =, m, the relevant equation of motion as v2 - u2 = 2, (-a)s (negative acceleration for opposing force), Multiplying throughout by m/2, we get, 1 2 1 2, mu � mv � � ma � .s � F .s, 2, 2, Left-hand side is decrease in the kinetic, energy and the right-hand side is the work done, by the force. Thus, change in kinetic energy is, equal to work done by the conservative force,, which is in accordance with work-energy, theorem., Case II: Accelerating conservative force along, , 55
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with a retarding non-conservative force:, An object dropped from some point at, height h falls down through air. While coming, down its potential energy decreases. Equal, amount of work is done in this case also., However, this time the work is not entirely, converted into kinetic energy but some part, of it is used in overcoming the air resistance., This part of energy appears in some other forms, such as heat, sound, etc. In this case, the workenergy theorem can mathematically be written, as � PE � � KE � Wair resistance, , (or conserved). This leads us to the principle of, conservation of linear momentum which can be, stated as “The total momentum of an isolated, system is conserved during any interaction.”, Systems and free body diagrams:, Mathematical approach for application of, Newton’s second law:, , (Decrease in the gravitational P.E. =, Increase in the kinetic energy + work done, against non-conservative forces). Magnitude of, air resistance force is not constant but depends, �� ��, �, upon the speed hence it can be written as ∫ F .ds, as seen during work done by (or against) a, variable force., 4.7. Principle of Conservation of Linear, Momentum:, According to Newton’s second law,, resultant force is equal to the rate of change of, , Fig 4.2 (a): System for illustration of free, body diagram., Consider the arrangement shown in Fig.4.2, (a). Pulleys P1, P3 and P4 are fixed, while P2 is, movable. Force F = 100 N, applied at an angle, 60° with the horizontal is responsible for the, motion, if any. Contact surface of the 5 kg, mass offers a constant opposing force F = 10, �� dp�, linear momentum or F =, N. Except this, there are no resistive forces, dt, In other words, if there is no resultant anywhere., force, the linear momentum will not change Discussion: Until 1 kg mass reaches the pulley, or will remain constant or will be conserved. P , the motion of 1 kg and 2 kg masses is, 1, Mathematically, if, is constant identical. Thus, these two can be considered, to be a single system of mass 3 kg except for, Always remember, knowing the tension T3. The forces due to, Isolated system means absence of, tension in the string joining them are internal, any external force. A system refers to a set, forces for this system., of particles, colliding objects, exploding, All masses except the 3 kg mass are, objects, etc. Interaction refers to collision,, travelling same distance in the same time., explosion, etc. During any interaction, Thus, their accelerations, if any, have same, among such objects the total linear, magnitudes. If the string S connecting 1 kg and, momentum of the entire system of these, 4 kg masses moves by x, the lower string S1, particles/objects is constant. Remember,, holding the 3 kg mass moves through x/2., forces during collision or during explosion, Free body diagrams (FBD): A free body, are internal forces for that entire system., diagram refers to forces acting on only one, During collision of two particles, the, body at a time, and its acceleration., two particles exert forces on each other. If, Free body diagram of 2 kg mass: Let a be, these particles are discussed independently,, its upward acceleration. According to Newton’s, these are external forces. However, for the, second law, it must be due to the resultant, system of the two particles together, these, vertical force on this mass. To know this force,, forces are internal forces., , 56
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the vertical forces must cancel. Therefore,, along the vertical direction,, N + F sin 60° = 5g, Along the horizontal direction,, T1 � 10 �� opposing�force � � Fcos600 � T cos 600, Similar equations can be written for all, the masses and also for the movable pully. On, solving these equations simultaneously, we can, obtain all the necessary quantities., Example 4.5: Figure (a) shows a fixed pulley., A massless inextensible string with masses m1, is connected to the 2 kg mass. The direction and m2 > m1 attached to its two ends is passing, of T3 for lower part of the string is upwards over the pulley. Such an arrangement is called, as shown in the Fig. 4.2 (b). Upper part of the an Atwood machine. Calculate accelerations of, string is connected to the 1 kg mass. Thus, the the masses and force due to the tension along, direction of T3 for 1 kg mass will be downwards. the string assuming axle of the pulley to be, However, it will appear only for the free body frictionless., diagram of the 1 kg mass and will not appear, in the free body diagram of 2 kg mass. Hence,, the free body diagram of the 2 kg mass will, be as follows: Its force equation, according to, Newton’s second law will then be T3 - 2g = 2a., we need to know all the individual forces acting, on this mass. The agencies exerting forces on, this mass are Earth (downward force 1g) and, force due to the tension T3., In this case, the lower half of the string, Practical tip: Easiest way to know the, direction of forces due to tension is to, put an X-mark on the string. Two halves, of this cross indicate the directions of the, forces exerted by the string on the bodies, connected to either parts of the string., , Fig 4.2 (b): Free body, diagram for 2 kg mass., , Fig. (a)., Solution: Method I: Direct method: As, m2 > m1, mass m2 is moving downwards and, mass m1 is moving upwards., Net downward force, Fig 4.2 (c): Free, � F � � m2 � g � � m1 � g � � m2 � m1 � g, body diagram for, As the string is inextensible, both the, 5 kg mass., masses travel the same distance in the same, Free body diagram of mass 5 kg: Its time. Thus, their accelerations are numerically, horizontal acceleration is also a, but towards the same (one upward, other downward). Let it, right. The force exerting agencies are Earth be a., (force 5g downwards), contact surface (normal, Thus, total mass in motion, M � m2 � m1, force N, vertically upwards and opposing force, � m2 � m1 �, F, F = 10 N, towards left), and the two strings, �g, �a �, � �, m, �, m, on either side (Forces due to their tensions T, M, 2, 1, �, �, and T1). All these are shown in its free body, For mass m , the upward force is the force, diagrams in Fig. 4.2 (c). On resolving the force due to tension T1and downward force is mg. It, F along the vertical and horizontal directions, has upward acceleration a. Thus, T- m g = ma, 1, the free body diagram of 5 kg mass can be ∴ T = m (g + a), 1, drawn as explained below., Using the expression for a, we get, As this mass has only horizontal motion,, , 57
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2m1m2 �, T = �� m � m � g, 2 �, � 1, Method II: (Free body equations), , , Fig. (b) , Fig. (b), Free body diagrams of m1 and m2 are as, shown in Figs. (b) and (c)., Thus, for the first body, T � m1g � m1a --- (I), For the second body, m2 g � T � m2a --- (II), Adding (I) and (II), and solving for a,, � m � m1 �, --- (III), we get, a � � 2, �g, � m2 � m1 �, Solving Eqs. (II) and (III) for T, we get,, � 2m1m2 �, T = m2 (g - a) � ��, �g, m, m, �, 2 �, � 1, 4.8. Collisions:, During collisions a number of objects, come together, interact (exert forces on each, other) and scatter in different directions., , During a collision, the linear momentum, of the entire system of particles is always, conserved as there is no external force acting on, the system of particles. However, the individual, momenta of the particles change due to mutual, forces, which are internal forces., , , � � pinitial � � p final , during any collision, ��, (or explosion), where p 's are the linear, momenta of the particles., However, kinetic energy of the entire, system may or may not conserve., Collisions can be of two types: elastic, collisions and inelastic collisions., Elastic collision: A collision is said to elastic if, kinetic energy of the entire system is conserved, during the collision (along with the linear, momentum). Thus, during an elastic collision,, , �K .E., , initial, , An elastic collision is impossible in, daily life. However, in many situations, the, interatomic or intermolecular collisions are, considered to be elastic (like in kinetic theory, of gases, to be discussed in the next standard)., Inelastic Collision: A collision is said to be, inelastic if there is a loss in the kinetic energy, during collision, but linear momentum is, conserved. The loss in kinetic energy is either, due to internal friction or vibrational motion of, atoms causing heating effect. Thus, during an, inelastic collision,, , �K .E., , �K .E., , Fig. 4.3 (b): Head on collision-during impact., , Fig. 4.3 (c): Head on collision-after collision., 4.8.1. Elastic and inelastic collisions:, , � �K .E . final, , ., During an explosion as energy is supplied, internally. Thus,, initial, , Fig. 4.3 (a): Head on collision-before collision., , � �K .E . final, , � �K .E .initial ., , , As stated earlier, � pinitial � � p final for, inelastic collisions or explosion also. In fact,, this is always the first equation for discussing, these interactions or while solving numerical, questions., 4.8.2. Perfectly Inelastic Collision:, This is a special case of inelastic collisions., If colliding bodies join together after collision,, it is said to be a perfectly inelastic collision., , 58, , final
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In other words, the colliding bodies have a, common final velocity after a perfectly inelastic, collision. Being an inelastic collision, obviously, there is a loss in the kinetic energy of the system, during a perfectly inelastic collision. In fact, the, loss in kinetic energy is maximum in perfectly, inelastic collision., Illustrations:, (i) Consider a bullet fired towards a block, kept on a smooth surface. Collision, between bullet and the block will be elastic, if the bullet rebounds with exactly the, same initial speed and the block remains, stationory. If the bullet gets embedded into, the block and the two move jointly, it is, perfectly inelastic collision. If the bullet, rebounds with smaller speed or comes, out of the block on the other side with, some speed, it is an inelastic (or partially, inelastic) collision. Remember, there is, nothing called a partially elastic collision, Elastic collisions are always perfectly, elastic. An inelastic collision however,, may be partially or perfectly inelastic., (ii) Visualise a ball dropped from some height, on a hard surface, the entire system being, in an evacuated space. If the ball rebounds, exactly to the same height from where it, was dropped, the collision between the, ball and the surface (in turn, with the, Earth) is elastic. As you know, the ball, never reaches the same initial height or, a height greater than the initial height., Rebounding to smaller height refers to, inelastic collision. Instead of ball, if mud, or clay is dropped, it sticks to the surface., This is perfectly inelastic collision., 4.8.3. Coefficient of Restitution e:, For collision of two objects, the negative, of ratio of relative velocity of separation to, relative velocity of approach is defined as the, coefficient of restitution e., One dimensional or head-on collision: A, collision is said to be head-on if the colliding, objects move along the same straight line,, before and after the collision. Here, we use u1,, u2, v1, v2 as symbols., , Consider such a head-on collision of two, bodies of masses m1 and m2 with respective, initial velocities u1 and u2. As the collision is, head on, the colliding masses are along the, same line before and after the collision. Hence,, vector treatment is not necessary. (However,, velocities must be substituted with proper, signs in actual calculation). Relative velocity, of approach is then ua � u2 � u1, Let v1 and v2 be their respective velocities, after the collision. The relative velocity of, recede (or separation) is then v s = v 2 - v1, , ---(4.1), For a perfectly inelastic collision, the, colliding bodies move jointly after the collision,, i.e., v 2 = v1 or v 2 - v1 = 0 . Hence, for a perfectly, inelastic collision, e =0. In other words, if e =, 0, the head-on collision is perfectly inelastic, collision., Coefficient of restitution during a head-on,, elastic collision:, Consider the collision described above, to be elastic. According to the principle of, conservation of linear momentum,, Total initial momentum = Total final, momentum., � m1u1 � m2 u2 � m1v1 � m2 v 2 � , --- (4.2), � m1 � u1 � v1 � � m2 � v 2 � u2 � , , --- (4.3), As the collision is elastic, total kinetic, energy of the system is also conserved., 1, 1, 1, 1, � m1u12 � m2 u22 � m1v12 � m2 v 22 --- (4.4), 2, 2, 2, 2, , 59, , �, , �, , �, , � m1 u12 � v12 � m2 v 22 � u22, , �, , � m1 � u1 � v1 � � u1 � v1 �, � m2 � u2 � v 2 � � v 2 � u2 �, , --- (4.5), Dividing Eq. (4.5) by Eq. (4.3), we get
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4.8.6. Collision in two dimensions, i.e., a, nonhead-on collision:, In this case, the direction of at least, one initial velocity is NOT along the line of, impact. In order to discuss such collisions, mathematically, it is convenient to use two, mutually perpendicular directions as shown in, Fig. 4.4. One of them is the common tangent, at the point of impact, along which there is, no force (or along this direction, there is no, change in momentum). The other direction is, perpendicular to this common tangent through, the point of impact, in the two-dimensional, plane of initial and final velocities. This is, called the line of impact. Internal mutual forces, exerted during impact, which are responsible, for change in the momenta, are, acting, along, this line. From Fig. (4.4), u1 and u 2 , initial, velocities make angles α1 and α2 respectively, , with the line of impact while v1 and v 2 , final, velocities make angles β1 and β2 respectively, with the line of impact., According to conservation of linear, momentum along the line of contact,, , Equations (4.12), (4.13), (4.14) and (4.15), are to be solved for the four unknowns v1, v2,, β1 and β2, Magnitude of the impulse, along the line of, impact,, � mm �, J � � 1 2 � �1 � e � � u1cos�1 � u2 cos� 2 �, � m1 � m2 �, � � �1 � e � urelative, , along line of impact., Loss in the kinetic energy = ∆ (K.E.), 1 � m1m2 �, 2, 2, �, � � u1cos�1 � u2 cos� 2 � 1 � e, 2 � m1 � m2 �, , �, , �, , 1, 2, � urelative, 1� e2, 2, Example 4.7: A shell of mass 3 kg is dropped, from some height. After falling freely for 2, seconds, it explodes into two fragments of, masses 2 kg and 1 kg. Kinetic energy provided, by the explosion is 300 J. Using g = 10 m/s2,, calculate velocities of the fragments. Justify, your answer if you have more than one options., Solution: m1 � m2 � 3 kg., �, , �, , ��, , �, , After falling freely for 2 seconds,, v � u � at � 0 � 10 � 2 � � 20 �m�s �1 � u1 � u2, , According to conservation of linear, momentum, m1u1 � m2 u2 � m1v1 � m2 v 2, � 3 � 20 � 2 v1 � 1v 2 � v 2 � 60 � 2 v1 --- (I), Fig. 4.4: Oblique or non head-on collision., m1u1cos�1 � m2 u2 cos� 2, � m1v1cos�1 � m2 v 2 cos� 2 , , --- (4.12), , As there is no force along the common, tangent (perpendicular to line of impact),, m1u1sin�1 � m1v1sin�1, , --- (4.13), --- (4.14), and m2 u2sin� 2 � m2 v 2sin� 2 , For coefficient of restitution, along the line, of impact,, , K.E. provided = Final K.E. – Initial, 1, 1, 1, 2, 2, 2, K.E. � m1v1 � m2 v 2 � � m1 � m2 � u, 2, 2, 2, 1, 1, 1, 2, � 2 v12 � v 22 � 3 � 20 � � 300 �J�, 2, 2, 2, or 2 v12 � v 22 � 1800 �, , or 2 v12 � � 60 � 2 v1 � � 1800 � using Eq. (I), 2, , � 3600 � 240 v1 � 6 v12 � 1800 �, , , , � v12 � 40 v1 � 300 � 0, , and, , --- (4.15), , There are two possible answers since the, positions of two fragments can be different as, explained below., , 62
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If v1 = 30 m s-1 and v2 = 0, lighter fragment, 2 should be above. On the other hand, if v1 = 10, m s-1 and v2 = 40 m s-1, lighter fragment 2 should, be below, both moving downwards., Example 4.8: Bullets of mass 40 g each, are, fired from a machine gun at a rate of 5 per, second towards a firmly fixed hard surface, of area 10 cm2. Each bullet hits normal to the, surface at 400 m/s and rebounds in such a way, that the coefficient of restitution for the collision, between bullet and the surface is 0.75. Calculate, average force and average pressure experienced, by the surface due to this firing., Solution: For the collision,, u1 � 400 �m�s �1 ,�e � 0.75 , v1 =�?, v=, 0, For the firmly fixed hard surface, u=, 2, 2, , m/s., -ve sign indicates that the bullet rebounds in, exactly opposite direction., Change in momentum of each bullet, = m (v1-u1), Equal and opposite will be the momentum, transferred to the surface, per collision., ∴ Momentum transferred to the surface,, per collision, , p � m � u1 � v1 � � 0.04 � 400 � � �300�� � 28 N s, The rate of collision is same as rate of firing., ∴ Momentum received by the surface per, dp, � 28 � 5 � 140�N, second,, dt, This must be the average force experienced, by the surface of area A = 10 cm 2 � 10�3 �m 2, ∴ Average pressure experienced,, , ≈ 1.4 times the atmospheric pressure., 4.9. Impulse of a force:, According to Newton’s first law of motion,, any unbalanced force changes linear momentum, of the system, i.e., basic effect of an unbalanced, force is to change the momentum., According to Newton’s second law of, �� dp�, motion, F =, dt, , � ��, � dp � F .dt, , The quantity ‘change in momentum’, is, separately named as Impulse of the force J ., If the force is constant, and is acting for a, finite and measurable time, we can write, The change in momentum in time t, �, � � � ��, ---(4.16), J � dp � p2 � p1 � F .t , For a given body of mass m, it becomes, ��, � � �, � �, J � p2 � p1 � m � v2 � v1 � � F .t ---(4.17), ��, If F is not constant but we know how it, varies with time, then, ��, �, �, �, J � �p � �dp � � F .dt , --- (4.18), Always remember:, 1) Colliding objects experience forces along, the line of impact which changes their, momenta. For their system, these forces are, internal forces. These forces form an actionreaction pair, which are equal and opposite,, and act on different objects., 2) There is no force along the common tangent,, i.e., perpendicular to the line of contact., 3) In reality, the impact is followed by emission, of sound and heat and occasionally light., Thus, in general, part of mechanical, energy- kinetic energy - is lost (i.e.,, converted into some other non-recoverable, forms). However, total energy of the system, is conserved., 4) In reality, velocity of separation (relative, final velocity) is less than velocity of, approach (relative initial velocity) along, the line of impact. Thus coefficient of, restitution e < 1., 5) Only during elastic collisions (atomic and, molecular level only, never possible in real, life), the kinetic energy is conserved and the, velocity of separation is equal to the velocity, of approach or the initial relative velocity is, equal to the final relative velocity., 4.9.1. Necessity of defining impulse:, As discussed above, if a force is constant, over a given interval of time or if we know, how it varies with time, we can calculate the, corresponding change in momentum directly by, multiplying the force and time., However, in many cases, an appreciable, force acts for an extremely small interval of, , 63
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time (too small to measure the force and the, time independently). However, change in the, momentum due to this force is noticeable and, can be measured. This change is defined as, impulse of the force., Real life illustrations: While (i) hitting a ball, with a bat, (ii) giving a kick to a foot-ball, (iii), hammering a nail, (iv) bouncing a ball from a, hard surface, etc., appreciable amount of force, is being exerted. In such cases the time for, which these forces act on respective objects is, negligibly small, mostly not easily recordable., However, the effect of this force is a recordable, change in the momentum of that object. Thus, it, is convenient to define the change in momentum, itself as a physical quantity., , for velocity axis. (ii) Obtaining work done by a, force as the area under the curve for F-s graph,, with zero origin for force axis., Example 4.9: Mass of an Oxygen molecule is, 5.35 × 10-26 kg and that of a Nitrogen molecule, is 4.65 ×10-26 kg. During their Brownian motion, (random motion) in air, an Oxygen molecule, travelling with a velocity of 400 m/s collides, elastically with a nitrogen molecule travelling, with a velocity of 500 m/s in the exactly opposite, direction. Calculate the impulse received by, each of them during collision. Assuming that, the collision lasts for 1 ms, how much is the, average force experienced by each molecule?, Let, m1 � mO � 5.35 � 10�26 �kg�,, m2 � mN � 4.65 � 10�26 kg., � u1 � 400 �m�s �1 �and �u2 � � �500 �m�s �1, taking direction of motion of Oxygen, molecule as the positive direction., For an elastic collision,, , Fig. 4.5: Graphical representation of impulse, of a force., Figure 4.5 shows variation of a force as a, function of time e.g., for a collision between bat, and ball with the force axis starting with zero., The shaded area or the area under the curve, gives the product of force against corresponding, time (in this case, ∆t ), hence gives the impulse., For a constant force it is obviously a rectangle., Generally, force is zero before the impact, rises, to a maximum and decreases to zero after the, impact. For softer tennis ball, the collision, time is larger and the maximum force is less., The area under the (F - t) graph is the same., Wicket keeper eases off (by increasing the, time of collision) while catching a fast ball. As, mentioned earlier, it is absolutely necessary that, the force axis must start from zero., Recall from Chapter 3, analogues concepts, using area under a curve are (i) Obtaining, displacement in a given time interval as area, under the curve for v-t graph, with zero origin, , � m � m2 �, � 2m2 �, v1 � � 1, � u1 � �, � u2 and, � m1 � m2 �, � m1 � m2 �, � m � m1 �, � 2m1 �, v2 � � 2, � u2 � �, � u1, � m1 � m2 �, � m1 � m2 �, � v1 � � �437 �m�s �1 �and ���v 2 � 463�m�s �1, , � J O � mO � v1 � u1 � � � �4.478 � 10�23 �N�s�,�, J N � mN � v 2 � u2 � � � �4.478 � 10�23 �N�s, , As expected, the net impulse or net change, in momentum is zero., dpO J O � �4.478 � 10�23, �, �, 10�3, dt, �t, � � �4.478 � 10�20 N, FON �, , �20, and FNO � � �FON � 4.478 � 10 N, 4.10. Rotational analogue of a force moment of a force or torque:, While opening a door fixed to a frame, on hinges, we apply the force away from the, hinges and perpendicular to the door to open, it with ease. In this case we are interested in, achieving some angular displacement for the, door. If the force is applied near the hinges or, , 64
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nearly parallel to the door, it is very difficult to, open the door. Similarly, if the door is heavier, (made up of iron instead of wood or plastic), we, need to apply proportionally larger force for the, same angular displacement., It shows that rotational ability of a force, not only depends upon the mass (greater force, for greater mass), but also upon the point of, application of the force (the point should be as, away as possible from the axis of rotation) and, the angle between direction of the force and the, line joining the axis of rotation with the point, of application (effect is maximum, if this angle, is 900)., Taking into account all these factors, the, quantity moment of a force or torque is defined, as the rotational analogue of a force. As rotation, refers to direction (sense of rotation), torque, must be a vector quantity. In its mathematical, form, torque or moment of a force is given by, � � ��, � � r � F --- (4.17), ��, , where F is the applied force and r is the, position vector of the point of application of the, force from the axis of rotation, as shown in the, Figs. 4.6 (b) and 4.6 (c)., , the directions involved. Figure 4.6(a) is a 3D, drawing indicating the laminar (plane or two, dimensional) object rotating about a (fixed) axis, of rotation AOB, the axis being perpendicular to, the object and passing through it. Figure 4.6(b), indicates the top view of the object when the, rotation is in anticlockwise direction and Fig., 4.6(c) shows the view from the top, if rotation is, in clockwise direction. (In fact, Figs. 4.6(b) and, 4.6(c) are, the applied, �� drawn in such a way that, , force F and position vector r of the point, of application of the force are in the plane of, these figures). Direction of the torque is always, perpendicular, to the plane containing the vectors, ��, , r and F and can be obtained from the rule of, cross product or by using the right-hand thumb, rule. In Fig. 4.6(b), it is perpendicular to the, plane of the figure (in this case, perpendicular, to the body) and outwards, i.e., coming out of, the paper while in the Fig. 4.6(c), it is inwards,, i.e., going into the paper., In order to indicate the directions which, are not in the plane of figure, we use a special, convention: for perpendicular to the plane of, figure and outwards and ⊗ for perpendicular to, the plane of figure and inwards., , Figs. 4.6(a): Illustration, of moment of force, with object and axis of, rotation in 3D view., , (a) , , Figs. 4.6(b): Top view, ��, for moment of force F, in anticlockwise, rotation, ��, , with F and r in the, plane of paper., , (b), , , (c) , (d), Fig. 4.7: Convention of pictorial, representation of vectors as shown in (a), acting in a direction perpendicular to the, plane of paper (b) coming out of paper, (c), Figs. 4.6(c): Top view, ��, going in to the paper and (d) perpendicular, of moment of force F, ��, to the plane of paper., in clockwise rotation F, This convention depends upon a traditional, , and r in the plane of, arrow shown in Fig. 4.7 (a). Consider yourself,, paper., looking towards the figure from the top. If this, arrow approaches you, the tip of the arrow, Figures 4.6(a), 4.6(b) and 4.6(c) illustrate will be prominently seen. Hence circle with a, , 65
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dot in it [Fig. 4.7 (b)] refers to perpendicular, and outwards (or towards you). When you, are leaving an arrow, i.e., if an arrow is going, away from you, the feathers like a cross will be, seen. Hence, a circle with a cross [Fig. 4.6 (c)], indicates perpendicular and inwards (or away, from you). Circle with cross and dot indicates, a line perpendicular to the plane of figure [Fig., 4.6 (d)]., Magnitude of torque, τ = r F sin θ --- (4.18), where θ is �the smaller, angle between the, ��, directions of r �and F ., Consequences: (i) If r or F is greater, the, torque (hence the rotational effect) is greater., Thus, it is recommended to apply the force, away from the hinges., (ii) If � � 900 , � � � max � rF . Thus, the, force should be applied along normal direction, for easy rotation., (iii) If θ = 0° or 180°, � � � min � 0. Thus, if, , the force is applied parallel or anti-parallel to r, , there is no rotation., (iv) Moment of a force depends not only on, the magnitude and direction of the force, but also, on the point where the force acts with respect, to the axis of rotation. Same force can have, different torque as per its point of application., 4.11. Couple and its torque:, In the discussion of the torque given above,, we had considered rotation of the body about a, fixed axis and due to a single force. In real life,, quite often we apply two equal and opposite, forces acting along different lines of action in, order to cause rotation. Common illustrations, are turning a bicycle handle, turning the steering, wheel, opening a common water tap, opening, the lid of a bottle (rotation type), etc. Such a, pair of forces consisting of two forces of equal, magnitude acting in opposite directions along, different lines of action is called a couple. It, is used to realise a purely rotational motion., Moment of a couple or rotational effect of a, couple is also called a torque., It may be noted that in the discussion of, rotation of a body about a fixed axis due to, a single force, there is a reaction force at the, fixed axis. Hence, for rotation one always needs, , two forces acting in opposite direction along, different lines of action., Torque or Moment of a couple: Figure 4.8, , shows, a, couple, consisting, of, two, forces, F, 1 �and, , F2 of equal magnitudes and opposite directions, acting along different lines of action separated, by a distance r. Corresponding position vectors, should now be defined with reference to the, lines of action of forces. Position vector, of any, F, point on the line of action, of, force, 1 from the, , , line of action of force F2 is r12 . Similarly, the, position vector, of any point on the line of action, , , of force F2 from the line of action of force F1, , is r21. Torque or moment of the couple is then, given mathematically as, , Fig. 4.8: Torque of a couple., , � � r12 � F1 � r21 � F2 , From, , the, , figure,, , r12 sin� � r21 sin� � r, , it, , --- (4.19), is, , clear, , that, , , , =, F=, F , the magnitude of torque, If F, 1, 2, is given by, τ = r12 F1 sin α = r21 F2 sin β = r F --- (4.20), It clearly shows that the torque, corresponding to a given couple, i.e., the, moment of a given couple is constant, i.e., it, is independent of the points of application of, forces or the position of the axis of rotation,, but depends only upon magnitude of either, force and the separation between their lines of, action., The direction of moment of couple can, be obtained by using the vector formula of, the torque or by using the right-hand thumb, rule. For the couple shown in the Fig. 4.8, it, is perpendicular to the plane of the figure and, inwards. For a given pair of forces, the direction, of the torque is fixed., , 66
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In many situations the word couple is torque due to the couple, but say that a couple, used synonymous to moment of the couple or is acting., its torque, i.e., every time we may not say it as, Moment of a force, Moment of a couple, , , � � r12 � F1 � r21 � F2, 1 � �r� f, , τ depends only upon the two forces, i.e., it, , depends upon the axis of rotation and, 2 τ, is independent of the axis of rotation or the, the point of application of the force., points of application of forces., It can produce translational acceleration Does not produce any translational, 3 also, if the axis of rotation is not fixed or if acceleration, but produces only rotational or, friction is not enough., angular acceleration., 4, , Its rotational effect can be balanced by a Its rotational effect can be balanced only by, proper single force or by a proper couple. another couple of equal and opposite torque., , 4.11.1. To prove that the moment of a couple, is independent of the axis of rotation:, Figure 4.9 shows a rectangular sheet (any, object would do) free to rotate only about a fixed, axis of rotation, perpendicular to the plane of, figure,, as��shown. A couple consisting of forces, ��, F and - F is acting on the sheet at different, locations., Here we are considering the torque of a, couple to be two torques due to individual forces, causing rotation about the axis of rotation. In, Fig. 4.9(a), the axis of rotation is between the, lines of action of the two forces constituting the, couple. Perpendicular distances, of, ��, �� the axis of, rotation from the forces F and - F are x and y, respectively. Rotation due to the pair of forces, in this case is anticlockwise (from top view),, i.e., directions of individual torques due to the, two forces are the same., �� � � � � � � � xF � yF � � x � y � F � rF (4.21), , (a), , (b), Fig. 4.9: Same couple on same object with, fixed axis of rotation at different locations, in (a) and (b)., , In the Fig. 4.9 (b), lines of action of both, the forces are on the same side of the axis ��, of, rotation. Thus, in this case, the rotation, of, +, F, ��, is anticlockwise, while that of - F is clockwise, (from the top view). As a result, their individual, torques are oppositely directed. Perpendicular, distance of the forces F and -F from the axis of, rotation are q and p respectively., �� � � � � � � � qF � pF, , --- (4.22), � � q � p � F � rF, From equations (4.21) and (4.22), it is clear, that the torque of a couple is independent of the, axis of rotation., 4.12. Mechanical equilibrium:, As a consequence of Newton’s second law,, the momentum of a system is constant in the, absence of an external unbalanced force. This, state is called mechanical equilibrium., A particle is said to be in mechanical, equilibrium, if no net force is acting upon it., For a system of bodies to be in mechanical, equilibrium, the net force acting on any part, of the system should be zero. In other words,, velocity or linear momentum of all parts of the, system must be constant or (zero) for the system, to be in mechanical equilibrium. Also, there is, no acceleration in any part of the system., ��, Mathematically, � F � 0 , for any part of, the system for mechanical equilibrium., , 67
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4.12.1 Stable, unstable and neutral, equilibrium:, Figures 4.10 (a), (b) and (c) show a ball, at rest in three situations under the action of, balanced forces. In all these cases, it is under, equilibrium. However, potential energy-wise,, the three cases differ., (a), , (b), , (c), ’, Fig. 4.10: states of mechanical equilibrium, (a) stable, (b) unstable and (c) neutral., Stable equilibrium: In Fig. 4.9(a), the, ball is most stable and is said to be in stable, equilibrium. If it is disturbed slightly from, its equilibrium position and released, it tends, to recover its position. In this case, potential, energy of the system is at its local minimum., Unstable equilibrium: In Fig. 4.9(b), the ball, is said to be in unstable equilibrium. If it is, slightly disturbed from its equilibrium position,, it moves farther from that position. This happens, because initially, potential energy of the system, is at its local maximum. If disturbed, it tries to, achieve the configuration of minimum potential, energy., , If potential energy function is known for the, system, mathematically, the three equilibria, can be explained with the help of derivatives, of that function. At any equilibrium position,, the first derivative of the potential energy, � dU, �, � 0� ., function is zero �, � dx, �, � d 2U �, The sign of the second derivative � 2 �, � dx �, decides the type of equilibrium. It is positive, at stable equilibrium (or vice versa), negative, at unstable equilibrium and zero (or does not, exist) at neutral equilibrium configuration., , Neutral equilibrium: In Fig. 4.9(c), potential, energy of the system is constant over a plane and, remains same at any position. Thus, even if the, ball is disturbed, it still remains in equilibrium, at practically any position. This is described as, neutral equilibrium., Example 4.10: A uniform wooden plank of, mass 30 kg is supported symmetrically by two, light identical cables; each can sustain a tension, up to 500 N. After tying, the cables are exactly, vertical and are separated by 2 m. A boy of mass, 50 kg, standing at the centre of the plank, is, interested in walking on the plank. How far can, he walk? (g = 10 ms-2), , Solution: Let T1 and T2 be the tensions along, the cables, both acting vertically upwards., Weight of the plank 300 N is acting, vertically downwards through the centre, 1 m, from either cable. Weight of the boy, 500 N is, vertically downwards at the point where he is, standing., ��T1 � T2 � 300 � 500 � 800 N, Suppose that the boy is able to walk x m, towards the right. Obviously, the tension in the, right side cable goes on increasing as he walks, towards the cable., Moments of 300 N and 500 N forces about, left end A are clockwise, while that of T2 is, anticlockwise., As the cable can sustain 500 N, (T2)max =, 500 N, Thus, for the equilibrium about A, we can, write,, 300 � 1 � 500 � �1 � x � � 500 � 2 ���� x � 0.4 �m, Thus, the boy can walk up to 40 cm on, either side of the centre., Example 4.11: A ladder of negligible mass, having a cross bar is resting on a frictionless, horizontal floor with angle between its legs, to be 400. Each leg is 1 m long. Calculate the, , 68
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force experienced by the cross bar when a, person of mass 50 kg is standing on the ladder., (g = 10 m s-2), Solution: Tension T along the cross bar is, horizontal. Let L be the length of each leg,, which is 1 m., Fig. 4.11: Centre of mass for n particles., , Position vector r of their centre of mass, from the same origin is then given by, n, n, , , �1mi ri �1mi ri, r�, �, n, M, m, � i, 1, , As there is no friction, there is no horizontal, reaction at the floor. Reaction N given by the, floor at the base of the ladder will then be only, vertical. Thus, along the vertical, two such, reactions balance weight W = mg of the person., mg, �N �, � 250 N, 2, At the left leg, about the upper end, the, torque due to N is clockwise and that due to, the tension T is anticlockwise. For equilibrium,, these two torques should have same magnitude., , If the origin itself is at the centre of mass,, n, , , r �0 �, � �mi ri � 0 , then, 1, , n, , , ∑mi ri, , gives the moment of masses, , 1, , (similar to moment of force) about the centre, of mass., Thus, centre of mass is a point about which, the summation of moments of masses in the, system is zero., are the respective xIf x1, x2, ... xn, coordinates of r1, r2, ... rn, the x-coordinate of, the centre of mass is given by, , � mx �� mx, x�, M, �m, n, , n, , i i, , 1, , n, , 1, , i i, , 4.13. Centre of mass:, 1 i, As discussed earlier, Newton’s laws of, Similarly, y and z-coordinates of the centre, motion and many other laws are applicable for of mass are respectively given by, n, n, point masses only. However, in real life, we, mi yi �1mi yi, �, 1, always come across finite objects (objects of, y�, �, �, n, M, m, measurable sizes). Concept of centre of mass, �1 i, and, (c.m.) helps us in considering these objects to, n, n, m, z, mi zi, �, �, i, i, be point objects at a particular location, thereby, z � 1n, � 1, allowing us to apply Newton’s laws of motion., M, �1mi, 4.13.1. Mathematical understanding of, (i) Continuous mass distribution: For a, centre of mass:, continuous mass distribution with uniform, (i) System of n particles: Consider a system, density, we need to use integration instead of, of n particles of masses m1, m2 ... mn., summation. In this case, the position vector of, n, the centre of mass is given by, �, mi = M the total mass., ��, , , 1, r dm �r dm, , �, ,, be their respective position, Let, r�, �, M, dm, vectors from a given origin O (Fig. 4.11) ., �, , 69
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where �dm � M is the total mass of the object. Hemispherical shell, of radius R, Then the Cartesian coordinates of c.m. are, R, x dm �x dm, =, xc 0=, , yc, �, x�, �, 2, �dm M, Solid hemisphere of, radius R, � y dm � � y dm, y�, 3R, M, =, xc 0=, , yc, �dm, 8, z dm �z dm, �, Hollow right circuz�, �, lar cone of height h, �dm M, h, xc 0=, , yc, Using the expressions given above, the =, 3, centres of mass of uniform symmetric objects, can be obtained. Some of these are listed in the Solid right circular, cone of height h, Table 4.1 given below:, h, Table 4.1: Coordinate of the centre of mass =, xc 0=, , yc, 4, (c.m.) for some symmetrical objects, Coordinates of, c.m., System of two point, masses: c.m. divides, the distance in inverse proportion of, the masses, Any geometrically, symmetric object of, uniform density., Isosceles triangular, plate, H, =, xc 0=, , yc, 3, Right angled, triangular plate, p, q, =, xc =, , yc, 3, 3, , Uniform Symmetric, Objects, , Centre of mass at a, geometrical centre of, the object, , Example 4.12: A letter ‘E’ is prepared from a, uniform cardboard with shape and dimensions, as shown in the figure. Locate its centre of mass., Solution: As the sheet is uniform, each square, can be taken to be equivalent to mass m, concentrated at its respective centre. These, masses will then be at the points labelled with, numbers 1 to 10, as shown in figure. Let us, select the origin to be at the left central mass m5,, as shown and all the co-ordinates to be in cm., By symmetry, the centre of mass of m1, m2, and m3 will be at m2 (1, 2) having effective mass, 3m. Similarly, effective mass 3m due to m8, m9, and m10 will be at m9 (1, -2). Again, by symmetry,, the centre of mass of these two (3m each) will, have co-ordinates (1, 0). Mass m6 is also having, co-ordinates (1, 0). Thus, the effective mass at, (1, 0) is 7m., , Thin semicircular, ring of radius R, 2R, xc � 0, yc �, �, Thin semicircular, disc of radius R, 4R, xc � 0, yc �, 3�, , Using symmetry for m4, m5 and m7, there, will be effective mass 3m at the origin (0, 0)., , 70
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Thus, effectively, 3m and 7m are separated, by 1 cm along x-direction. y-coordinate is not, required., m x � m2 x2 3 � 0 � 7 � 1, xc � 1 1, �, � 0.7 �cm, 3� 7, m1 � m2, , yc �, , mA y A � mB yB � mC yC, mA � mB � mC, m�, , 10 3, ��4 m � 0 � 9m � 0, 10 3, 2, �, �cm, m � 4 m � 9m, 28, , �, Alternately, for two point masses, the centre, of mass divides the distance between them in Example 4.14: A hole of radius r is cut from a, the inverse ratio of their masses. Hence, 1 cm is uniform disc of radius 2r. Centre of the hole is, at a distance r from centre of the disc. Locate, divided in the ratio 7:3., centre of mass of the remaining part of the disc., from 3m, i.e., from the origin at mc, Solution: Method I: (Using entire disc):, Example 4.13: Three thin walled uniform, Before cutting the hole, c.m. of the full disc was, hollow spheres of radii 1cm, 2 cm and 3 cm, at its centre. Let this be our origin O. Centre of, are so located that their centres are on the three, mass of the cut portion is at its centre D. Thus,, vertices of an equilateral triangle ABC having, x =�, each side 10 cm. Determine centre of mass of it is at a distance 1 r form the origin. Let C, be the centre of mass of the remaining disc., the system., Obviously, it should be on the extension of the, line DO. Let it be at a distance x2 = x from the, origin. As the disc is uniform, mass of any of its, part is proportional to the area of that part., , Solution: Mass of a thin walled uniform hollow, sphere is proportional to its surface area, (as, density is constant) hence proportional to r2., Thus, if mass of the sphere at A is mA = m, then, mB = 4m and mC = 9m. By symmetry of the, spherical surface, their centres of mass are at, Thus, if m is the mass of the cut disc, mass, their respective centres, i.e., at A, B and C., of, the, entire disc must be 4m and mass of the, Let us choose the origin to be at C, where, the largest mass 9m is located and the point B remaining disc will be 3m., m x � m2 x2, with mass 4m on the positive x-axis. With this,, xc � 1 1, the co-ordinates of C are (0, 0) and that of B, m1 � m2, As centre of mass of the, are (10, 0). (Locating the origin at the larger, full disc is at the origin, we can write,, mass here save our efforts of calculations like, m � r � 3m � � x �, � �r, multiplications with larger numbers). If A of, 0�, ����� x �, mass m is taken in the first quadrant, its com � 3m, 3, ordinates will be, xc �, �, , mA x A � mB xB � mC xC, mA � mB � mC, m � 5 � 4 m � 10 � 9m � 0 45, � �cm, m � 4 m � 9m, 14, , Method II: (Using negative mass): Let, R be the position vector of the centre of mass, of the uniform disc of mass M. Mass m is with, , centre of mass at position vector r from the, centre of the disc. Position vector of the centre, of mass of the remaining disc is then given by, , 71
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, , MR � mr, rc �, M � m ….. (as if there is a negative, mass, i.e., m2 = - m), With our description, M = 4m, m =m,, � �mr � �r, � ... Same, � rc �, �, R = 0 and r = r �, 3m, 3, as method I., 4.13.2. Velocity of centre of mass:, Let v1, v2, ... vn be the velocities of a system, of point masses m1, m2, ... mn. Velocity of the, centre of mass of the system is given by, , 4., , 5., 6., , 7., 8., , 9., , , x, y and z components of v can be obtained, similarly., , v dm, , �, For continuous distribution, v cm �, M, 4.13.3. Acceleration of the centre of mass:, Let a1, a2, ... an be the accelerations, of a system of point masses m1, m2, ... mn., Acceleration of the centre of mass of the system, is given by, , 10., , 11., , 12., , x, y and z components of a can be obtained, similarly., , a dm, , �, For continuous distribution, a cm �, M, , 13., , 4.13.4. Characteristics of centre of mass:, 1. Centre of mass is a hypothetical point, at which entire mass of the body can be, assumed to be concentrated., 2. Centre of mass is a location, and not a, physical quantity., 3. Centre of mass is particle equivalent of a, given object for applying laws of motion., , 72, , 14., 15., , 16., , Centre of mass is the point at which, if, a force is applied, it causes only linear, acceleration and not angular acceleration., Centre of mass is located at the centroid,, for a rigid body of uniform density., Centre of mass is located at the geometrical, centre, for a symmetric rigid body of, uniform density., Location of centre of mass can be changed, only by an external unbalanced force., Internal forces (like during collision or, explosion) never change the location of, centre of mass., Position of the centre of mass depends, only upon the distribution of mass,, however, to describe its location we may, use a coordinate system with a suitable, origin. In statistical terms the centre of, mass is decided by the weighted average, of individual masses. This is obtained, by giving proper mass weightage to the, distance. This should be clear from the, mathematical expression for the location, of the centre of mass., For a system of particles, the centre of, mass need not coincide with any of the, particles., While balancing an object on a pivot, the, line of action of weight must pass through, the centre of mass and the pivot. Quite, often, this is an unstable equilibrium., Centre of mass of a system of only two, particles divides the distance between, the particles in an inverse ratio of their, masses, i.e., it is closer to the heavier, mass., Centre of mass is a point about which the, summation of moments of masses in the, system is zero., If there is an axial symmetry for a given, object, the centre of mass lies on the axis, of symmetry., If there are multiple axes of symmetry, for a given object, the centre of mass is at, their point of intersection., Centre of mass need not be within the
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body (See the photograph given below: used for same purpose. This property can be, Picture 4.1). Other examples are a ring, a used to determine the c.g. (or c.m.) of a laminar, (laminar means like a leaf – two dimensional), horse shoe, etc., object., In Fig. 4.12, a laminar object is suspended, from a rigid support at two orientations. Lines, are to be drawn on the object parallel to the, plumb line shown. Plumb line is always vertical,, i.e., parallel to the line of action of gravitational, force. Intersection of the lines drawn is then, the point through which line of action of the, gravitational force passes for any orientation., Thus, it gives the location of the c.g. or c.m., Picture 4.1: Courtesy Wikipedia: Estimated, center of mass/gravity of a high jumper doing, a Fosbury Flop. Note that it is below the bar in, this position. This is possible because our head, and legs are much heavier than the fleshy part., Increase in the gravitational potential energy of, the high jumper depends upon this point., 4.14. Centre of gravity, Centre of gravity (c.g.) of a body is the, point around which the resultant torque due to, force of gravity on the body is zero. Analogous, to centre of mass, it is the weighted average of, the gravitational forces (weights) on individual, particles., For uniform gravitational field (in simple, words, if g is constant), c.g. always coincides, with the c.m. Obviously it is true for all the, objects on the Earth in our daily life. Thus,, in common usage, the terms c.g. and c.m. are, ises, , erc, , Ex, , Centre of mass is a fixed property for a, given rigid body in spite of any orientation., The centre of gravity may depend upon nonuniformity of the gravitational field, in turn,, will depend upon the orientation. For objects on, the Earth , this will be possible only if the size, of an object is comparable to that of the Earth, (size at least few thousand km). In such cases,, the c.g. will be slightly lower than the c.m. as on, the lower side of an object the gravitational field, is stronger. Of course, we shall not come across, such an object., , Exercises, , 1. Choose the correct answer., i) Consider following pair of forces of equal, magnitude and opposite directions:, (P) Gravitational forces exerted on each, other by two point masses separated, by a distance., , (Q) Couple of forces used to rotate a water, tap., (R) Gravitational force and normal force, experienced by an object kept on a, table., For which of these pair/pairs the two forces, , do NOT cancel each other’s translational, effect?, (A) Only P, (B) Only P and Q, (C) Only R, (D) Only Q and R, ii) Consider following forces: (w) Force due, to tension along a string, (x) Normal force, given by a surface, (y) Force due to air, resistance and (z) Buoyant force or upthrust, given by a fluid., Which of these are electromagnetic forces?, (A) Only w, y and z, , 73
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iii), , , , , , iv), , , , , , v., , , , vi., , , , vii., , (B) Only w, x and y, (C) Only x, y and z, (D) All four., At a given instant three point masses m,, 2m and 3m are equidistant from each other., Consider only the gravitational forces, between them. Select correct statement/s, for this instance only:, (A) Mass m experiences maximum force., (B) Mass 2m experiences maximum force., (C) Mass 3m experiences maximum force., (D) All masses experience force of same, magnitude., The rough surface of a horizontal table, offers a definite maximum opposing force, to initiate the motion of a block along the, table, which is proportional to the resultant, normal force given by the table. Forces, F1 and F2 act at the same angle θ with the, horizontal and both are just initiating the, sliding motion of the block along the table., Force F1 is a pulling force while the force, F2 is a pushing force. F2 > F1 , because, (A) Component of F2 adds up to weight to, increase the normal reaction., (B) Component of F1 adds up to weight to, increase the normal reaction., (C) Component of F2 adds up to the, opposing force., (D) Component of F1 adds up to the, opposing force., A mass 2m moving with some speed is, directly approaching another mass m, moving with double speed. After some, time, they collide with coefficient of, restitution 0.5. Ratio of their respective, speeds after collision is, (A) 2/3 , (B) 3/2 , (C) 2 , (D) ½, A uniform rod of mass 2m is held horizontal, by two sturdy, practically inextensible, vertical strings tied at its ends. A boy of, mass 3m hangs himself at one third length, of the rod. Ratio of the tension in the string, close to the boy to that in the other string is, (A) 2 , (B) 1.5 , (C) 4/3 , (D) 5/3, Select WRONG statement about centre of, mass:, , , , (A) Centre of mass of a ‘C’ shaped uniform, rod can never be a point on that rod., (B) If the line of action of a force passes, through the centre of mass, the moment, of that force is zero., (C) Centre of mass of our Earth is not at its, geometrical centre., (D) While balancing an object on a pivot,, the line of action of the gravitational, force of the earth passes through the, centre of mass of the object., viii. For which of the following objects will the, centre of mass NOT be at their geometrical, centre?, (I) An egg, (II) a cylindrical box full of rice, (III) a cubical box containing assorted, sweets, , (A) Only (I), , (B) Only (I) and (II), , (C) Only (III), , (D) All, (I), (II) and (III)., 2. Answer the following questions., i) In the following table, every entry on the, left column can match with any number of, entries on the right side. Pick up all those, and write respectively against A, B, C and, D., , 74, , Name of the force, Type of the force, P EM force, A Force due to, tension in a string, Q Reaction force, B Normal force, R Conservative, C Frictional force, force, S NonD Resistive force, offered by air or, conservative, water for objects, force, moving through it., , ii) In real life objects, never travel with, uniform velocity, even on a horizontal, surface, unless something is done? Why, is it so? What is to be done?, iii) For the study of any kind of motion, we, never use Newton’s first law of motion, directly. Why should it be studied?, iv) Are there any situations in which we, cannot apply Newton’s laws of motion?, Is there any alternative for it?
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v) You are inside a closed capsule from where, you are not able to see anything about, the outside world. Suddenly you feel, that you are pushed towards your right., Can you explain the possible cause (s)?, Is it a feeling or a reality? Give at least, one more situation like this., vi) Among the four fundamental forces,, only one force governs your daily life, almost entirely. Justify the statement by, stating that force., vii) Find the odd man out: (i) Force, responsible for a string to become taut, on stretching (ii) Weight of an object (iii), The force due to which we can hold an, object in hand., viii) You are sitting next to your friend on, ground. Is there any gravitational force, of attraction between you two? If so, why, are you not coming together naturally?, Is any force other than the gravitational, force of the earth coming in picture?, ix) Distinguish between: (A) Real and, pseudo forces, (B) Conservative and, non-conservative forces, (C) Contact, and non-contact forces, (C) Inertial and, non-inertial frames of reference., x) State the formula for calculating work, done by a force. Are there any conditions, or limitations in using it directly? If, so, state those clearly. Is there any, mathematical way out for it? Explain., xi) Justify the statement, “Work and energy, are the two sides of a coin”., xii) From the terrace of a building of height, H, you dropped a ball of mass m. It, reached the ground with speed v. Is, 1 2, the relation �mgH = mv applicable, 2, exactly? If not, how can you account, for the difference? Will the ball bounce, to the same height from where it was, dropped?, xiii) State the law of conservation of linear, momentum. It is a consequence of which, law? Given an example from our daily, life for conservation of momentum. Does, it hold good during burst of a cracker?, xiv) Define coefficient of restitution and, , obtain its value for an elastic collision, and a perfectly inelastic collision., xv) Discuss the following as special cases of, elastic collisions and obtain their exact, or approximate final velocities in terms, of their initial velocities., , (i) Colliding bodies are identical., , (ii) A veru heavy object collides on a, lighter object, initially at rest., (iii) A very light object collides on a, comparatively much massive object,, initially at rest., xvi) A bullet of mass m1 travelling with a, velocity u strikes a stationary wooden, block of mass m2 and gets embedded into, it. Determine the expression for loss in, the kinetic energy of the system. Is this, violating the principle of conservation of, energy? If not, how can you account for, this loss?, xvii) One of the effects of a force is to change, the momentum. Define the quantity, related to this and explain it for a variable, force. Usually when do we define it, instead of using the force?, xviii) While rotating an object or while, opening a door or a water tap we apply a, force or forces. Under which conditions, is this process easy for us? Why? Define, the vector quantity concerned. How does, it differ for a single force and for two, opposite forces with different lines of, action?, xix) Why is the moment of a couple, independent of the axis of rotation even, if the axis is fixed?, xx) Explain balancing or mechanical, equilibrium. Linear velocity of a rotating, fan as a whole is generally zero. Is it in, mechanical equilibrium? Justify your, answer., xxi) Why do we need to know the centre of, mass of an object? For which objects,, its position may differ from that of the, centre of gravity?, Use g = 10 m s -2, unless, otherwise stated., 3. Solve the following problems., i) A truck of mass 5 ton is travelling on a, , 75
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horizontal road with 36 km hr -1 stops, on traveling 1 km after its engine fails, suddenly. What fraction of its weight is the, frictional force exerted by the road?, If we assume that the story repeats for a, car of mass 1 ton i.e., can moving with, same speed stops in similar distance same, how much will the fraction be?, 1, [Ans:, in the both], 200, ii) A lighter object A and a heavier object B, are initially at rest. Both are imparted the, same linear momentum. Which will start, with greater kinetic energy: A or B or both, will start with the same energy?, [Ans: A], iii) As I was standing on a weighing machine, inside a lift it recorded 50 kg wt. Suddenly, for few seconds it recorded 45 kg wt. What, must have happened during that time?, Explain with complete numerical analysis., [Ans: Lift must be coming down with, g, acceleration, � 1m s �2 ], 10, iv) Figure below shows a block of mass 35 kg, resting on a table. The table is so rough that, it offers a self adjusting resistive force 10%, of the weight of the block for its sliding, motion along the table. A 20 kg wt load is, attached to the block and is passed over a, pulley to hang freely on the left side. On the, right side there is a 2 kg wt pan attached to, the block and hung freely. Weights of 1 kg, wt each, can be added to the pan. Minimum, how many and maximum how many such, weights can be added into the pan so that, the block does not slide along the table?, , [Ans: Min 15, maximum 21]., 35 kg wt, on rough table, 20kg wt, load, , v), , , , 2kg wt, pan, , Power is rate of doing work or the rate at, which energy is supplied to the system., A constant force F is applied to a body, of mass m. Power delivered by the force, at time t from the start is proportional to, (a) t (b) t2 , , , , vi), , (c) t (d) t0, Derive the expression for power in terms, of F, m and t. , F 2t, p, ,� p� t ], �, [Ans:, , m, 40000 litre of oil of density 0.9 g cc is, pumped from an oil tanker ship into a, storage tank at 10 m higher level than the, ship in half an hour. What should be the, power of the pump?, , [Ans: 2 kW], vii) Ten identical masses (m each) are, connected one below the other with, 10 strings. Holding the topmost string,, the system is accelerated upwards with, acceleration g/2. What is the tension, in the 6th string from the top (Topmost, string being the first string)?, [Ans: 6 mg], viii) Two galaxies of masses 9 billion solar, mass and 4 billion solar mass are 5, million light years apart. If, the Sun has, to cross the line joining them, without, being attracted by either of them, through, what point it should pass?, , [Ans: 3 million light years from the 9, billion solar mass], ix) While decreasing linearly from 5 N to 3, N, a force displaces an object from 3 m, to 5 m. Calculate the work done by this, force during this displacement., [Ans: 8 N], x), Variation of a force in a certain region, is given by F = 6x2 - 4x - 8. It displaces, an object from x = 1 m to x = 2 m in this, region. Calculate the amount of work, done. [Ans: Zero], xi) A ball of mass 100 g dropped on the, ground from 5 m bounces repeatedly., During every bounce 64% of the, potential energy is converted into kinetic, energy. Calculate the following:, , (a) Coefficient of restitution., , (b) Speed with which the ball comes up, from the ground after third bounce., , (c) Impulse given by the ball to the, ground during this bounce., , (d) Average force exerted by the ground, , 76
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if this impact lasts for 250 ms., , (e) Average pressure exerted by the, ball on the ground during this impact if, contact area of the ball is 0.5 cm2., , [Ans: 0.8, 5.12 m/s, 1.152N s,, , 4.608 N, 9.216×104 N/m2], xii) A spring ball of mass 0.5 kg is dropped, from some height. On falling freely for, 10 s, it explodes into two fragments of, mass ratio 1:2. The lighter fragment, continues to travel downwards with, speed of 60 m/s. Calculate the kinetic, energy supplied during explosion., [Ans: 200 J], xiii) A marble of mass 2m travelling at 6, cm/s is directly followed by another, marble of mass m with double speed., After collision, the heavier one travels, with the average initial speed of the two., Calculate the coefficient of restitution., [Ans: 0.5], xiv) A, 2 m long wooden plank of mass 20, kg is pivoted (supported from below) at, 0.5 m from either end. A person of mass, 40 kg starts walking from one of these, pivots to the farther end. How far can the, person walk before the plank topples?, [Ans: 1.25 m], xv) A 2 m long ladder of mass 10 kg is kept, against a wall such that its base is 1.2 m, , away from the wall. The wall is smooth, but the ground is rough. Roughness of the, ground is such that it offers a maximum, horizontal resistive force (for sliding, motion) half that of normal reaction at, the point of contact. A monkey of mass, 20 kg starts climbing the ladder. How, far can it climb along the ladder? How, much is the horizontal reaction at the, wall?, , [Ans: 1.5 m, 15 N], xvi) Four uniform solid cubes of edges 10, cm, 20 cm, 30 cm and 40 cm are kept on, the ground, touching each other in order., Locate centre of mass of their system., [Ans: 65 cm,, 17.7 cm], xvii) A uniform solid sphere of radius R has a, hole of radius R/2 drilled inside it. One, end of the hole is at the centre of the, sphere while the other is at the boundary., Locate centre of mass of the remaining, sphere. , [Ans: -R/14 ], xviii) In the following table, every item on the, left side can match with any number of, items on the right hand side. Select all, those., ***, , Types of collision, Illustrations, (a) Elastic collision, (i) A ball hit by a bat., (b) Inelastic collision, (ii) Molecular collisions responsible for pressure exerted by, (c) Perfectly inelastic collision, a gas., (d) Head on collision, (iii) A stationary marble A is hit by marble B and the marble, B comes to rest., (iv) A blob of clay dropped on the ground sticks to the ground., (v) Out of anger, giving a kick to a wall., (vi) A striker hits the boundary of a carrom board in a direction, perpendicular to the boundary and rebounds., , 77
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5., , Gravitation, , Can you recall?, 1. When released from certain height why do objects tend to fall vertically downwards?, 2. What is the shape of the orbits of planets? 3. What are Kepler’s laws?, 5.1 Introduction:, All material objects have a natural, tendency to get attracted towards the Earth. In, many natural phenomena like coconut falling, from trees, raindrops falling from the clouds,, etc., the same tendency is observed. All bodies, are attracted towards the Earth with constant, acceleration. This fact was recognized by, Italian physicist Galileo. He is said to have, demonstrated it by releasing two balls of, different masses from top of the leaning tower, of Pisa which reached the ground at the same, time., Indian astronomer and mathematician, Aryabhatta (476-550 A.D.) studied the motion, of the moon, Earth and other planets in the, 5th century A.D. In his book ‘Aryabhatiya’,, he concluded that the Earth revolves about its, own axis and it moves in a circular orbit around, the Sun. Also the moon revolves in a circular, orbit around the Earth. Almost a thousand years, after Aryabhatta, Tycho Brahe (1546-1601) and, Johannes Kepler (1571-1630) studied planetary, motion through careful observations. Kepler, analysed the huge data meticulously recorded, by Tycho Brahe and established three laws of, planetary motion. He showed that the motion, of planets follow these laws. The reason why, planets obey these laws was provided by, Newton. He explained that gravitation is the, phenomenon responsible for keeping planets, in their orbits around the Sun. The moon also, revolves around the Earth due to gravitation., Gravitation compels dispersed matter to, coalesce, hence the existence of the Earth, the, Sun and all material macroscopic objects in the, universe., Every massive object in the universe, experiences gravitational force. It is the force of, mutual attraction between any two objects by, , virtue of their masses. It is always an attractive, force with infinite range. It does not depend, upon intervening medium. It is much weaker, than other fundamental forces. Gravitational, force is 10-39 times weaker than strong nuclear, force., 5.2 Kepler’s Laws:, Kepler’s laws of planetary motion describe, the orbits of the planets around the Sun. He, published first two laws in 1609 and the third, law in 1619. These laws are the result of the, analysis of the data collected by Tycho Brahe, through years of observations of the planetary, motion., , 78, , Do you know ?, Drawing an ellipse, An ellipse is the locus of the points in a plane, such that the sum of their distances from two, fixed points, called the foci, is constant., You can draw an ellipse by the following, procedure., 1) Insert two tacks or drawing pins, A and, B, as shown in the figure into a sheet of, drawing paper at a distance ‘d’ apart., 2) Tie the two ends of a piece of thread, whose length is greater than ‘2d’ and, place the loop around AB as shown in, the figure., 3) Place a pencil inside the loop of thread,, pull the thread taut and move the pencil, sidewise, keeping the thread taut., The pencil will trace an ellipse.
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1 Law of orbit, Fig 5.2 shows the orbit of a planet. The shaded, All planets move in elliptical orbits areas are the areas swept by SP, the line joining, around the Sun with the Sun at one of the the planet and the Sun, in fixed intervals of time., These are equal according to the second law., foci of the ellipse., The law of areas can be understood as an, outcome of conservation of angular momentum., It is valid for any central force. A central force, on an object is a force which is always directed, along the line joining the position of object and, a fixed point usually taken to be the origin of, the coordinate system. The force of gravity, due to the Sun on a planet is always along the, line joining the Sun and the planet (Fig. 5.2)., It is thus a central force. Suppose the Sun is, Fig. 5.1: An ellipse traced by a planet with, at the, origin. The position of planet is denoted, the Sun at the focus., by r and the perpendicular, component of its, The orbit of a planet around the Sun is shown, momentum is denoted by p (component ⊥ r )., in Fig. 5.1., The area swept���, by, � the planet of mass m in given, Here, S and S′ are the foci of the ellipse the Sun, interval Δt is ∆A which is given by, being at S., ���� 1 � �, --- (5.1), P is the closest point along the orbit from, ∆A = (r × v∆t ) , , 2, , S and is, called ‘Perihelion’., As for small ∆t , v is perpendicular to r and, A is the farthest point from S and is, called this is the area of the triangle., ����, ‘Aphelion’., �A 1 � � , --- (5.2), PA is the major axis = 2a., �, = (r × v), �t 2, , PO and AO are the semimajor axes = a., Linear momentum ( p ) is the product of mass, MN is the minor axis =2b., and velocity., , , MO and ON are the semiminor axes = b, p = mv , --- (5.3), , 2. Law of areas, .. . putting v = p /m in the above equation, we, The line that joins a planet and the Sun, sweeps equal areas in equal intervals of time. get, ����, ��, �� p �, �, A, 1, Kepler observed that planets do not move, = �r× �, --- (5.4), �t 2 �� m ��, around the Sun with uniform speed. They move, , ��, faster when they are nearer to the Sun while, Angular momentum L is the rotational, they move slower when they are farther from, equivalent of linear momentum and is defined, the Sun. This is explained by this law., as, �� � ��, ∴ L = r × p --- (5.5), For central force the angular momentum is, conserved., ����, ��, �A, L, �, =, = constant, --- (5.6), �t 2m, , ... This proves the law of areas. This is a, Fig. 5.2: The orbit of a planet P moving, consequence of the gravitational force being a, around the Sun., central force., , 79
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3. Law of periods, The square of the time period of, revolution of a planet around the Sun is, proportional to the cube of the semimajor, axis of the ellipse traced by the planet., If r is length of semimajor axis then, this, law states that, , �, , T2 2 r2 3, �, T12 r13, , T �r �, � 2 �� 2 �, T1 � r1 �, , � 3r �, =� 1�, � r1 �, , T 2 � r3, T2, or 3 � constant, r, , �, , --- (5.7), , 3/ 2, , 3/ 2, , T2, � 27, T1, , T2 � T1 � 27, Kepler’s laws were based on regular, observations of the motion of planets. Kepler, � 365 � 27, did not know why the planets obey these laws,., � 1897days, , i.e. he had not derived these laws., Table 5.1 gives data from measurements (B) If r2=2r1, T2 =2 ? 3, T2, r, of planetary motions which confirm Kepler’s, � 23, 2, T, r1, 1, law of periods., 3, Table 5.1: Kepler’s third law, T2 2 � 2r1 �, T12, , Planet, , Semi-major Period, T2/r3, axis in units in years in units of, of 1010 m, 10-34 y2m-3, Mercury, 5.79, 0.24, 2.95, Venus, 10.8, 0.615, 3.00, Earth, 15.0, 1, 2.96, Mars, 22.8, 1.88, 2.98, Jupiter, 77.8, 11.9, 3.01, Saturn, 143, 29.5, 2.98, Uranus, 287, 84., 2.98, Neptune, 450, 165, 2.99, Pluto, 590, 248, 2.99, , �, , �� �, � r1 �, , T2, � 8, T1, , T2 � T1 8, � 365 8, � 1032 days., , , 5.3 Universal Law of Gravitation:, When objects are released near the surface, of the Earth, they always fall down to the, ground, i.e., the Earth attracts objects towards, itself. Galileo (1564-1642) pointed out that, heavy and light objects, when released from the, Example 5.1: What would be the average, same height, fall towards the Earth at the same, duration of year if the distance between the Sun, speed, i.e., they have the same acceleration., and the Earth becomes, Newton went beyond (the Earth and objects, (A) thrice the present distance., falling on it) and proposed that the force of, (B) twice the present distance., attraction between masses is universal. Newton, stated the universal law of gravitation which, Solution:, (A) Let r1 = Present distance between the Earth led to an explanation of terrestrial gravitation., It also explains Kepler’s laws and provides the, and Sun, reason behind the observed motion of planets, T = 365 days., around the Sun., If r2 = 3r1, T2 = ?, In 1665, Newton studied the motion of, According to Kepler’s law of period, moon around the Earth. It was known that the, T12 ∝ r13 and T22 ∝ r23, moon completes one revolution about the Earth, in 27.3 days. The distance from the Earth to, , 80
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the moon is 3.85×105 km. The motion of the, moon is in almost a circular orbit around the, Earth with constant angular speed ω. As it is a, circular motion, the moon must be constantly, acted upon by a force directed towards the, Earth which is at the centre of the circle. This, force is the centripetal force, and is given by , F = mrω2 --- (5.8), where m is the mass of the moon and r is the, distance between the centres of the moon and, the Earth., Also we have F = ma from Newton’s laws, of motion., ... ma = mrω2, ... a = rω2 , --- (5.9), As angular velocity in terms of time period, is given as, 2�, , , ��, T, we get, 2, , , , � 2� � , a = r�, �, � T �, , --- (5.10), , by an object due to the gravitational force of, the Earth must be decreasing with distance of, the body from the Earth. (Remember that the, value of acceleration due to Earth’s gravity at, the surface is 9.8 m/s2), We have,, a object, 9.8 m / s 2, �, � 3600, a moon 0.0027 m / s 2, Also,, distance of moon from the Earth’s centre, distance of object from the Earth’s centre, 3.85×105 km, =, ≈ 60, 6378 km, Thus from the above two equations we get, 2, a object � distance of moon � --- (5.11), �, �, a moon �� distance of object ��, Newton therefore concluded that the, acceleration of an object towards the Earth is, inversely proportional to the square of distance, of object from the centre of the Earth., , 1, r2, F = ma, , �a �, , Substituting values of r and T, we get, a�, , 3.85 � 105 � 1034� 2 m, (27.3 � 24 � 60 � 60) 2 s 2, , � a � 0.0027 m / s 2, , As,, Therefore, the force exerted by the Earth on an, object of mass m at a distance r from it is , F∝, , m, r2, , This is the acceleration of the moon which, is towards the centre of the Earth, i.e., centre of Similarly an object also exerts a force on the, orbit in which the moon revolves. What could Earth which is, M, FE ∝ 2, Do you know ?, r, The value of acceleration due to gravity, can be assumed to be constant when we are, dealing with objects close to the surface of, the Earth. This is because the difference in, their distances from the centre of the Earth, is negligible., , where M is the mass of the Earth., According to Newton’s third law of, motion, the force on a body due to the Earth has, to be equal to the force on the Earth due to the, object. Hence the force F is also proportional to, the mass of the Earth. Hence Newton concluded, that the gravitational force between the Earth, and an object of mass m is, , be the force which produces this acceleration?, Newton assumed that the laws of nature, Mm, are the same for Earthly objects and for, F∝ 2, r, celestial bodies. As this acceleration is much, smaller than the acceleration felt by bodies, He then generalized it to gravitational, near the surface of the Earth (while falling on, force between any two objects and stated his, Earth), he concluded that the acceleration felt, , 81
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Universal law of gravitation as follows., Gm1m2, The force between them, F1 =, Every particle of matter attracts every, r2, other particle of matter with a force which is, When the distance between them is doubled the, directly proportional to the product of their, Gm1m2 Gm1m2, masses and inversely proportional to the force becomes, F2 =, =, (2r ) 2, 4r 2, square of the distance between them., F Gm1m2, 4r 2, This law is applicable to all material, � 1 �, �, objects in the universe. Hence it is known as, F2, r2, Gm1m2, the universal law of gravitation., F, � 1 �4, F2, 1, N ( F1 � 1 N ), 4, F2 � 0.25 N, , � F2 �, , � Force become one forth (0.25 N), , Figure 5.3 shows two point masses m1 and, o, m2 with position vectors r 1 and r 2 respectively, from origin O. The position vector of m2, Fig. 5.3: Gravitational force between, with respect to m1 is then, by, given, , , , masses m1 and m2., r 21 = r 2 - r 1 . Similarly r 12 = r 1 - r 2 = - r 21 and, , , If two bodies of masses m1 and m2 are, r, =, r, if, 12 = r 21 , the formula for force on m, 2, separated by a distance r, then the gravitational, force of attraction between them can be written due to m1 can be expressed in vector form as,, ��, mm, as, --- (5.13), F 21 =G 1 2 2 (-r� 21 ), r, , m1 m2, F∝ 2, r, where ��r 21 is the unit vector from m1 to m2. The, Similarly,, or, F =G m1 m2 , --- (5.12) force F 21 is directed from m2 to m1. ��, 2, r, force experienced by m1 due to m2 is F 12, where G is a constant known as the universal, ��, mm, gravitational constant. Its value in SI units is, --- (5.14), F 12 � G 1 2 2 (�r� 12 ), r, , given by, ��, ��, � F 12 � � F 21 , --- (5.15), G = 6.67×10-11N m2/kg2, and its dimensions are, [G] = [L3M-1T-2]., The gravitational force is an attractive, force and it acts along the line joining the two, bodies. The forces exerted by two bodies on each, other have same magnitude but have opposite, directions, they form an action-reaction pair., Example 5.2: The gravitational force between, two bodies is 1 N. If distance between them is, doubled, what will be the gravitational force, between them?, Solution: Let the masses of the two bodies be, m1 and m2 and the distance between them be r., , 82, , Fig. 5.4: gravitational force due to a, collection of masses.
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This law refers to two point masses. For a, collection of point masses, the force on any one, of them is the vector sum of the gravitational, forces exerted by all the other point masses., As shown in Fig. 5.4, the resultant force, on, mass m1 is the vector sum of forces, �� point, ��, ��, F 12 , F 13 and F 14 due to point masses m2, m3, and m4 respectively. Masses m2, m3 and m4 are, also attracted towards mass m1 and there is also, mutual attraction between masses m2, m3 and, m4 but these forces are not shown in the figure., ��, , n, , ��, , For n particles, force on ith mass F i � � F ij, j �1, j �i, , part of the shell may be closer to point A, but, its mass is less. Remaining part will then have, larger mass but its centre of mass is away from, A. However mathematically it can be shown, that the net gravitational force on A is still, zero, so long as it is inside the shell. In fact,, the gravitational force at any point inside any, hollow closed object of any shape is zero., (2) The gravitational force of attraction, between a hollow spherical shell or solid sphere, of uniform density and a point mass situated, outside is just as if the entire mass of the shell, or sphere is concentrated at the centre of the, shell or sphere., Gravitational force caused by different, regions of shell can be resolved into components, along the line joining the point mass to the, centre and along a direction perpendicular to, this line. The components perpendicular to this, line cancel each other and the resultant force, remains along the line joining the point to the, centre. By mathematical calculations it can be, shown to be equal to the force that would have, been exerted if the entire mass of the shell was, present at the centre of the shell., It is obvious that case (2) is applicable for, any uniform sphere (solid or hollow), so long as, the point is outside the sphere., Example 5.3: Three particles A, B, and C each, having mass m are kept along a straight line, with AB = BC = l. A fourth particle D is kept on, the perpendicular bisecter of AC at a distance l, from B. Determine the gravitational force on D., , ��, where F ij is the force on ith particle due to, jth particle., The gravitational force between an, extended object like the Earth and a point mass, A can be obtained by obtaining the vector sum, of forces on the point mass A due to each of the, point mass which make up the extended object., We can consider the following two special, cases, for which we can get a simple result., We will state the result here and show how it, can be understood qualitatively., (1) The gravitational force of attraction, due to a hollow, thin spherical shell of uniform, density, on a point mass situated inside it is, zero., This can be qualitatively understood as, follows. First let us consider the case when the, point mass A, is at the centre of the hollow thin, shell. In this case as every point on the shell, is equidistant from A, all points exert force of Solution : CD = AD = AB2 � BD 2 � 2 l, equal magnitude on A but the directions of these Gravitational force on D = Vector sum of, forces are different. Now consider the forces gravitational forces due to A, B and C., on A due to two diametrically opposite points, on the shell. The forces on A due to them will, be of equal magnitude but will be in opposite, directions and will cancel each other. Thus, forces due to all pairs of points diametrically, opposite to each other will cancel and there, will be no net force on A due to the shell. When, the point object is situated elsewhere inside, the shell, the situation is not so symmetric., Gravitational force varies directly with mass, and inversely with square of the distance. Some, , 83
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Gmm Gm2, = 2 . This will, Force���, due, � to A = ( AD) 2, 2l, be along DA, , Gmm Gm2, = 2 . This is, Force, ���� due to C = (CD) 2, 2l, along DC, Gmm Gm2, = 2 . This is, Force, ���� due to B = (BD) 2, l, along DB, We can resolve the forces along horizontal, and vertical directions., Let the unit vector along horizontal, ����, direction AC be i and along the vertical, ����, direction BD be j, Net horizontal force on D, , �, , �, , 2, Gm2, i ) � Gm cos 90�(i ), �, �, cos, 45, (, l2, 2l 2, Gm2, � 2 cos 45�(i ), 2l, , -Gm2, , Gm2, , �, �0, 2 2l 2 2 2l 2, Net vertical force on D, �, , 2, Gm2, j ) � Gm (� j ), �, �, cos, 45, (, l2, 2l 2, Gm2, � 2 cos 45�(� j ), 2l, , -Gm2 � 1, �, � 1� ( j ), �, 2, l � 2 �, Gm2 � 1, �, � 2 �, � 1� (� j ), l � 2 �, �, , (- j ) shows that the net force is directed, along DB, 5.4 Measurement of the Gravitational, Constant (G):, The magnitude of the gravitational, constant G can be found by measuring the force, of gravitational attraction between two bodies, of masses m1 and m2 separated by certain, distance ‘L’.This can be measured by using the, Cavendish balance., The Cavendish balance consists of a light, rigid rod. It is supported at the centre by a fine, , vertical metallic fibre about 100 cm long. Two, small spheres s1 and s2 of lead having equal, mass m and diameter about 5 cm are mounted, at the ends of the rod and a small mirror M is, fastened to the metallic fibre as shown in Fig., 5.5. The mirror can be used to reflect a beam of, light onto a scale and thereby measure the angel, through which the wire will be twisted., Two large lead spheres L1 and L2 of equal, mass M and diameter of about 20 cm are, brought close to the small spheres on opposite, side as shown in Fig. 5.5. The big spheres attract, the nearby ��, small spheres by equal and opposite, force. Let F be the force of attraction between, a big sphere and small sphere near to it. Hence, a torque will be generated without exerting any, net force on the bar. Due to this torque the bar, turns and the suspension wire gets twisted till, the restoring torque due to the elastic property, of the wire becomes equal to the gravitational, torque., The gravitational force between the, spherical balls is the same as if their masses are, concentrated at their centres. If r is the initial, distance of separation between the centres of, the big and the neighbouring small sphere, then, the magnitude of the force between them is, mM, F =G 2, r, If length of the rod is L, then the magnitude, of the torque arising out of these forces is, mM, τ = FL =G 2 L, --- (5.16), r, , At equilibrium, it is equal and opposite to, the restoring torque., mM, �G 2 L = K� , --- (5.17), r, where K is the restoring torque per unit angle, and θ is the angle of twist., By applying a known torque τ1 and, measuring the corresponding angle of twist, α, the restoring torque per unit twist can be, determined as K = τ1/α ., Thus, in actual experiment measuring θ, and knowing values of τ, m, M and r, the value, of G can be calculated from Eq. (5.17). The, , 84
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gravitational constant measured in this way is gravity of the Earth and denoted by g., found to be, If the object is close to the surface of the, G = 6.67×10-11N m2/kg2, Earth, r ≅ R, the radius of the Earth then, GM, g Earth’s surface = 2 , --- (5.19), R, Example 5.4: Calculate mass of the Earth from, given data,, Acceleration due to gravity g = 9.81m/s2, Radius of the Earth RE = 6.37×106 m, G = 6.67×10-11 N m2/kg2, Solution:, GM, g = 2E, RE, Fig 5.5 : The Cavendish balance., gR 2, � ME = E, 5.5 Acceleration due to Gravity:, G, We have seen in section 5.3 that the, 9.81� (6.37 � 106 ) 2, M, �, �, E, magnitude of the gravitational force on a point, 6.67 � 10�11, object of mass m due to another point object of, � M E � 5.97 � 1024 kg, mass M at a distance r from it is given by the , equation., The value of g depends only on the, properties of the Earth and does not depend, mM, F =G 2, on the mass of the object. This is exactly what, r, This formula can be used to calculate Galileo had found from his experiments of, the gravitational force on an object due to the dropping objects with different masses from the, Earth. We know that the Earth is an extended same height., object. In many practical applications Earth, Do you know ?, can be assumed to be a uniform sphere. As seen, in section 5.3 its entire mass can be assumed to, An object of mass m (much smaller, be concentrated at is centre. Thus if the mass, than the mass of the Earth) is attracted, of the Earth is M and that of the point object, towards the Earth and falls on it. The, is m and the distance of the point object from, Earth is also attracted by the same force, the centre of the Earth is r then the force of, (magnitude) toward the mass m. However,, attraction between them is given by, its acceleration towards m will be, � Mm �, Mm, � G r 2 � Gm, F =G 2, �=, r, a earth = �, M, r2, If the point object is not acted upon by, a, m, GM �, �, � earth =, any other force, it will be accelerated towards, � as g � r 2 �, g, M, �, �, the centre of the Earth under the action of this, As m << M, aEarth<< g and is nearly, force. Its acceleration can be calculated by, zero., Thus, practically only the mass m, using Newton’s second law F = ma., moves towards the Earth., Acceleration due to the gravity of the Earth =, Mm 1, Example 5.5: Calculate the acceleration due, G 2 ×, to gravity on the surface of moon if mass of, r, m, , the moon is 1/80 times that of the Earth and, GM, = 2, --(5.18) diameter of the moon is 1/4 times that of the, r, This is known as the acceleration due to Earth (g =9.8 m/s2), , 85
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Solution:, Mm = Mass of the moon = M/80,, where M is mass of the Earth., Rm = Radius of the moon = R/4,, where R is Radius of the Earth., Acceleration due to gravity on the surface, of the Earth, g = GM/R2 , --- (1), Acceleration due to gravity on the surface, 2, of the moon, gm=GMm/ Rm, --- (2), ... From equation (1) and (2), gm Mm � R �, =, ×� �, g, M � Rm �, , 5.6 Variation in the Acceleration due to, Gravity with Altitude, Depth, Latitude, and Shape:, (A) Variation in g with Altitude:, Consider a body of mass m on the surface, of the Earth. The acceleration due to gravity on, the Earth’s surface is given by,, GM, g= 2, R, , , 2, , 2, , gm 1 � 4 �, � �, g 80 �� 1 ��, g, 1, � m �, g 5, g 9.8, � gm � �, 5, 5, � g m � 1.96 m / s 2, , Fig. 5.6 Acceleration due to gravity at, height h above the Earth’s surface., When the body is at height h above the, surface of the Earth as shown in Fig. 5.6,, acceleration due to gravity changes to, GM, gh =, (R +h)2, , Example 5.6: Find the acceleration due to, gravity on a planet that is 10 times as massive, as the Earth and with radius 20 times of the, radius of the Earth (g = 9.8 m/s2)., Solution : Let mass of the planet be Mp, radius, of the Earth and that of the planet be RE and RP, respectively. Let mass of the Earth be ME and gp, be acceleration due to gravity on the planet., M p = 10 M E, Rp = 20 RE , g = 9.8 m / s 2, gp = ?, g=, , GM E, GM, , gP = 2 P, 2, RE, RP, , ∴ gP =, =, , G (10 M E ), (20 RE ) 2, 10GM E, 400 RE2, , ∴, , gh, g, , ∴, , gh, g, , GM, (R +h)2, =, GM, R2, R2, =, (R +h)2, , ∴ gh =, , g R2, , (R +h)2, , --- (5.20), , This equation shows that, the acceleration, due to gravity goes on decreasing with increase, in altitude of body from the surface of the Earth., We can rewrite Eq. (5.20) as, g R2, gh =, 2, h�, 2�, R �1 + �, R�, �, , h�, �, � gh = g � 1 + �, R�, �, , 1, g, 40, = 0.245 m / s 2, , -2, , h, For small altitude h, i.e., for, << 1,, R, � 2h �, � g h g � 1- � , --- (5.21), � R�, , =, , 86
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(by, , neglecting, , higher, , power, , terms, , of, , The acceleration due to gravity according, to eq. (5.19) is, GM, g= 2, This expression can be used to calculate, R, the value of g at height h above the surface of, Assuming that the density of the Earth is, the Earth as long as h << R., uniform, it is given by, Example 5.7 : At what distance above the, Mass (M), ��, surface of Earth the acceleration due to gravity, Volume(V), decreases by 10% of its value at the surface?, 4, (Radius of Earth = 6400 km). Assume the, � M = � R3 �, 3, distance above the surface to be small compared, h, h, as << 1 ), R, R, , to the radius of the Earth., Solution : gh = 90% of g (g decreases by 10%, hence it becomes 90%), g h 90, or, =, = 0.9, g 100, From Eq. (5.21), � 2h �, g h = g �1 - �, � R�, g, 2h, � h =1 g, R, 2h, � 0.9 =1 R, R, h=, 20, h = 320 km, (B) Variation in g with Depth:, The Earth can be imagined to be a sphere, made of large number of concentric uniform, spherical shells. The total mass of the Earth, is the combined mass of all the shells. When, an object is on the surface of the Earth it, experiences the gravitational force as if the, entire mass of the Earth is concentrated at its, centre., , Fig. 5.7 Acceleration due to gravity at depth, d below the surface of the Earth., , 4, G � � R3�, 3, �g �, R2, 4, , --- (5.22), � g � � R� G, 3, Consider a body at a point P at the depth, d below the surface of the Earth as shown in, Fig. 5.7. Here the force on a body at P due to, the material outside the inner sphere shown by, shaded region, can be shown to cancel out due, to symmetry. The net force on P is only due to, the material inside the inner sphere of radius OP, = R - d. Acceleration due to gravity because of, this sphere is, GM ′, gd =, (R - d)2, where M ' = volume of the inner sphere×density, 4, � M � � � ( R - d )3 � �, 3, 4, G � � ( R - d )3 �, 3, � gd �, ( R - d )2, 4, � gd � G � � ( R - d ) �, --- (5.23), 3, , Dividing Eq. (5.23) by Eq. (5.22) we get,, g, R-d, � d =, g, R, g, d, � d =1 g, R, � d�, � g d = g �1 - �, --- (5.24), � R � , This equation gives acceleration due to, gravity at depth d below the Earth's surface., , 87
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It shows that the acceleration due to gravity, decreases with depth., Special case :, At the centre of the Earth, where d = R, Eq., (5.24) gives gd = 0, Hence, a body of mass m if taken to the, centre of Earth, will not experience the force, of gravity due to the Earth. This can also be, understood to be due to symmetry. The case, is similar to the force of gravity on an object, placed at the centre of a spherical shell as seen, in section 5.3., Thus, the value of acceleration due to, gravity is maximum at the surface of the Earth., The value goes on decreasing with, 1) increase in depth below the Earth’s, surface. (varies linearly with (R-d) = r), 2) increase in height above the Earth’s, surface. (varies inversely with (R+h)2 = r 2), Graphically the variation of acceleration, due to gravity according to depth and height, can be expressed as follows. We have plotted, the value of g as a function of r, the distance, from the centre of the Earth, in Fig. 5.8. For r, < R i. e. below the surface of the Earth, we use, � d�, Eq. (5.24), according to which gd = g �1� �, � R�, Writing R - d = r, the distance from the, centre of the Earth, we get the value of g as a, r, function of r, g(r) = g which is the equation, R, of a straight line with slope g/R and passing, through the origin., , (C) Variation in g with Latitude and Rotation, of the Earth:, Latitude is an angle made by radius vector, of any point from centre of the Earth with the, equatorial plane. Obviously it ranges from 00 at, the equator to 900 at the poles., , Fig. 5.9 Variation of g with latitude., The Earth rotates about its polar axis from, west to east with uniform angular velocity ω., Hence every point on the surface of the Earth, (except the poles) moves in a circle parallel to, the equator. The motion of a mass m at point P, on the Earth is shown by the dotted circle with, centre at O′ in Fig. 5.9. Let the latitude of P be, θ and radius of the circle be r., PO′ = r, ∠ EOP = θ, E being a point on the, equator, ∴ ∠ OPO′ = θ, In ∆ OPO′, cosθ =, , PO� r, �, PO R, , ∴ r = Rcos θ, The centripetal acceleration for the mass, m, directed along PO′ is, a = rω2, a = Rω2cosθ, The component of this centripetal, acceleration along PO, i.e., towards the centre, of the Earth is, ar = a cosθ, ∴ ar = Rω2cosθ.cosθ, ar = Rω2cos2θ, Part of the gravitational force of attraction, on P acting towards PO is utilized in providing, Fig 5.8 - Variation of g due to depth and, this components of centripetal acceleration., altitude from the Earth’s surface., Thus the effective force of gravitational, For r > R we have to use Eq. (5.20). Writing attraction on m at P can be written as, R + h = r we have, mg ′ = mg - mRω2cos2θ, g ′ being the effective acceleration due to, g R2, g(r) = 2 which is plotted in Fig. 5.8, gravity at P i.e., at latitude θ. This is thus given, r, , 88
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by g ′ = g - Rω2cos2θ , --- (5.25), As the value of θ increases, cosθ decreases., Therefore g′ will increase as we move away, from equator towards any pole due to the, rotation of the Earth., special case I At equator θ = 0, , cos θ = 1, , g′ = g - Rω2, The effective acceleration due to gravity, is minimum at equator, as here it is reduced by, maximum amount. The reduction here is g - g′, = Rω2, R = 6.4 ×106 m ---Radius of the Earth and, ω = Angular velocity of rotation of the, Earth, 2�, ��, T, 2�, �� �, 24 � 60 � 60, �� � 7.275 � 10�5 s -1, � g - g � = R� 2, � g - g � = 0.03386 m / s 2, , Case II At poles θ = 900, , cosθ = 0, , ... g′ = g - Rω2 cos θ, , =g-0, , =g, There is no reduction in acceleration due to, gravity at poles, due to the rotation of the Earth, as the poles are lying on the axis of rotation and, do not revolve., Variation of g with latitudes at sea level is, given in the following table., Table 5.2: Variation of g with latitude, Latitude (°) g (m/s2), 0, 10, 20, 30, 40, 50, 60, 70, 80, 90, , 9.7804, 9.7819, 9.7864, 9.7933, 9.8017, 9.8107, 9.8192, 9.8261, 9.8306, 9.8322, , Effect of the shape of the Earth: Quite often, we assume the Earth to be a sphere. However,, it is actually on ellipsoid; bulged at equator., Hence equatorial radius of Earth (6378 km) is, greater than the polar radius (6356 km). Thus,, on the equator, there is combined effect of, greater radius and rotation in reducing the force, of gravity. As a result, the acceleration due to, gravity on the equator is gE = 9.7804 m/s2 and, on the poles it is g = 9.8322 m/s2., Weight of an object is the force with which, the Earth attracts that object. Thus, weight, w = mg where m is the mass of the object. As, the value of g changes with altitude, depth and, latitude, the weight also changes. Weight of an, object is minimum at the equator. Similarly,, the weight of an object reduces with increasing, height above the Earth’s surface and with, increasing depth below the its surface., 5.7 Gravitational Potential and Potential, Energy:, In earlier standards, you have studied, potential energy as the energy possessed by an, object on account of its position or configuration., The word configuration corresponds to the, distribution of the particles in the object., More specifically, potential energy is the work, done against conservative force (or forces) in, achieving a certain position or configuration, of a given system. It always depends upon the, relative positions of the particles in that system., There is a universal principle that states, Every, system always configures itself in order to, have minimum potential energy or every, system tries to minimize its potential energy., Obviously, in order to change the configuration,, you will have to do work., Examples:, (I) A spring in its natural state, possesses, minimum potential energy. Whenever we stretch, it or compress it, we perform work against the, conservative force (in this case, the elastic, restoring force). Due to this work, the relative, distances between the particles of the system, change (configuration changes) and its potential, energy increases. The spring finally regains its, original configuration of minimum potential, energy on removal of the applied force., , 89
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(II) When an object is lying on the Earth, the, system of that object and the Earth has minimum, potential energy. This is the gravitational, potential energy of the system as these two are, bound by the gravitational force. While lifting, the object to some height (new position), we, do work against the conservative gravitational, force in order to achieve the new position., In its new position, the object is at rest due, to balanced forces. If you are holding the object,, the force of static friction between the object and, your fingers balances the gravitational force., If kept on a surface, the normal reaction force, given by the surface balances the gravitational, force. However, now, the object has a capacity, to acquire kinetic energy, when given an, opportunity (when allowed to fall). We call this, increase in the capacity as the potential energy, gained by the system. As we raise it more and, more, this capacity, and hence potential energy, of the system, increases. It falls on the Earth to, achieve the configuration of minimum potential, energy on dropping it from the new position., Thus, in general, we can write work done, against a conservative force acting on an, object = Increase in the potential energy of, the system., �� �, � F .dx � dU, Here dU is the change in potential��energy, �, while displacing the object through dx , F being, the force acting on the object, It should be remembered that potential, energy is always of the system as a whole. For, an object on the Earth, it is of the system of the, object and the Earth and not only of that object., There is no meaning to potential energy of an, isolated object in the intergalactic (gravity free), space, in the absence of any conservative force, acting upon it., 5.7.1 Expression for Gravitational Potential, Energy:, �� Work done against gravitational force, F g , in displacing an object through a small, displacement dr , appears as increase in the, potential ��, energy of the system., �, � dU � � F g .dr, , work done by us (external, agent) against the, ��, gravitational force F g, For displacement of the object from an, , , initial position ri to the final position rf , the, change in potential energy ∆U, can be obtained, by integrating dU., rf, rf, �� �, � �U � � � dU � � � � F g .dr, ri, , ri, , �, , �, , ��, GMm, Gravitational force of the Earth, F g � � r 2 rˆ, where r is the unit vector in the direction of, , r . Negative sign appears here because ��r is, from centre of the Earth to the object and F g is, directed towards centre of the Earth., ∴ For ‘Earth and mass’ system,, rf, , rf, , � GMm � , ��U � �dU � � � � � 2 rˆ � . dr, r, �, �, ri, ri, rf, , , � dr �, � GMm � � 2 � as dr is along rˆ, r �, ri �, r, , f, � 1�, � GMm � � �, � r � ri, , �1 1 �, � GMm � � �, - - - (5.26), �r r �, i, f, �, �, Change in potential energy corresponds, to the work done against conservative forces., The absolute value of potential energy is not, defined. It is logical as well as convenient to, choose the point of zero potential energy to be, the point of zero force. For gravitational force,, such point is taken at r � � . This point should, be chosen as the initial point so that initially the, potential energy is zero. ∴U (ri) = 0 at ri = ∞, Final point rf is obviously the point where we, need to determine the potential energy of the, system. � rf � r, �1 1 �, �U (r) grav . � GMm � � �, �r r �, f �, � i, � 1 1�, � GMm � � �, �� r�, GMm, ��, r, Negative sign appears because dU is the, --- (5.27), , 90
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This is gravitational potential energy of the, system of object of mass m and Earth of mass, M having separation r (between their centres of, mass)., Example 5.8: What will be the change in, potential energy of a body of mass m when it is, raised from height RE above the Earth’s surface, to 5/2 RE above the Earth’s surface? RE and ME, are the radius and mass of the Earth respectively., Solution:, �1 1 �, ��U � GmM E � � �, �r r �, f �, � i, � 1, 1 �, � GmM E �, �, �, � 2 RE 3.5 RE �, 2.14 GmM E, GmM E, 1.5, �, �, �, 2 � 3.5, RE, RE, 5.7.2 Connection of potential energy formula, with mgh:, If the object is on the surface of Earth, r = R, GMm, �U1 � �, R, If the object is lifted to height h above the, surface of Earth, the potential energy becomes, GMm, U2 � �, R�h, Increase in the potential energy is given by, �U � U 2 � U1, �, 1, � 1 ��, � GMm � �, � �� � �, � R� h � R��, �, �, h, � GMm �, � R � R � h � ��, �, �, GMmh, �, R � R � h�, , Thus, mgh is increase in the gravitational, potential energy of the Earth -mass system if an, object of mass m is lifted to a height h, provided, h is negligible compared to radius of the Earth, (up to a few kilometers)., 5.7.3 Concept of Potential:, From eq. (5.27), the gravitational potential, energy of the system of Earth and any mass, m at a distance r from the centre of the Earth is, given by, GMm, U ��, r, � GM �, � ��, m, r ��, �, � ���VE �r �� m, --- (5.30), , GM, The factor �, � �VE �r depends only upon, r, mass of Earth and the location. Thus, it is, the same for any mass m bound to the Earth., Conveniently, this is defined as the gravitational, potential of Earth at distance r from its centre., In terms of potential, we can write the potential, energy of the Earth-mass system as, Gravitational potential energy, U = Gravitational, potential Vr × mass m or Gravitational potential, is Gravitational potential energy per unit mass,, U, i.e., Vr = . The concept of potential can be, m, defined on similar lines for any conservative, force field., Gravitational potential difference between, any two points in gravitational field can be, written as, , If g is acceleration due to the Earth on the, surface of Earth, GM = gR 2, � R �, � �U � mgh �, --- (5.28), � , � R�h�, Eq. (5.28) gives the work to be done (or energy, to be supplied) to raise an object of mass m to a, height h, above the surface of the Earth., If h R , we�can�use�R � h � R. Only in this, case �U � mgh , --- (5.29), , � U � U1 � dW, V2 � V1 � � 2, , --- (5.31), ��, � m � m, = Work done (or change in potential energy) per, unit mass, In general, for a system of any two masses m1, and m2, separated by r, we can write, Gravitational potential energy,, Gm1m2, U, � � ��, � �V1 � m2 � �V2 � m1, ---(5.32), r, Here V1 and V2 are gravitational potentials at r, due to m1 and m2 respectively., , 91
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5.7.4 Escape Velocity:, When any object is thrown vertically up, it, falls back to the Earth after reaching a certain, height. Higher the speed with which the object is, thrown up, greater will be the height. If we keep, on increasing the velocity, a stage will come, when the object will reach heights so large that, it will escape the gravitational field of the Earth, and will not fall back on the Earth. This initial, velocity is called the escape velocity., Thus, the minimum velocity with which a, body should be thrown vertically upwards from, the surface of the Earth so that it escapes the, Earth’s gravitational field, is called the escape, velocity (ve) of the body. Obviously, as the, gravitational force due to Earth becomes zero, only at infinite distance, the object has to reach, infinite distance in order to escape., Let us consider the kinetic and potential, energies of an object thrown vertically upwards, with escape velocity ve, when it is at the surface, of the Earth and when it reaches infinite distance., On the surface of the Earth,, 1 2, K.E. = mv e, 2, P.E. = -, , GMm, R, , Total energy = P.E. + K.E., 1 2 GMm, --- (5.33), = mv e 2, R, The kinetic energy of the object will go, on decreasing with time as it is pulled back by, Earth’s gravitational force. It will become zero, when it reaches infinity. Thus at infinite distance, from the Earth, K.E. = 0, GMm, Also, P.E. = �, =0, �, ∴ Total energy = P.E. + K.E. = 0, As energy is conserved, 1 2 GMm, mv e =0, 2, R, 2GM, , --- (5.34), R, Using the numerical values of G, M and R., the escape velocity is 11.2 km/s., , or, ve =, , 5.8 Earth Satellites:, The objects which revolve around the, Earth are called Earth satellites. moon is the, only natural satellite of the Earth. It revolves, in almost a circular orbit around the Earth, with period of revolution of nearly 27.3 days., Artificial satellites have been launched by, several countries including India. These, satellites have different periods of revolution, according to their practical use like navigation,, surveillance, communication, looking into, space and monitoring the weather., Communication Satellites: These are, geostationary satellites. They revolve around the, Earth in equatorial plane. They have same sense, of rotation as that of the Earth and the same period, of rotation as that of the Earth, i. e., one day, or 24 hours. Due to this, they appear stationary, from the Earth’s surface. Hence they are called, geostationary satellites or geosynchronous, satellites. These are used for communication,, television transmission, telephones and, radiowave signal transmission, e.g., INSAT, group of satellites launched by India., Polar Satellites: These satellites are placed, in lower polar orbits. They are at low altitude, 500 km to 800 km. Polar satellites are used, for weather forecasting and meteorological, purpose. They are also used for astronomical, observations and study of Solar radiations., Period of revolution of polar satellite is, nearly 85 minutes, so it can orbit the Earth16, time per day. They go around the poles of the, Earth in a north-south direction while the Earth, rotates in an east-west direction about its own, axis. The polar satellites have cameras fixed, on them. The camera can view small stripes of, the Earth in one orbit. In entire day the whole, Earth can be viewed strip by strip. Polar and, equatorial regions at close distances can be, viewed by these satellites., 5.8.1 Projection of Satellite:, For the projection of an artificial satellite,, it is necessary for the satellite to have a certain, velocity and a minimum two stage rocket. A, single stage rocket can not achieve this. When, the fuel in first stage of rocket is ignited on, the surface of the Earth, it raises the satellite, , 92
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vertically. The velocity of projection of satellite, normal to the surface of the Earth is the vertical, velocity. If this vertical velocity is less that the, escape velocity (ve), the satellite returns to the, Earth’s surface. While, if the vertical velocity is, greater than or equal to the escape velocity, the, satellite will escape from Earth’s gravitational, influence and go to infinity. Hence launching, of a satellite in an orbit round the Earth can, not take place by use of single stage rocket. It, requires minimum two stage rocket., With the help of first stage of rocket,, satellite can be taken to a desired height above, the surface of the Earth. Then the launcher is, rotated in horizontal direction i.e. through 900, using remote control and the first stage of the, rocket is detached. Then with the help of second, stage of rocket, a specific horizontal velocity, (vh) is given to satellite so that it can revolve, in a circular path round the Earth. The exact, horizontal velocity of projection that must be, given to a satellite at a certain height so that it, can revolve in a circular orbit round the Earth is, called the critical velocity or orbital velocity, (vc), A satellite follows different paths depending, upon the horizontal velocity provided to it. Four, different possible cases are shown in Fig. 5.10., Case (I) vh<vc:, If tangential velocity of projection vh is less, than the critical velocity, the orbit of satellite is, an ellipse with point of projection as apogee, (farthest from the Earth) and Earth at one of the, foci., , During this elliptical path, if the satellite, passes through the Earth’s atmosphere, it, experiences a nonconservative force of air, resistance. As a result it loses energy and spirals, down to the Earth., Case (II) vh=vc, If the horizontal velocity is exactly equal, to the critical velocity, the satellite moves in a, stable circular orbit round the Earth., Case (III) vc<vh<ve, If horizontal velocity is greater than, the critical velocity and less than the escape, velocity at that height, the satellite again moves, in an elliptical orbit round the Earth with the, point of projection as perigee (point closest to, the Earth)., Case (IV) vh = ve, If horizontal speed of projection is equal, to the escape speed at that height, the satellite, travels along parabolic path and never returns, to the point of projection. Its speed will be zero, at infinity., Case (V) vh > ve, If horizontal velocity is greater than the, escape velocity, the satellite escapes from, gravitational influence of Earth transversing a, hyperbolic path., Expression for critical speed, Consider a satellite of mass m revolving, round the Earth at height h above its surface., Let M be the mass of the Earth and R be, its radius. If the satellite is moving in a circular, orbit of radius (R+h) = r, its speed must be the, magnitude of critical velocity vc., The centripetal force necessary for circular, motion of satellite is provided by gravitational, force exerted by the Earth on the satellite., ∴ Centripetal force = Gravitational force, mv c 2 GMm, = 2, r, r, GM, � vc2 =, r, GM, � vc =, r, � vc =, , Fig. 5.10: Various possible orbits depending, on the value of vh., , 93, , GM, � g h ( R +h), (R +h), , --- (5.35)
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This is the expression for critical speed in, the orbit of radius (R + h), It is clear that the critical speed of a, satellite is independent of the mass of the, satellite. It depends upon the mass of the Earth, and the height at which the satellite is revolving, or gravitational acceleration at that altitude., The critical speed of a satellite decreases with, increase in height of satellite., Special case, When the satellite is revolving close to the, surface of the Earth, the height is very small as, compared to the radius of the Earth. Hence the, height can be neglected and radius of the orbit is, nearly equal to R (i.e R>>h, R+h ≈ R), GM, ... Critical speed v c =, R, As G is related to acceleration due to, gravity by the relation,, GM, g= 2, R, ∴ GM = gR 2, ... Critical speed in terms of acceleration, , � vc = 2R, , G��, 3, , , When a satellite revolves very close to, the surface of the Earth, motion of satellite, gets affected by the friction produced due to, resistance of air. In deriving the above expression, the resistance of air is not considered., 5.8.2 Weightlessness in a Satellite:, According to Newton’s second law of, motion, F = ma , where F is the net force acting, on an object having acceleration a., Let us consider the example of a lift or, elevator from an inertial frame of reference., Whether the lift is at rest or in motion, a, passenger in it experiences only two forces:, (i) Gravitational force mg directed vertically, downwards (towards centre of the earth) and, (ii) normal reaction force N directed vertically, upwards, exerted by the floor of the lift. As these, forces are oppositely directed, the net force in, the downward direction will be F = ma - N ., , Though the weight of a body (passenger, in, this, case), is the gravitational force acting upon, gR 2, it, we experience or feel our weight only due, vc =, = gR, R, to the normal reaction force N exerted by the, = 7.92 km/s, floor. This, in turn, is equal and opposite to the, Obviously, this is the maximum possible critical relative force between the body and the lift. If, speed. This is at least 25 times the speed of the you are standing on a weighing machine in a, fastest passenger aeroplanes., lift, the force recorded by the weighing machine, Example 5.9: Show that the critical velocity of is nothing but the normal reaction N., a body revolving in a circular orbit very close, Case I: Lift having zero acceleration, to the surface of a planet of radius R and mean, This happens when the lift is at rest or is, G��, 2, R, ., density ρ is, moving upwards or downwards with constant, 3, Solution : Since the body is revolving very velocity:, close to the planet, h = 0, The net force F = 0 = mg - N ∴ mg =N, M, M, Hence in this case we feel our normal, =, density � �, 4, V, 3, weight, mg ., �R, 3, Case II: Lift having net upward acceleration au, 4, 3, �M = �R �, This happens when the lift just starts, 3, , moving upwards or is about to stop at a lower, Critical Velocity, floor during its downward motion (remember,, 4, 3, while stopping during downward motion, the, G �R �, GM, 3, acceleration must be upwards)., vc =, =, R, R, , due to gravity can be obtained as, , 94
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not falling on the earth? The reason is that the, revolving satellite is having a tangential velocity, ∴ F = mau = N - mg ∴ N = mg + mau, i.e., which manages to keep it moving in a circular, orbit at that height., N > mg, hence, we feel heavier., 5.8.3 Time Period of a Satellite:, It should also be remembered that this is, The time taken by a satellite to complete, not an apparent feeling. The weighing machine, one, revolution, round the Earth is its time period., really records a reading greater than mg., Consider a satellite of mass m projected to, Case III (a): Lift having net downward, height h and provided horizontal velocity equal, acceleration ad, to the critical velocity. The satellite revolves in, This happens when the lift just starts a circular orbit of radius (R+h) = r., moving downwards or is about to stop at a higher, The distance traced by satellite in one, floor during its upward motion (remember,, while stopping during upward motion, the revolution is equal to the circumference of the, circular orbit within periodic time T., acceleration must be downwards)., Circumference of the orbit, As the net acceleration is downwards, the � Critical speed =, Time period, downward force must be greater., 2� r, vc =, ∴ F = mad = mg -N ∴ N = mg - mad , i.e.,, T, N < mg, hence, we feel lighter., Gm, It should be remembered that this is not an but we have, v c =, r, apparent feeling. The weighing machine really, Gm 2� r, records a reading less than mg., �, �, r, T, Case III (b): State of free fall: This will be, GM 4� 2 r 2, possible if the cables of the lift are cut. In this or,, �, r, T2, case, the downward acceleration ad = g., 4� 2 r 3, If the downward acceleration becomes, � T2 �, GM, equal to the gravitational acceleration g, we get,, N = mg - mad = 0., As π2, G and M are constant, T 2 ∝ r3, i.e.,, Thus, there will not be any feeling of the square of period of revolution of satellite is, weight. This is the state of total weightlessness directly proportional to the cube of the radius, and the weighing machine will record zero., of orbit., As the net acceleration is upwards, the, upward force must be greater., , In the case of a revolving satellite, the, satellite is performing a circular motion. The, acceleration for this motion is centripetal, which, is provided by the gravitational acceleration, g at the location of the satellite. In this case,, ad = g, or the satellite (along with the astronaut), is in the state of free fall. Obviously, the apparent, weight will be zero, giving the feeling of total, weightlessness. Perhaps you might have seen, in some videos that the astronauts are floating, inside the satellite. It is really difficult for them, to change their position., , T = 2�, � T � 2�, , r3, GM, (R + h)3, GM, , --- (5.36), , , This is an expression for period of satellite, revolving in a circular orbit round the Earth., Period of a satellite does not depend on its, mass. It depends on mass of the Earth, radius, of the Earth and the height of the satellite. If, the height of projection is increased, period of, the satellite increases. Period of the satellite can, In spite of free fall, why is the satellite also be obtained in terms of acceleration due to, , 95
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gravity., As GM = gh (R+h)2, �T = 2�, , (R +h)3, g h (R +h)2, , �T = 2�, , R +h, gh, , �T = 2�, , r, gh, , mass ( M ), volume (V ), �M = �V, , density ( � ) =, , --- (2), , As planet is spherical in shape, volume of, planet is given as, 4, V = � R3, 3, 4, � M = � R3 �, 3, , --- (5.37), , , Special case :, When satellite revolves close to the surface, of the Earth, R + h ≈ R and gh ≈ g. Hence the, minimum period of revolution is, R, (T)min = 2π, --- (5.38), g , , --- (3), , , Substituting the values form eq. (2) and (3), in Eq. (1), we get, , T = 2�, , �T =, , R3, 4, G � � R3 �, 3, 3�, G�, , Example 5.9: Calculate the period of revolution, of a polar satellite orbiting close to the surface 5.8.4 Binding Energy of an orbiting satellite:, The minimum energy required by a satellite, of the Earth. Given R = 6400 km, g = 9.8 m/s2., to escape from Earth’s gravitational influence is, Solution : h is negligible as satellite is close to the binding energy of the satellite., the Earth surface., Expression for Binding Energy of satellite, .. . R + h ≈ R, revolving in circular orbit round the Earth, Consider a satellite of mass m revolving, gh ≈ g, at height h above the surface of the Earth in a, R = 6400 km = 6.4×106 m., circular orbit. It possesses potential energy as, well as kinetic energy. Let M be the mass of the, R, T = 2�, Earth, R be the Radius of the Earth, vc be critical, g, velocity of satellite, r = (R+h) be the radius of, 6.4 � 106, the orbit., = 2 � 3.14, ∴Kinetic energy of satellite, 9.8, 3, 1, = 5.075 � 10 second, = mv c 2, 2, = 85 minute (approximately), 1 GMm, =, Example 5.10: An artificial satellite revolves, 2 r , --- (5.39), around a planet in circular orbit close to its, The gravitational potential at a distance r, surface. Obtain the formula for period of the, satellite in terms of density ρ and radius R of from the centre of the Earth is - GM, r, planet., .. Potential energy of satellite = Gravitational, ., Solution : Period of satellite is given by,, potential × mass of satellite, (R +h)3, GMm, --- (1), T = 2π, =--- (5.40), GM , r , Here, the satellite revolves close to the, The total energy of satellite is given as, surface of planet, hence h is negligible, hence, T.E. = K.E. + P.E., R+h R, , 96
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1 GMm GMm, 2 r, r, 1 GMm, =2 r, , , =, , --- (5.41), , Total energy of a circularly orbiting, satellite is negative. Negative sign indicates, that the satellite is bound to the Earth, due, to gravitational force of attraction. For the, satellite to be free from the Earth’s gravitational, s, , ise, erc, , Ex, , influence its total energy should become nonnegative (zero or positive). Hence the minimum, energy to be supplied to unbind the satellite, 1 GMm, is +, This is the binding energy of a, 2 r, satellite., Internet my friend, hyperphysics.phy-astr.gsu.edu/hbase/grav., html#grav, , Exercises, , 1. Choose the correct option., i) The value of acceleration due to gravity is, maximum at, (A) the equator of the Earth ., (B) the centre of the Earth., (C) the pole of the Earth., (D) slightly above the surface of the, Earth., ii) The weight of a particle at the centre of the, Earth is, (A) infinite., (B) zero., (C) same as that at other places., (D) greater than at the poles., iii) The gravitational potential due to the Earth, is minimum at, (A) the centre of the Earth., (B) the surface of the Earth., (C) a points inside the Earth but not at, , its centre., (D) infinite distance., iv) The binding energy of a satellite revolving, around planet in a circular orbit is 3×109 J., Its kinetic energy is, (A) 6×109J, (B) -3 ×109J, (C) -6 ×10+9J, (D) 3 ×10+9J, , 2. Answer the following questions. , i), State Kepler’s law equal of area., ii) State Kepler’s law of period., iii) What are the dimensions of the universal, gravitational constant?, iv) Define binding energy of a satellite., v), What do you mean by geostationary, satellite?, vi) State Newton’s law of gravitation., vii) Define escape velocity of a satellite., viii) What is the variation in acceleration due, to gravity with altitude?, ix) On which factors does the escape speed, of a body from the surface of Earth, depend?, x), As we go from one planet to another, planet, how will the mass and weight of, a body change?, xi) What is periodic time of a geostationary, satellite?, xii) State Newton’s law of gravitation and, express it in vector form., xiii) What do you mean by gravitational, constant? State its SI units., xiv) Why is a minimum two stage rocket, necessary for launching of a satellite?, xv) State the conditions for various possible, orbits of a satellite depending upon the, tangential speed of projection., , 97
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2. Answer the following questions in, detail., i), Derive an expression for critical velocity, of a satellite., ii) State any four applications of a, communication satellite., iii) Show that acceleration due to gravity, at height h above the Earth’s surface is, 2, � R �, gh � g �, �, � R�h�, iv) Draw a labelled diagram to show different, trajectories of a satellite depending upon, the tangential projection speed., v), Derive an expression for binding energy, of a body at rest on the Earth’s surface., vi) Why do astronauts in an orbiting satellite, have a feeling of weightlessness?, vii) Draw a graph showing the variation, of gravitational acceleration due to, the depth and altitude from the Earth’s, surface., viii) At which place on the Earth’s surface, is the gravitational acceleration, maximum? Why?, ix) At which place on the Earth surface the, gravitational acceleration minimum?, Why?, x), Define the binding energy of a satellite., Obtain an expression for binding energy, of a satellite revolving around the Earth, at certain attitude., xi) Obtain the formula for acceleration due, to gravity at the depth ‘d’ below the, Earth’s surface., xii) State Kepler’s three laws of planetary, motion., xiii) State the formula for acceleration due, , xiv) What is critical velocity? Obtain an, expression for critical velocity of an, orbiting satellite. On what factors does it, depend?, xv) , Define escape speed. Derive an, expression for the escape speed of an, object from the surface of the each., xvi) Describe how an artificial satellite using, two stage rocket is launched in an orbit, around the Earth., 4. Solve the following problems., i), At what distance below the surface of, the Earth, the acceleration due to gravity, decreases by 10% of its value at the, surface, given radius of Earth is 6400, km., , [Ans: 640 km]., ii) If the Earth were made of wood, the mass, of wooden Earth would have been 10%, as much as it is now (without change in, its diameter). Calculate escape speed, from the surface of this Earth. , , [Ans: 3.54 km/s], iii) Calculate the kinetic energy, potential, energy, total energy and binding energy, of an artificial satellite of mass 2000 kg, orbiting at a height of 3600 km above the, surface of the Earth., , Given:G = 6.67×10-11 Nm2/kg2, , R = 6400 km, , M = 6×1024 kg, , [Ans: KE = 40.02×109J,, , , PE = -80.09 ×109J,, , TE = 40.02 ×109J, , , BE = 40.02×109J], iv) Two satellites A and B are revolving, around a planet. Their periods of, revolution are 1 hour and 8 hours, to gravity at depth ‘d’ and altitude ‘h’, respectively. The radius of orbit of, Hence show that their ratio is equal to, satellite B is 4×104 km. find radius of, � R�d �, orbit of satellite A . , � R � 2h � by assuming that the altitude, �, �, , [Ans: 1×104 km], is very small as compared to the radius, of the Earth., , 98
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v), , , , , vi), , Find the gravitational force between the x), Sun and the Earth., Given Mass of the Sun = 1.99×1030 kg, Mass of the Earth = 5.98×1024 kg, The average distance between the Earth, and the Sun = 1.5×1011 m. , , [Ans: 3.5×1022 N], xi), Calculate the acceleration due to gravity, at a height of 300 km from the surface of, the Earth. (M = 5.98 ×1024 kg, R = 6400, km). , , , [Ans :- 8.889 m/s2], vii) Calculate the speed of a satellite in an, orbit at a height of 1000 km from the, Earth’s surface. ME= 5.98×1024 kg, R =, 6.4×106 m., , [Ans : 7.34 ×103 m/s], viii) Calculate the value of acceleration due, to gravity on the surface of Mars if the, radius of Mars = 3.4×103 km and its, mass is 6.4×1023 kg. , , [Ans : 3.69 m/s2], ix) A planet has mass 6.4 ×1024 kg and radius, 3.4×106 m. Calculate energy required to, remove on object of mass 800 kg from, the surface of the planet to infinity. , , [Ans : 5.02 ×1010J], , Calculate the value of the universal, gravitational constant from the given, data. Mass of the Earth = 6×1024 kg,, Radius of the Earth = 6400 km and the, acceleration due to gravity on the surface, = 9.8 m/s2 , [Ans : 6.69×10-11 N m2/kg2 ], A body weighs 5.6 kg wt on the surface, of the Earth. How much will be its, weight on a planet whose mass is 7 times, the mass of the Earth and radius twice, that of the Earth’s radius. , , [Ans: 9.8 kg-wt], xii). What is the gravitational potential due to, the Earth at a point which is at a height, of 2RE above the surface of the Earth,, Mass of the Earth is 6×1024 kg, radius of, the Earth = 6400 km and G = 6.67×10-11, Nm2 kg-2., , [Ans: 2.08×107 J], , 99, , ***
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6., , Mechanical Properties of Solids, Can you recall?, , 1. Can you name a few objects which change their shape and size on application of a force, and regain their original shape and size when the force is removed ?, 2. Can you name objects which do not regain their original shape and size when the external, force is removed?, the larger is its deformation. Deformation, 6.1 Introduction:, Solids are made up of atoms or a group could be in the form of change in length of a, of atoms placed in a definite geometric wire, change in volume of an object or change, arrangement. This arrangement is decided by in shape of a body., We know that when a deforming force, nature so that the resultant force acting on each, constituent due to others is zero. This is the (e.g. stretching) is applied to a rubber band, it, equilibrium state of a solid at room temperature. gets deformed (elongated) but when the force, The given equilibrium arrangement does not is removed, it regains its original length. When, change with time. It can change only when an a similar force is applied to a dough, or clay, external stimulus, like compressive force from it also gets deformed but it does not regain its, all sides, is applied to a solid. The constituents original shape and size after removal of the, vibrate about their equilibrium positions even deforming force. These observations indicate, at very low temperatures but cannot leave their that rubber and clay are different in nature., fixed positions. This fact provides the solids The property that decides this nature is called, a definite shape and size (allows the solids to elasticity/plasticity. We will learn more about, these properties of solids in this Chapter ., maintain a definite shape and size)., If an external force is applied to a solid the 6.2 Elastic Behavior of Solids:, If a body regains its original shape and, constituents are slightly displaced and restoring, forces are developed in it. These restoring size after removal of the deforming force, it, forces try to bring the constituents back to is called an elastic body and the property is, their equilibrium positions so that the solid can called elasticity. Here the restoring forces are, regain its shape. When the deforming forces are strong enough to bring the displaced molecules, removed, the interatomic forces tend to restore to their original positions. Examples of elastic, the original positions of the molecules and thus materials are metals, rubber, quartz, etc., If a body regains its original shape and, the body regains its original shape and size., However, as we will see later, this is possible size completely and instantaneously upon, removal of the deforming force, then it is said, only within certain limits., The form of a body is decided by its size to be perfectly elastic., If a body does not regain its original, and shape, e.g., a tennis ball and a football, both are spherical, i.e., they have the same shape and size and retains its altered shape, shape. But a tennis ball is smaller in size than or size upon removal of the deforming force,, a football. When a force is applied to a solid it is called a plastic body and the property is, (which is not free to move), the size or shape called plasticity. Here, the restoring forces are, or both change due to changes in the relative not strong enough to bring the molecules back, positions of molecules. Such a force is called to their original positions. Examples of plastic, materials are clay, putty, plasticine, thick mud,, deforming force., The change in shape or size or both etc. There is no solid which is perfectly elastic, of a body due to an external force is called or perfectly plastic. The best example of a near, ideal elastic solid is quartz fibre and that of a, deformation., The larger the deforming force on a body, plastic body is putty., , 100
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6.3 Stress and Strain:, The elastic properties of a body are, described in terms of stress and strain. When, a body gets deformed under an applied force,, restoring forces are set up internally. They, oppose change in shape or size of the body., When body is in equilibrium in its altered shape, or size, deforming force and restoring force are, equal and opposite., The internal restoring force per unit area of, a body is called stress., --- (6.1), , Fig. 6.1 (a): Tensile stress., , Fig. 6.1 (b): Compressive stress., B), Tensile strain:, is internal restoring force (external, where, The strain produced by a tensile deforming, applied deforming force). SI unit of stress is, -2, force, is called tensile strain or longitudinal, N m or pascal (Pa). The dimensions of a stress, strain or linear strain., are [ L-1 M1 T-2 ]., If L is the original length and ∆l is the, Strain is a measure of the deformation of a, change, in length due to the deforming force,, body. When two equal and opposite forces are, applied to an elastic body, there is a change in then, the dimensions of the body, Strain is defined, --- (6.5), as the ratio of change in dimensions of the, body to its original dimensions., 2 : When a deforming force acting on a body, produces change in its volume, the stress is, --- (6.2) called volume stress and the strain produced is, called volume strain., It is the ratio of two similar quantities. A) Volume stress or hydraulic stress:, ��, Hence strain is a dimensionless physical, Let F be a force acting perpendicular to, quantity. It has no units. There are three types the entire surface of the body. It acts normally, of stress and corresponding strains., and uniformly all over the surface area A of the, 1: Stress produced by a deforming force acting body. Such a stress which produces change in, along the length of a body or a rod is called size but no change in shape is called volume, tensile stress or a longitudinal stress. The stress., strain produced is called tensile strain., --- (6.6), A) Tensile stress or compressive, stress:, ��, , Suppose a force F is applied along the, Volume stress produces change in size, length of a wire, or perpendicular to its cross, without, change in shape of body, it is called, section A. This produces an elongation in, the wire and the length of the wire increases hydraulic or hydrostatic volume stress as shown, in Fig. 6.2., accordingly, as shown in Fig. 6.1 (a)., ��, B) Volume strain:, |F|, Tensile stress =, , --- (6.3), A deforming force acting perpendicular to, A, the entire surface of a body produces a volume, When a rod is pushed at two ends with equal, strain. Let V be the original volume and ∆V be, and opposite forces, its length decreases., the change in volume due to deforming force,, The restoring force per unit area is called, then, compressive stress as shown��in Fig. 6.1 (b)., --- (6.7), |F|, Compressive stress, --- (6.4), , A, ��, F, , 101
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--- (6.8), , tangential force. Tangential force is parallel to, the top and the bottom surface of the block., The restoring force per unit area developed, due to the applied tangential force is called, shearing stress or tangential stress., B) Shearing strain:, There is a relative displacement, ∆l, of the, bottom face and the top face of the cube. Such, relative displacement of two surfaces is called, shear strain. It can be calculated as follows,, ∆l, = tan θ = θ --- (6.9), Shearing strain, l, when the relative displacement ∆l is very small., 6.4 Hooke’s Law:, Robert Hooke (1635-1703), an English, physicist, studied the tension in a wire and, strain produced in it. His study led to a law now, known as Hooke’s law., Statement: Within elastic limit, stress is, directly proportional to strain., Stress, = constant, Strain, The constant is called the modulus, of elasticity. The modulus of elasticity, of a material is the ratio of stress to the, corresponding strain. It is defined as the, slope of the stress-strain curve in the elastic, deforming region and depends on the nature of, the material. The maximum value of stress up, to which stress is directly proportional to strain, is called the elastic limit. The stress-strain, curve within elastic limit is shown in Fig. 6.4, , Fig. 6.3 : Tangential force produces, shearing stress., Suppose, �� ABCD is the front face of a cube., A force F is applied to the cube so that the, bottom of the cube is fixed and only the top, surface is slightly displaced. Such force is called, , Fig 6.4: Stress versus strain graph within, elastic limit for an elastic body., 6.5 Elastic modulus:, There are three types of stress and strain, related to change in length, change in volume, and change in shape. Hence, we have three, moduli of elasticity corresponding to each type, , Fig. 6.2 : Volume stress., Do you know ?, When a balloon is filled with air at high, pressure, its walls experience a force from, within. This is also volume stress. It tries, to expand the balloon and change its size, without changing shape. When the volume, stress exceeds the limit of bulk elasticity, the, balloon explodes. Similarly, a gas cylinder, explodes when the pressure inside it exceeds, the limit of bulk elasticity of its material., A submarine when submerged under, water is under volume stress., 3 : When a deforming force acting on a body, produces change in the shape of a body, shearing, stress and shearing strain are produced., A) Shearing stress:, ��, Let F be a tangential force acting on a, surface area A. This force produces change in, shape of the body without changing its size as, shown in Fig. 6.3., , D, , 102
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of stress and strain., 6.5.1 Young’s modulus (Y):, It is the modulus of elasticity related to, change in length of an object like a metal, wire, rod, beam, etc., due to the applied, deforming force. Hence it is also called as, elasticity of length. It is named after the British, physicist Thomas Young (1773-1829)., Consider a metal wire of length L having, radius r suspended from a rigid support. A load, Mg is attached to the free end of the wire. Due, to this, deforming force is applied at the free, end of the wire in downward direction. In its, equilibrium position,, Applied force, Longitudinal stress =, Area, F, =, A, , Mg, � 2 --- (6.10), �r, , It produces a change in length of the wire. If, (L+l) is the new length of wire, then l is the, extension or elongation in wire., change inlength, Longitudinal strain =, original length, , Table 6.1: Young's modulus of some, familiar materials, Material, Young's modulus Y, ×1010 Pa (N/m2), Lead, 1.5, Glass (crown), 6.0, Aluminium, 7.0, Silver, 7.6, Gold, 8.1, Brass, 9.0, Copper, 11.0, Steel, 21.0, Example 6.1: A brass wire of length 4.5m with, crosssectional area of 3×10-5 m2 and a copper, wire of length 5.0 m with cross sectional area, 4×10-5 m2 are stretched by the same load. The, same elongation is produced in both the wires., Find the ratio of Young’s modulus of brass and, copper., Solution: For brass,, LB= 4.5m, AB= 3×10-5 m2, lB= l, FB= F, , l, -- (6.11), =, L, Young’s modulus is the ratio of longitudinal, stress to longitudinal strain., longitudinal stress, -- (6.12), Young �s modulus �, longitudinal strain, , F � 4.5, 3 � 10�5 � l, For copper,, LC= 5m, AC= 4×10-5 m2, lC= l, FC=F, , �YB �, , F � 5.0, 4 � 10�5 � l, YB, F � 4.5, 4 � 10�5 � l, ��, �, YC 3 � 10�5 � l, F �5, , �Yc �, , , , MgL, Y �� 2, ---(6.13), 18 � 10�5, �, r, l, � 1.2, �, , 15 � 10�5, 2, SI unit of Young’s modulus is N/m . Its, Example 6.2: A wire of length 20 m and area, dimensions are [ L-1 M1 T-2 ]., -4, 2, Young’s, modulus, indicates, the of cross section 1.25×10 m is subjected to a, resistance of an elastic solid to elongation or load of 2.5 kg. (1 kgwt = 9.8 N). The elongation, -4, compression. Young’s modulus of a material is produced in wire is 1×10 m. Calculate Young’s, useful for characterization of an object subjected modulus of the material., to compression or tension. Young's modulus is Solution: Given,, L = 20 m, the property of solids only., A = 1.25 ×10-4 m2, , 103
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F = mg = 2.5 × 9.8N , L = 10-4 m, To find: Y, FL �� 2.5��9.8��20, Y=, �4, �4, Al 1.25 � 10 �� 10 �, = 3.92 × 1010 N m-2, 6.5.2 Bulk modulus (K):, It is the modulus of elasticity related to, change in volume of an object due to applied, deforming force. Hence it is also called as, elasticity of volume. Bulk modulus of elasticity, is a property of solids, liquids and gases., If a sphere made from rubber is completely, immersed in a liquid, it will be uniformly, compressed from all sides. Suppose this, compressive force is F. Let the change in, pressure on the sphere be dP and let the change, in its volume be dV. If the original volume of, the sphere is V, then volume strain is defined as, , Compressibility is the fractional decrease, in volume, -∆V/V per unit increase in pressure., SI unit of compressibility is m2/ N or Pa-1 and its, dimensions are [ L1 M-1 T2]., Do you know ?, The bulk modules of water is 2.18×108 Pa, and its compressibility is 45.8×10-10 Pa-1., Materials with small bulk modulus and large, compressibility are easier to compress., , Example 6.3: A metal cube of side 1m is, subjected to a force. The force acts normally, on the whole surface of cube and its volume, changes by 1.5×10-5 m3. The bulk modulus of, metal is 6.6×1010 N/m2. Calculate the change in, pressure., Solution: Given,, volume of cube=V = l3 = (1)3 =1m3, Change in volume = dV = 1.5×10-5 m3, Bulk modulus = K = 6.6×1010 N/m2., To find: Change in pressure dP, dV, dP, ��, K =V, --- (6.14), V, dV, , , , dV, The negative sign indicates that there is a, dP = K, decrease in volume. The magnitude of the , V , dV, 10, �5, 6.6 � 10 � 1.5 � 10 �, volume strain is, dP �, V, 1, Bulk modulus is defined as the ratio of, 5, dP = 9.9×10 N/m2., volume stress to volume strain., Table 6.2: Bulk modulus of some familiar, materials, Material, Bulk modulus K, dP, dP, �V, K�, --- (6.17), ×1010 Pa (N/m2), dV, � dV �, � V �, Lead, 4.1, �, �, Brass, 6.0, 2, SI unit of bulk modulus is N/m . Dimensions of, -2, Glass (crown), 6.0, K are [ L-1 M1 T ]., Aluminium, 7.5, Table 6.2 gives bulk moduli of some, Silver, 10.0, familiar materials, Copper, 14.0, Bulk modulus measures the resistance, Steel, 16.0, offered by gases, liquids or solids while an, Gold, 18.0, attempt is made to change their volume., 6.5.3 Modulus of rigidity (η):, The reciprocal of bulk modulus of elasticity, The modulus of elasticity related to, is called compressibility of the material., change in shape of an object is called rigidity, --- (6.18) modulus. It is the property of solids only as, they alone possess a definite shape., , 104
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The block shown in Fig. 6.5 is made of, a uniform isotropic material. It has a uniform, crosssection area A and height l. A cross section, of the block is defined as any plane parallel, to the top and the bottom surface and cuts the, block. Two forces of magnitude 'F' are applied, along top and bottom surface as shown in Fig., (6.5). They constitute a couple. The upper, surface is displaced relative to the lower surface, by a small distance ∆l and corresponding angles, change by a small amount θ = ∆l/l., , Fig. 6.5: Modulus of rigidity, tangential, force F and shear strin θ., A couple is applied by pushing the top, and the bottom surfaces as shown in Fig. 6.5., Similar couple would be applied if the bottom, of the block is fixed, �� and only, �� the top is pushed., The forces F and - F are parallel to the, cross section. This is different than the tensile, stress where the force is normal to the cross, section., As a result of the way in which the forces, are applied the block is subjected to a shear, stress defined by shear stress = F/A., The SI unit of shear stress is N/m2 or Pa., The block is distorted as a result of the shear, stress. The top and bottom surface are relatively, displaced by a small distance ∆l. The corner, angle changes by a small amount θ which is, called shear strain and is expressed in radian., Shear strain 'θ' is given by θ = ∆l/l, (for small, ∆l)., Shear modulus or modulus of rigidity: It is, defined as the ratio of shear stress to shear strain, within elastic limits., , �=, , Table 6.3: Rigidity modulus η of some, familiar materials, Material, Rigidity modulus η, ×1010 Pa (N/m2), 0.6, Lead, Aluminium, 2.5, Glass (crown), 2.5, Silver, 2.7, Gold, 2.9, Brass, 3.5, Copper, 4.4, Steel, 8.3, Rigidity modulus indicates the resistance, offered by a solid to change in its shape., Example 6.4: Calculate the modulus of rigidity, of a metal, if a metal cube of side 40 cm is, subjected to a shearing force of 2000 N. The, upper surface is displaced through 0.5cm with, respect to the bottom. Calculate the modulus of, rigidity of the metal., Solution: Given,, Length of side of cube = l= 40 cm = 0.40 m, Shearing force = F= 2000 N = 2×103 N, Displacement of top face = ∆l = 0.5cm = 0.005m, Area = A = l 2 = 0.16m2, To find: modulus of rigidity, η, F, � �� �, A�, �l 0.005, ��, � 0.0125, ��, l, 0.40, 2.0 � 103 N, ��, (0.16m 2 ) � (0.0125), = 1.0 � 106 N / m 2, , 6.5.4 Poisson’s ratio:, Suppose a wire is fixed at one end and a, force is applied at its free end so that the wire, gets stretched. Length of the wire increases and, at the same time, its diameter decreases, i.e., the, wire becomes longer and thinner as shown in, Fig. 6.6 (a)., , shear stress F / A F, --- (6.17), �, �, shear strain, A�, �, , Table 6.3 gives values of rigidity, modulus η of some familiar materials., , 105, , Fig. 6.6 (a): When a wire is stretched its, length increases and its diameter decreases.
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Do you know ?, , Fig. 6.6 (b): When a wire is compressed its, length increases and its diameter increases., If equal and opposite forces are applied to, an object along its length inwards, the object gets, compressed (Fig. 6.6 (b)). There is a decrease, in dimensions along its length and at the same, time there is an increase in its dimensions, perpendicular to its length. When length of the, wire decreases, its diameter increases., The ratio of change in dimensions to, original dimensions in the direction of the, applied force is called linear strain while, the ratio of change in dimensions to original, dimensions in a direction perpendicular to the, applied force is called lateral strain. Within, elastic limit, the ratio of lateral strain to the, linear strain is called the Poisson’s ratio., If l is the original length of wire, ∆l is, increase/decrease in length of wire, D is the, original diameter and d is corresponding change, in diameter of wire then, Poisson’s ratio is given, by, Lateral �strain, � ��, Linear �strain, d/D, =�, l/L, d .L, --- (6.18), ��, D.l, , Poisson’s ratio has no unit. It is dimensionless., Table 6.4 gives values of Poisson ratio, σ, of, some familiar materials., Table 6.4: Poisson ratio, σ, of some familiar, materials, Material, Poisson ratio σ, 0.2, Glass (crown), 0.28, Steel, 0.36, Aluminium, Brass, 0.37, Copper, 0.37, Silver, 0.38, Gold, 0.42, , For most of the commonly used metals,, the value of σ is between 0.25 and 0.35., Many times we assume that volume is, constant while stretching a wire. However,, in reality, its volume also increases. Using, approximations it can be shown that σmax ≈, 0.5 if volume is unchanged. In practice, it, is much less. This shows that volume also, increases while stretching., 6.6 Stress-Strain Curve:, Suppose a metal wire is suspended, vertically from a rigid support and stretched, by applying load to its lower end. The load is, gradually increased in small steps until the wire, breaks. The elongation produced in the wire is, measured during each step. Stress and strain, is noted for each load and a graph is drawn by, taking tensile strain along x-axis and tensile, stress along y-axis. It is a stress-strain curve as, shown in Fig. 6.7., , Fig. 6.7 : stress-strain curve., The initial part of the graph is a straight, line OA. This is the region in which Hooke's, law is obeyed and stress is directly proportional, to strain. The straight line portion ends at A., The stress at this point is called proportional, limit. If the load is further increased till point, B is reached, stress and strain are no longer, proportional and Hooke's law is not valid. If the, load is gradually removed starting at any point, between O and B. The curve is retraced until, the wire regains its original length. The change, is reversible. The material of the wire shows, elastic behaviour in the region OB. Point B is, called the yield point. The corresponding point, is called the elastic limit., , 106
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When the stress is increased beyond point, B, the strain continues to increase. If the load is, removed at any point beyond B, C for example,, the material does not regain its original length., It follows the line CE. Length of the wire when, there is no stress is greater than the original, length. The deformation is irreversible and the, material has acquired a permanent set., Further increase in load causes a large, increase in strain for relatively small increase, in stress, until a point D is reached at which, fracture takes place., The material shows plastic flow or plastic, deformation from point B to point D. The, material does not regain its original state when, the stress is removed. The deformation is, called plastic deformation., The curve described above shows all, the possibilities for an elastic substance., In particular, many metallic wires (copper,, aluminum, silver, etc) exhibit this type of, behavior. However, majority of materials in, every day life exhibit only some part of it., Materials such as glass, ceramics, etc.,, break within the elastic limit. They are called, brittle., Metals such as copper, aluminum, wrought, iron, etc. have large plastic range of extension., They lengthen considerably and undergo plastic, deformation till they break. They are called, ductile., Metals such as gold, silver which can be, hammered into thin sheets are called malleable., Rubber has large elastic region. It can be, stretched so that its length becomes many times, its original length, after removal of the stress it, returns to its original state but the stress strain, curve is not a straight line. A material that can, be elastically stretched to a larger value of strain, is called an elastomer., In case of some materials like vulcanized, rubber, when the stress applied on a body, decreases to zero, the strain does not return to, zero immediately. The strain lags behind the, stress. This lagging of strain behind the stress is, called elastic hysteresis. Figure 6.8 shows the, stress-strain curve for increasing and decreasing, load. It encloses a loop. Area of loop gives, , the energy dissipated during deformation of a, material., , Fig. 6.8: Stress-stain curve for increasing, and decreasing load., Can you tell?, Why does a rubber band become loose after, repeated use?, 6.7 Strain Energy:, The elastic potential energy gained by a, wire during elongation by a stretching force, is called as strain energy., Consider a wire of original length L and, cross sectional area A stretched by a force F, acting along its length. The wire gets stretched, and elongation l is produced in it. The stress and, the strain increase proportionately., F, Longitudinal stress =, A, l, Longitudinal strain =, L, longitudinal stress, Young’s modulus =, longitudinal strain, �F �, � A � FL, Y �� ��, � l � Al, � L�, � �, , YAl, �F �, --- (6.19), L, The magnitude of stretching force increases, from zero to F during elongation of wire. At a, certain stage, let ‘f ’ be the force applied and ‘x’, be the corresponding extension. The force at, this stage is given by Eq. (6.19) as, YAx, f=, L, , 107
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For further extension dx in the wire, the work Work done per unit volume, 1, done is given by, = � (stress).(strain), Work = (force).(displacement)., 2, Strain energy per unit volume, dW = f dx, 1, YAx, � (stress).(strain) , --- (6.22), =, dx, 2, ∴ dW =, L, stress, When the wire gets stretched from x = 0 to As Y =, ,, strain, x = l, the total work done is given as, Stress = Y. (strain) and, l, stress, W � �dW, strain =, 0, Y, l, ∴, Strain, energy, per unit volume, YAx, �W � �, �dx, 1, � � �Y � (strain ) 2 , L, --- (6.23), 0, 2, l, Also, strain energy per unit volume, YA, �W �, xdx, L �0, , --- (6.24), l, 2, YA � x �, Thus Eq. (6.22), (6.23) and (6.24) give strain, �W �, � � ��, L � 2 �0, energy per unit volume in various forms., 6.8 Hardness:, YA � l 2 02 �, Hardness is the property of a material, �W �, � � �� �, which enables it to resist plastic deformation., L � 2� 2 �, 2, Hard materials have little ductility and they are, YAl, W=, brittle to some extent. The term hardness also, 2L, refers to stiffness or resistance to bending,, 1 YAl, scratching abrasion or cutting. It is the, W = � �l, 2 L, property of a material which gives it the ability, 1, to resist permanent deformation when a load is, W = �Fl, applied to it. The greater the hardness, greater, 2 , is the resistance to deformation., 1, ., �, (load) (extension) --- (6.20), Work done =, The most well-known example of the hard, 2, This work done by stretching force is equal materials is diamond. It is incredibly difficult, to energy gained by the wire. This energy is to scratch a diamond. Metal with very low, hardness is aluminium., strain energy., Hardness of material is different from, 1, Strain energy = � (load).(extension) --- (6.21) its strength and toughness., 2, If a force is applied to a body it produces, Strain energy per unit volume can be obtained, deformation, in it. Higher is the force required, by using Eq. (6.20) and various formula of, for deformation, the stronger is the material,, stress, strain and young’s modulus., i.e., the material has more strength., Work done per unit volume, Steel has high strength whereas plasticine, work �done �in �streching �wire, =, clay is not strong because it gets easily deformed, volume �of �wire., even by a small force., 1 F .l, Toughness is the ability of a material to, =, 2 A.L, resist fracturing when a force is applied to it., Plasticine clay is relatively tough as it can be, 1 � F �� l �, � � �� �, stretched and deformed due to applied force, 2 � A �� L �, without breaking., , 108
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A single material may be hard, strong and, tough, e.g.,, 1) Bulletproof glass is hard and tough but not, strong., 2) Drill bits must be hard, strong and tough, for their work., 3) Anvils are very tough and strong but they, are not hard., 6.9 Friction in Solids:, Whenever the surface of one body slides, over another, each body exerts a certain amount, of force on the other body. These forces are, tangential to the surfaces. The force on each, body is opposite to the direction of motion, between the two bodies. It prevents or opposes, the relative motion between the two bodies. It is, a common experience that an object placed on, any surface does not move easily when a small, force is applied to it. This is because of certain, force of opposition acting between the surface of, the object and the surface on which it is placed., Even a rolling ball comes to rest after covering, a finite distance on playground because of such, opposing force. Our foot ware is provided, with designs at the bottom of its sole so as to, produce force of opposition to avoid slipping., It is difficult to walk without such opposing, force. You know what happens when you try, to walk fast on polished flooring at home with, soap water spread on it. There is a possibility of, slipping due to lack of force of opposition. To, initiate any motion between a pair of surfaces,, we need a certain minimum force. Also after the, motion begins, it is constantly opposed by some, natural force. This mechanical force between, two solid surfaces in contact with each other is, called as frictional force. The property which, resists the relative motion between two, surfaces in contact is called friction., In some cases it is necessary to avoid, friction, because friction causes dissipation of, energy in machines due to which efficiency, of machines decreases. In such cases friction, should be reduced by using polished surfaces,, lubricants, etc. Relative motion between solids, and fluids (i.e. liquids and gases) is also naturally, opposed by friction, e.g., a boat on the surface, of water experiences opposition to its motion., , In this section we are going to study friction in, solids only., 6.9.1 Origin of friction:, If smooth surfaces are observed under, powerful microscope, many irregularities and, projections are observed. Friction arises due, to interlocking of these irregularities between, two surfaces in contact. The surfaces can be, made extremely smooth by polishing to avoid, irregularities but it is noticed that in this case, also, friction does not decrease but may increase., Hence the interlocking of irregularities is not, the real cause of friction., According to modern theory, cause of, friction is the force of attraction between, molecules of two surfaces in actual contact in, addition to the force due to the interlocking, between the two surfaces. When one body is in, contact with another body, the real microscopic, area in contact is very small due to irregularities, in contact. Figure 6.9 shows the microscopic, view of two polished surfaces in contact., , Fig. 6.9: Microscopic view of polished, surfaces in contact., Due to small area, pressure at points of, contact is very high. Hence there is a strong force, of attraction between the surfaces in contact., If both the surfaces are of the same material, the force of attraction is called cohesive force, while if the surfaces are of different materials, the force of attraction is called adhesive force., When the surfaces in contact become more and, more smooth, the actual area of contact goes on, increasing. Due to this, the force of attraction, between the molecules increases and hence the, friction also increases. Putting some grease or, other lubricant (a different material) between, the two surfaces reduces the friction., 6.9.2 Types of friction:, 1. Static friction:, Suppose a wooden block is placed on, a horizontal surface as shown in Fig 6.10. A, small horizontal force F is applied to it. The, , 109
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block does not move with this force as it cannot, overcome the frictional force between the block, and horizontal surface. In this case, the force, of static friction is equal to F and balances it., The frictional force which balances applied, force when the body is static is called force, of static friction, Fs. In other words, static, friction prevents sliding motion., If we keep increasing F, a stage will come, when, for F = Fmax, the object will start moving., For F < Fmax, the force of static friction is equal, to F. For F ≥ Fmax, the kinetic friction comes, into play. Static friction opposes impending, motion i.e. the motion that would take place, in absence of frictional force under the applied, force., , Fig. 6.10: Static friction., The force of static friction is self adjusting, force. When the applied force F is very small, the, block remains at rest. Here the force of friction, is also small. When F is increased by a small, value, the block remains still at rest as the force, of friction is increased to balance the applied, force. If applied force is increased, the friction, also increases and reaches the maximum value., Just before the body starts sliding over another, body, the value of frictional force is maximum,, it is called limiting force of friction, FL . If, the direction of applied force is reversed, the, direction of static friction is also reversed, i.e.,, it adjusts its direction also., Laws of static friction:, 1] The limiting force of static friction is, directly proportional to the normal reaction, (N) between the two surfaces in contact., FL ∝ N, , ., . . FL = µs N --- (6.25), Where µs is constant of proportionality. It, is called as coefficient of static friction., , to the normal reaction. Table 6.4 gives, the coefficient of static fiction for some, materials., 2] The limiting force of friction is independent, of the apparent area between the surfaces, in contact, so long as the normal reaction, remains the same., 3] The limiting force of friction depends upon, materials in contact and the nature of their, surfaces., Table 6.4: Coefficient of static friction, Material, , Coefficient of, static friction µs, , Teflon on Teflon, , 0.4, , Brass on steel, , 0.51, , Copper on steel, , 0.53, , Aluminium on steel, , 0.61, , Steel on steel, , 0.74, , Glass on glass, , 0.94, , Rubber on concrete (dry), , 1.0, , Example 6.5: The coefficient of static friction, between a block of mass 0.25 kg and a horizontal, surface is 0.4. Find the horizontal force applied, to it., Solution: Given,, µs = 0.4, m = 0.25 kg, To find: Force, F = µs. N = µs. (mg), F = 0.4 × 0.25 × 9.8, F = 0.98 N, 2. Kinetic friction :, Once the sliding of block on the surface, starts, the force of friction decreases. The force, required to keep the body sliding steadily is, thus less than the force required to just start its, sliding. The force of friction that comes into, play when a body is in steady state of motion, over another surface is called force of kinetic, friction., Friction between two surfaces in contact, FL, --- (6.26) when one body is actually sliding over the, � µs �, N , , other body, is called kinetic friction or, The coefficient of static friction is defined dynamic friction., as the ratio of limiting force of friction, , 110
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Laws of kinetic friction :, 1. The force of kinetic friction (Fk ) is directly, proportional to the normal reaction between, two surfaces in contact., ∴ Fk α N, ∴ Fk = µk N , --- (6.27), Where µk is constant of proportionality. It, is called as coefficient of kinetic friction., F, � �k � k, , --- (6.28), N, , , , The coefficient of kinetic friction is defined, as the ratio of force of kinetic friction to the, normal reaction between the two surfaces, in contact. Table 6.5 gives the co-efficient, of kinetic friction for some materials., 2. Force of kinetic friction is independent of, shape and apparent area of the surfaces in, contact., 3. Force of kinetic friction depends upon, the nature and material of the surfaces in, contact., 4. The magnitude of the force of kinetic, friction is independent of the relative, velocity between the object and the surface, provided that the relative velocity is neither, too large nor too small., Table 6.5: Coefficient of kinetic friction, Material, Rubber on concrete (dry), Glass on glass, Brass on steel, Copper on steel, Aluminium on steel, Steel on steel, Teflon on Teflon, , friction while the force of kinetic friction is, greater than force of rolling friction. As rolling, friction is the minimum, ball bearings are, used to reduce friction in parts of machines to, increase its efficiency., Advantages of friction:, Friction is necessary in our daily life., • We can walk due to friction between, ground and feet., • We can hold object in hand due to static, friction., • Brakes of vehicles work due to friction;, hence we can reduce speed or stop, vehicles., • Climbing on a tree is possible due to, friction., Disadvantages of friction, • Friction opposes motion., • Friction produces heat in different parts, of machines. It also produces noise., • Automobile engines consume more fuel, due to friction., Methods of reducing friction, • Use of lubricants, oil and grease in, different parts of a machine., • Use of ball bearings converts kinetic, friction into rolling friction., , Coefficient of, kinetic friction µk, , Can you tell?, , 0.25, 0.40, 0.40, 0.44, 0.47, 0.57, 0.80, , 1), 2), 3), 4), , 3 Rolling friction :, Motion of a body over a surface is said to be, rolling motion if the point of contact of the body, with the surface keeps changing continuously., Friction between two bodies in contact, when one body is rolling over the other, is, called rolling friction., For same pair of surfaces, the force of, static friction is greater than the force of kinetic, , 111, , It is difficult to run fast on sand., It is easy to roll than pull a barrel, along a road., An inflated tyre rolls easily than a, flat tyre., Friction is a necessary evil., Internet my friend, , 1., 2., 3., 4., , 5., , https://opentextbc.ca>chapter>friction., https://www.livescience.com, https://www.khanacdemy.org.physics, https://courses.lumenlearning.com>, elastiscitychapter>elasticity, https://www.toper.com>guides>physics
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ises, , erc, , Ex, , Exercises, , 1. Choose the correct answer:, and the softest material., i) Change in dimensions is known as….., xiii) Define friction., , (A) deformation , (B) formation, xiv) Why force of static friction is known as, ‘self-adjusting force’?, , (C) contraction , (D) strain., ii) The point on stress-strain curve at which xv) Name two factors on which the coefficient of friction depends., strain begins to increase even without, increase in stress is called…., 3. Answer in short:, , (A) elastic point, (B) yield point, i) Distinguish between elasticity and, plasticity., , (C) breaking point, (D) neck point, iii) Strain energy of a stretched wire is ii) State any four methods to reduce friction., 18×10-3 J and strain energy per unit iii) What is rolling friction? How does it, volume of the same wire and same cross, arise?, section is 6×10-3 J/m3. Its volume will iv) Explain how lubricants help in reducing, be...., friction?, , (A) 3cm3 , (B) 3 m3, v) State the laws of static friction., , (C) 6 m3 , (D) 6 cm3, vi) State the laws of kinetic friction., iv) ----- is the property of a material which vii) State advantages of friction., enables it to resist plastic deformation., viii) State disadvantages of friction., , (A) elasticity , (B) plasticity, ix) What do you mean by a brittle substance?, , (C) hardness , (D) ductility, Give any two examples., v) The ability of a material to resist fracturing 4. Long answer type questions:, when a force is applied to it, is called…… i) Distinguish between Young’s modulus,, , (A) toughness , (B) hardness, bulk modulus and modulus of rigidity., , (C) elasticity , (D) plasticity., ii) Define stress and strain. What are their, 2. Answer in one sentence:, different types?, i) Define elasticity., iii) What is Young’s modulus? Describe an, experiment to find out Young’s modulus, ii) What do you mean by deformation?, of material in the form of a long straight, iii) State the SI unit and dimensions of stress., wire., iv) Define strain., iv) Derive an expression for strain energy per, v) What is Young’s modulus of a rigid body?, unit volume of the material of a wire., vi) Why bridges are unsafe after a very long, v) What is friction? Define coefficient of, use?, static friction and coefficient of kinetic, vii) How should be a force applied on a body, friction. Give the necessary formula for, to produce shearing stress?, each., viii) State the conditions under which Hooke’s vi) State Hooke’s law. Draw a labeled graph, law holds good., of tensile stress against tensile strain for a, ix) Define Poisson’s ratio., metal wire up to the breaking point. In this, graph show the region in which Hooke’s, x) What is an elastomer?, law is obeyed., xi) What do you mean by elastic hysteresis?, xii) State the names of the hardest material, , 112
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5. Answer the following, i) Calculate the coefficient of static friction, for an object of mass 50 kg placed on, horizontal table pulled by attaching a, spring balance. The force is increased, gradually it is observed that the object just, moves when spring balance shows 50N., , [Ans: µs = 0.102], ii) A block of mass 37 kg rests on a rough, horizontal plane having coefficient of, static friction 0.3. Find out the least, force required to just move the block, horizontally. , , [Ans: Fs = 108.8N], iii) A body of mass 37 kg rests on a rough, horizontal surface. The minimum, horizontal force required to just start the, motion is 68.5 N. In order to keep the, body moving with constant velocity, a, force of 43 N is needed. What is the value, of a) coefficient of static friction? and b), coefficient of kinetic friction?, , [Ans: a) µs = 0.188, , b) µk = 0.118], iv) A wire gets stretched by 4mm due to a, certain load. If the same load is applied, to a wire of same material with half the, length and double the diameter of the, first wire. What will be the change in its, length?, , [Ans: 0.5mm], v) Calculate the work done in stretching a, steel wire of length 2m and cross sectional, area 0.0225mm2 when a load of 100 N is, slowly applied to its free end. [Young’s, modulus of steel= 2×1011 N/m2 ], , [Ans: 2.222J], vi) A solid metal sphere of volume 0.31m3, is dropped in an ocean where water, pressure is 2×107 N/m2. Calculate change, in volume of the sphere if bulk modulus, of the metal is 6.1×1010 N/m2, , [Ans: 10-4 m3], , vii) A wire of mild steel has initial length, 1.5 m and diameter 0.60 mm is extended, by 6.3 mm when a certain force is applied, to it. If Young’s modulus of mild steel, is 2.1 x 1011 N/m2, calculate the force, applied., [Ans: 250 N], , viii) A composite wire is prepared by joining, a tungsten wire and steel wire end to end., Both the wires are of the same length, and the same area of cross section. If this, composite wire is suspended to a rigid, support and a force is applied to its free, end, it gets extended by 3.25mm. Calculate, the increase in length of tungsten wire and, steel wire separately., , [Given: Ysteel = 2 × 1011N/m2,, , YTungsten = 3.40 × 108 N/m2], [Ans: extension in tungsten wire = 3.244 mm,, extension in steel wire = 0.0052 mm], , ix) A steel wire having cross sectional area, 1.2 mm2 is stretched by a force of 120 N., If a lateral strain of 1.455 mm is produced, in the wire, calculate the Poisson’s ratio., , [Ans: 0.291], x) A telephone wire 125m long and 1mm in, radius is stretched to a length 125.25m, when a force of 800N is applied. What is, the value of Young’s modulus for material, of wire? , [Ans: 1.27×10 11N/m2], xi) A rubber band originally 30cm long is, stretched to a length of 32cm by certain, load. What is the strain produced? , , [Ans: 6.667× 10-2 ], xii) What is the stress in a wire which is 50m, long and 0.01cm2 in cross section, if the, wire bears a load of 100kg? , , [Ans: 9.8× 108 N/m2], xiii) What is the strain in a cable of original, length 50m whose length increases by, 2.5cm when a load is lifted?, , [Ans: 5× 10-4 ], ***, , 113
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7., , Thermal Properties of Matter, Can you recall?, , 1. Temperature of a body determines its, hotness while heat energy is its heat, content., 2. Pressure is the force exerted per unit area, normally on the walls of a container by the, gas molecules due to collisions., , 3. Solids, liquids and gases expand on, heating., 4. Substances change their state from solid, to liquid or liquid to gas on heating up to, specific temperature., , 7.1 Introduction:, In previous lessons, while describing the, equilibrium states of a mechanical system, or while studying the motion of bodies, only, three fundamental physical quantities namely, length, mass and time were required. All other, physical quantities in mechanics or related, to mechanical properties can be expressed in, terms of these three fundamental quantities., In this chapter, we will discuss properties or, phenomena related to heat. These require a, fourth fundamental quantity, the temperature,, as mentioned in Chapter 1., The sensation of hot or cold is a matter of, daily experience. A mother feels the temperature, of her child by touching its forehead. A cook, throws few drops of water on a frying pan to, know if it is hot enough to spread the dosa, batter. Although not advisable, in our daily, lives, we feel hotness or coldness of a body by, touching or we dip our fingers in water to check, if it is hot enough for taking bath. When we say, a body or water is hot, we actually mean that its, temperature is more than our hand. However,, in this way, we can only compare the hotness, or coldness of two objects qualitatively. Hot, and cold are relative terms. You might recall, the example given in your science textbook of, VIIIth standard. Lukewarm water seems colder, than hot water but hotter than cold water to our, hands. We ascribe a property ‘temperature’ to, an object to determine its degree of hotness., The higher the temperature, the hotter is the, body. However, the precise temperature of, a body can be known only when we have, an accurate and easily reproducible way to, , quantitatively measure it. Scientific precision, requires measurement of a physical quantity in, numerical terms. A thermometer is the device to, measure the temperature., In this chapter , we will learn properties of, matter and various phenomena that are related, to heat. Phenomena or properties having to do, with temperature changes and heat exchanges, are termed as thermal phenomena or thermal, properties. You will understand why the, direction of wind near a sea shore changes, during day and night, why the metal lid of a, glass bottle comes out easily on heating and, why two metal vessels locked together can be, separated by providing heat to the outer vessel., 7.2 Temperature and Heat:, Heat is energy in transit. When two bodies, at different temperatures are brought in contact,, they exchange heat. After some time, the heat, transfer stops and we say the two bodies are, in thermal equilibrium. The property or the, deciding factor to determine the state of thermal, equilibrium is the temperature of the two bodies., Temperature is a physical quantity that defines, the thermodynamic state of a system., You might have experienced that a glass of, ice-cold water when left on a table eventually, warms up whereas a cup of hot tea on the, same table cools down. It means that when the, temperature of a body, ice-cold water or hot, tea in the above examples, is different from its, surrounding medium, heat transfer takes place, between the body and the surrounding medium, until the body and the surrounding medium, are at the same temperature. We then say that, the body and its surroundings have reached, , 114
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a state of thermal equilibrium and there is no, net transfer of heat from one to the other. In, fact, whenever two bodies are in contact, there, is a transfer of heat owing to their temperature, difference., Matter in any state - solid, liquid or gasconsists of particles (ions, atoms or molecules)., In solids, these particles are vibrating about their, fixed equilibrium positions and possess kinetic, energy due to motion at the given temperature., The particles possess potential energy due to, the interatomic forces that hold the particles, together at some mean fixed positions. Solids, therefore have definite volume and shape. When, we heat a solid, we provide energy to the solid., The particles then vibrate with higher energy, and we can see that the temperature of the, solid increases (except near its melting point)., Thus the energy supplied to the solid (does, not disappear!) becomes the internal energy in, the form of increased kinetic energy of atoms/, molecules and raises the temperature of the, solid. The temperature is therefore a measure, of the average kinetic energy of the atoms/, molecules of the body. The greater the kinetic, energy is, the faster the molecules will move, and higher will be the temperature of the body., If we continue heating till the solid starts to melt,, the heat supplied is used to weaken the bonds, between the constituent particles. The average, kinetic energy of the constituent particles does, not change further. The order of magnitude of, the average distance between the molecules, of the melt remains almost the same as that of, solid. Due to weakened bonds liquids do not, possess definite shape but have definite volume., The mean distance between the particles and, hence the density of liquid is more or less the, same as that of the solid. On heating further,, the atoms/molecules in liquid gain kinetic, energy and temperature of the liquid increases., If we continue heating the liquid further, at the, boiling point, the constituents can move freely, overcoming the interatomic/molecular forces, and the mean distance between the constituents, increases so that the particles are farther apart., As per kinetic theory of gases, for an ideal, gas, there are no forces between the molecules, , of a gas. Hence gases neither have a definite, volume nor shape. Interatomic spacing in, solids is ~ 10-10 m while the average spacing, in liquids is almost twice that in solids. The, average inter molecular spacing in gases at, normal temperature and pressure (NTP) is, ~10-9 m., From the above discussion, we understand, that heat supplied to the substance increases, the kinetic energy of molecules or atoms of, the substance. The average kinetic energy, per particle of a substance defines the, temperature. Temperature measures the degree, of hotness of an object and not the amount of its, thermal energy., A glass of water, a gas enclosed in a, container, a block of copper metal are all, examples of a 'system'. We can say that heat, in the form of energy is transferred between, two (or more) systems or a system and its, surroundings by virtue of their temperature, difference. SI unit of heat energy is joule (J), and that of temperature is kelvin (K) or celcius, (°C). The CGS unit of heat energy is erg., (1J = 107 erg). The other unit of heat energy,, that you have learnt in VIIIth standard, is calorie, (cal) and the relation with J is 1 cal = 4.184 J., Heat being energy has dimension [L2M1T-2K°], while dimension of temperature is [L°M°T°K1]., 7.3 Measurement of Temperature:, In order to isolate two liquids or gases from, each other and from the surroundings, we use, containers and partitions made of materials like, wood, plastic, glass wool, etc. An ideal wall or, partition (not available in practice) separating, two systems is one that does not allow any flow, or exchange of heat energy from one system to, the other. Such a perfect thermal insulator is, called an adiabatic wall and is generally shown, as a thick cross-shaded (slanting lines) region., When we wish to allow exchange of heat energy, between two systems, we use a partition like a, thin sheet of copper. It is termed as a diathermic, wall and is represented as a thin dark region., Let us consider two sections of a container, separated by an adiabatic wall. Let them contain, two different gases. Let us call them system A, , 115
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and system B. We independently bring systems, A and B in thermal equilibrium with a system C., Now if we remove the adiabatic wall separating, systems A and B, there will be no transfer of, heat from system A to system B or vice versa., This indicates that systems A and B are also, in thermal equilibrium. Overall conclusion of, this activity can be summarized as follows:, If systems A and B are separately in thermal, equilibrium with a system C, then A and B are, also mutually in thermal equilibrium. When, two or more systems/ bodies are in thermal, equilibrium, their temperatures are same. This, principle is used to measure the temperature of, a system by using a thermometer., Do you know ?, If TA = TB and TB = TC, then TA = TC is not, a mathematical statement, if TX represents the, temperature of system X. It is the zeroth law, of thermodynamics and makes the science of, Thermometry possible., Do you remember that to know the, temperature of our body, doctor brings the, mercury in the thermometer down to indicate, some low temperature. We are then asked to, keep the thermometer in our mouth. We have, to wait for some time before the thermometer is, taken out to know the temperature of our body., There is transfer of heat energy from our body, to the thermometer since initially our body is, at a higher temperature. When the temperature, on the thermometer is same as that of our body,, thermal equilibrium is said to be attained and, heat transfer stops., As mentioned above, to precisely know, the thermodynamic state of any system, we, need to know its temperature. The device used, to measure temperature is a thermometer., Thermometry is the science of temperature, and its measurement. For measurement of, temperature, we need to establish a temperature, scale and adopt a set of rules for assigning, numbers (with corresponding units)., For the calibration of a thermometer,, a standard temperature interval is selected, between two easily reproducible fixed, , temperatures just as we select the standard, of length (metre) to be the distance between, two fixed marks. The fact that substances, change state from solid to liquid to gas at, fixed temperatures is used to define reference, temperature called fixed point. The two fixed, temperatures selected for this purpose are the, melting point of ice or freezing point of water, and the boiling point of water. The next step is, to sub-divide this standard temperature interval, into sub-intervals by utilizing some physical, property that changes with temperature and, call each sub-interval a degree of temperature., This procedure sets up an empirical scale for, temperature., * The temperature at which pure water, freezes at one standard atmospheric, pressure is called ice point/ freezing point, of water. This is also the melting point of, ice., * The temperature at which pure water boils, and vaporizes into steam at one standard, atmospheric pressure is called steam point/, boiling point. This is also the temperature, at which steam changes to liquid water., Having decided the fixed point phenomena,, it remains to assign numerical values to these, fixed points and the number of divisions, between them. In 1750, conventions were, adopted to assign (i) a temperature at which, pure ice melts at one atmosphere pressure, (the ice point) to be 0º and (ii) a temperature, at which pure water boils at one atmosphere, (the steam point) to be 100º so that there are, 100 degrees between the fixed points. This was, the centigrade scale (centi meaning hundred in, Latin). This was redefined as celcius scale after, the Swedish scientist Anders Celcius (17011744). It is a convention to express temperature, as degree celcius (ºC)., To measure temperature quantitatively,, generally two different scales of temperature, are used. They are describe below., 1) Celsius scale:- On this scale, the ice point is, marked as 0 and the steam point is marked, as 100, both taken at normal atmospheric, pressure (105 Pa or N/m2). The interval, between these points is divided into 100, , 116
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equal parts. Each of these is known as, degree Celsius and is written as ºC., 2) Fahrenheit scale :- On this scale, the ice, point is market as 32 and the steam point, is marked as 212, both taken at normal, atmospheric pressure. The interval between, these points is divided into 180 equal, parts. Each division is known as degree, Fahrenheit and is written as °F., A relationship for conversion between, the two scales may be obtained from a graph, of fahrenheit temperature (TF) versus celsius, temperature (TC). The graph is a straight line, (Fig. 7.1) whose equation is, , Given TF = 98.4 �F,, 100, (98.4-32), 180, 100, �, (66.4), 180, = 36.89 �C, , TC �, , A device used to measure temperature, is, based on the principle of thermal equilibrium., To measure the temperature, we use different, measurable properties of materials which, change with temperature. Some of them are, length of a rod, volume of a liquid, electrical, resistance of a metal wire, pressure of a gas at, constant volume etc. Such changes in physical, TF � 32 TC, �, properties with temperature are used to design, --- (7.1), 180, 100 , a thermometer. Physical property that is used in, the thermometer for measuring the temperature, is called the thermometric property and the, material employed for the purpose is termed, as the thermometric substance. Temperature, is measured by exploiting the continuous, monotonic variation of the chosen property, with temperature. A calibration, however, is, required to define the temperature scale., There are different kinds of thermometers, each, type being more suitable than others for a, Fig. 7.1: A plot of fahrenheit temperature, certain job. In each type, the physical property, (TF) versus celsius temperature (TC)., Example 7.1: Average room temperature used to measure the temperature must vary, on a normal day is 27 °C. What is the room continuously over a wide range of temperature., It must be accurately measurable with simple, temperature in °F?, apparatus., Solution: We have, TF � 32 TC, An important characteristic of a, =, 180, 100, thermometer is its sensitivity, i.e., a change in the, 180, thermometric property for a very small change, � TF �, TC + 32, 100, in temperature. Two other characteristics, Given TC = 27 �C,, are accuracy and reproducibility. Also it is, 180, important that the system attains thermal, � 27 + 32, TF �, 100, equilibrium with the thermometer quickly., = 48.6 + 32, If the values of a thermometric property, = 80.6 �F, are, P, and P2 at the ice point (0 ºC) and steam, 1, Example 7.2: Normal human body temperature, in feherenheit is 98.4 °F. What is the body point (100 ºC) respectively and the value of this, property is PT at unknown temperature T, then, temperature in °C?, T is given by the following equation, Solution: We have, 100 � PT � P1 �, T ��, � P2 � P1 �, , TC TF � 32, �, 100, 180, 100, � TC �, (TF -32), 180, , --- (7.2), , , Ideally, there should be no difference, , 117
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in temperatures recorded on two different, thermometers. This is seen for thermometers, based on gases as thermometric substances. In a, constant volume gas thermometer, the pressure, of a fixed volume of gas (measured by the, difference in height) is used as the thermometric, property. It is an accurate but bulky instrument., Liquid-in-glass thermometer depends, on the change in volume of the liquid with, temperature. The liquid in a glass bulb expands, up a capillary tube when the bulb is heated. The, liquid must be easily seen and must expand (or, contract) rapidly and by a large amount for a, small change in temperature over a wide range, of temperature. Most commonly used liquids, are mercury and alcohol as they remain in liquid, state over a wide range. Mercury freezes at -39, °C and boils at 357 °C; alcohol freezes at -115 °C, and boils at 78 °C. Thermochromic liquids are, ones which change colour with temperature but, have a limited range around room temperatures., For example, titanium dioxide and zinc oxide, are white at room temperature but when heated, change to yellow., Example 7.3: The length of a mercury column, in a mercury-in-glass thermometer is 25 mm at, the ice point and 180 mm at the steam point., What is the temperature when the length is 60, mm?, Solution: Here the thermometric property P is, the length of the mercury column. Using Eq., (7.2), we get, 100 � 60 � 25 �, T ��, � 22.58 �C, �180 � 25�, Resistance thermometer uses the change, of electrical resistance of a metal wire, with temperature. It measures temperature, accurately in the range -2000 °C to 1200 °C but, it is bulky and is best for steady temperatures., Example 7.4: A resistance thermometer has, resistance 95.2 Ω at the ice point and 138.6 Ω, at the steam point. What resistance would be, obtained if the actual temperature is 27 ºC?, Solution: Here the thermometric property P, is the resistance. Using Eq. (7.2), if R is the, resistance at 27 ºC, we have, , 100 � R � 95.2 �, ,, 27 � �, �138.6 � 95.2 �, 27 � ��138.6 � 95.2 �, �R �, � �95.2, 100, � ��11.72 � 95.2 � 106.92 ��, Normally in research laboratories,, a thermocouple is used to measure the, temperature. A thermocouple is a junction of, two different metals or alloys e.g., copper and, iron joined together. When two such junctions, at the two ends of two dissimilar metal rods, are kept at two different temperatures, an, electromotive force is generated that can be, calibrated to measure the temperature., Thermistor is another device used to, measure temperature based on the change in, resistance of a semiconductor materials i.e., the, resistance is the thermometric property. You, will learn more about this device in Chapter, 14 on Semiconductors., 7.4 Absolute Temperature and Ideal Gas, Equation:, 7.4.1 Absolute zero and absolute temperature, Experiments carried out with gases at, low densities indicate that while pressure is, held constant, the volume of a given quantity, of gas is directly proportional to temperature, (measured in ºC). Similarly, if the volume of, a given quantity of gas is held constant, the, pressure of the gas is directly proportional to, temperature (measured in ºC). These relations, are graphically shown in Fig. 7.2 (a) and (b)., Mathematically, this relationship can be written, as PV ∝ TC. Thus the volume-temperature, or pressure-temperature graphs for a gas are, straight lines. They show that gases expand, linearly with temperature on a mercury, thermometer i.e., equal temperature increase, causes equal volume or pressure increase. The, similar thermal behavior of all gases suggests, that this relationship of gases can be used to, measure temperature in a constant-volume gas, thermometer in terms of pressure of the gas., Although, actual, experimental, measurements might differ a little from the, ideal linear relationship, the linear relationship, , 118
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holds over a wide temperature range., , Fig. 7.2 (a): Graph of volume versus, temperature (in °C) at constant pressure., , Fig. 7.2 (b): Graph of pressure versus, temperature (in °C) at constant volume., It may be noted that the lines do not, pass through the origin i.e., have non-zero, intercept along the y-axis. The straight lines, have different slopes for different gases. If we, assume that the gases do not liquefy even if, we lower the temperature, we can extend the, straight lines backwards for low temperatures., Is it possible to reach a temperature where the, gases stop exerting any pressure i.e., pressure is, zero? In a constant pressure thermometer, as the, temperature is lowered, the volume decreases., Suppose the gas does not liquefy even at very, low temperature, at what temperature, will, its volume become zero? Practically it is not, possible to keep a material in gaseous state for, very low temperature and without exerting any, pressure. If we extrapolate the graph of pressure, P versus temperature TC (in ºC), the temperature, at which the pressure of a gas would be zero, is -273.15 ºC. It is seen that all the lines for, different gases cut the temperature axis at the, same point at i.e., -273.15 ºC. This point is, termed as the absolute zero of temperature., It is not possible to attain a temperature lower, than this value. Even to achieve absolute zero, , temperature is not possible in practice. It may, be noted that the point of zero pressure or zero, volume does not depend on any specific gas., The two fixed point scale, described in, Section 7.3, had a practical shortcoming for, calibrating the scale. It was difficult to precisely, control the pressure and identify the fixed, points, especially for the boiling point as the, boiling temperature is very sensitive to changes, in pressure. Hence, a one fixed point scale, was adopted in 1954 to define a temperature, scale. This scale is called the absolute scale or, thermodynamic scale. It is named as the kelvin, scale after Lord Kelvin (1824-1907)., It is possible for all the three phases - solid,, liquid and gas/vapour of a material - to coexist, in equilibrium. This is known as the triple point., To know the triple point one has to see that three, phases coexist in equilibrium and no one phase, is dominating. This occurs for each substance at, a single unique combination of temperature and, pressure. Thus if three phases of water - solid, ice, liquid water and water vapour- coexist,, the pressure and temperature are automatically, fixed. This is termed as the triple point of water, and is a single fixed point to define a temperature, scale., The absolute scale of temperature, is so, termed since it is based on the properties of an, ideal gas and does not depend on the property, of any particular substance. The zero of this, scale is ideally the lowest temperature possible, although it has not been achieved in practice. It, is termed as Kelvin scale with its zero at -273.15, °C and temperature intervals same as that on, the celsius scale. It is written as K (without °)., Internationally, triple point of water has been, assigned as 273.16 K at pressure equal to 6.11 ×, 102 Pa or 6.11 × 10-3 atmosphere, as the standard, fixed point for calibration of thermometers. Size, of one kelvin is thus 1/273.16 of the difference, between the absolute zero and triple point of, water. It is same as one celcius. On celcius scale,, the triple point of water is 0.01 ºC and not zero., Three identical thermometers, marked in, kelvin, celcius and fahrenheit, placed in a fixed, temperature bath, each thermometer showing, , 119
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the same rise in the level of mercury for human, body temperature, are depicted in Fig. 7.3., The relation between the three scales of, temperature is as given in Eq. (7.3) ., TC TF � �32 TK � �273.15, ��, ��, --- (7.3), 100, 180, 100, , 7.4.2 Ideal Gas Equation:, The relation between three properties of, a gas i.e., pressure, volume and temperature is, called ideal gas equation. You will learn more, about the properties of gases in chemistry., Using absolute temperatures, the gas laws, can be stated as given below., 1) Charles’ law- In Fig. 7.2 (b), the volumetemperature graph passes through the, origin if temperatures are measured on the, kelvin scale, that is if we take 0 K as the, origin. In that case the volume V is directly, proportional to the absolute temperature T., , Thus V∝T, , V, Fig. 7.3: Comparison of the kelvin,, , or,, = constant, --- (7.4), T, celsius and fahrenheit temperature scales, Thus Charles' law can be stated as, the, (Thermometer reading are not to the scale)., volume of a fixed mass of gas is directly, Example 7.5: Express T = 24.57 K in celsius, proportional to its absolute temperature if, and fahrenheit., the pressure is kept constant., Solution: We have, 2) Pressure (Gay Lussac's) law- From, TF � 32 TC TK - 273.15, Fig.7.2, it can be seen that the pressure�, =, 180, 100, 100, temperature graph is similar to the volume� TC = TK -273.15, temperature graph., = 24.577-273.15, , Thus P ∝ T, = - 248.58�C, TF � 32 TK - 273.15, �, 180, 100, 180, � TF �, (TK - 273.15) + 32, 100, 9, � (24.57 � 273.15) � 32, 5, = - 447.44 + 32, , P, , , or, T = constant, --- (7.5), Pressure law can be stated as the pressure of, a fixed mass of gas is directly proportional, to its absolute temperature if the volume is, kept constant., 3) Boyle’s law- For fixed mass of gas at, constant temperature, pressure is inversely, = - 415.44�F, proportional to volume., Example 7.6: Calculate the temperature which, 1, has the same value on fahernheit scale and , Thus P ∝ V, kelvin scale., , PV = constant, --- (7.6), Solution: Let the required temperature be y., Combining above three equations, we get, i.e., TF = TK = y then we have, PV, y � 32 y � 273.15, --- (7.7), , T = constant , �, 180, 100, For one mole of a gas, the constant of, proportionality is written as R, or , 5 y � 160 � 9 y � 2458.35, or , 4 y � �160 � 2458.35, ∴ PV = R or, PV = RT, --- (7.8), T, � y � 574.59, If given mass of a gas consists of n moles,, Thus 574.59 °F and 574.59 K are equivalent, then Eq. (7.8) can be written as, temperatures., PV= nRT --- (7.9), , 120
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This relation is called ideal gas equation., The value of constant R is same for all gases., Therefore, it is known as universal gas constant., Its numerical value is 8.31 J K-1 mol-1., Example 7.7: The pressure reading in a, thermometer at steam point is 1.367 × 103 Pa., What is pressure reading at triple point knowing, the linear relationship between temperature and, pressure?, �P�, Solution: We have Ptriple = 273.16 × � � where, �T �, and P are the pressures at temperature, of, P, , If the substance is in the form of a long, rod of length l, then for small change ∆T, in, temperature, the fractional change ∆l/l, in length, (shown in Fig.7.4), is directly proportional to, ∆T., �l, � �T, l, �l, or, � � �T, l, , , --- (7.10), , where α is called the coefficient of linear, expansion of solid. Its value depends upon, triple, triple point (273.16 K) and T respectively. We nature of the material. Rearranging Eq. (7.10),, are given that P = 1.367 × 103 Pa at steam point we get, �l, i.e., at 273.15 + 100 = 373.15 K., ��, , � 1.367 � 103 �, ∴ Ptriple = 273.16 × �, �, � 373.15� �, 3, = 1.000 × 10 Pa, 7.5 Thermal Expansion:, When matter is heated, it normally expands, and when cooled, it normally contracts. The, atoms in a solid vibrate about their mean, positions. When heated, they vibrate faster and, force each other to move a little farther apart., This results into expansion. The molecules in, a liquid or gas move with certain speed. When, heated, they move faster and force each other, to move a little farther apart. This results in, expansion of liquids and gases on heating. The, expansion is more in liquids than in solids;, gases expand even more., A change in the temperature of a body, causes change in its dimensions. The increase, in the dimensions of a body due to an increase, in its temperature is called thermal expansion., There are three types of thermal expansion:, 1) Linear expansion, 2) Areal expansion,, 3) Volume expansion., 7.5.1 Linear Expansion:, The expansion in length due to thermal, energy is called linear expansion., , Fig. 7.4: Linear expansion ∆l is exaggerated, for explanation., , l �T, lT � l0, =, l0 (T � T0 ), , --- (7.11), , where l0 = length of rod at 0 °C, lT = length of rod when heated to T °C, T0 = 0 °C is initial temperature, T = final temperature, ∆l =lT - l0 = change in length, ∆T =T - T0= rise in temperature, Referring to Eq. (7.11), if l0=1 and T- T0=1 °C,, then, α = lT - l0 (numerically)., Coefficient of linear expansion of a solid, is thus defined as increase in the length per, unit original length at 0 °C for one degree, centigrade rise in temperature., The unit of coefficient of linear expansion is, per degree celcius or per kelvin. The magnitude, of α is very small and it varies only a little with, temperature. For most practical purposes, α, can be assumed to be constant for a particular, material. Therefore, it is not necessary that, initial temperature be taken as 0 °C. Equation, (7.11) can be rewritten as, l �l, �� 2 1, l1 (T2 � T1 ) , --- (7.12), where l1 = initial length at temperature T1 °C, l2 = final length at temperature T2 °C., Table 7.1 lists average values of coefficient, of linear expansion for some materials in the, , 121
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We have, temperature range 0°C to 100 °C., l �l, l �l, Table 7.1: Values of coefficient of linear, �= 2 1 � 2 1, l1 (T2 � T1 ) l1T2 � l1T1, expansion for some common materials., Materials, Carbon (diamond), Glass, Iron, Steel, Gold, Copper, Silver, Aluminium, Sulphur, Mercury, Water, Carbon (graphite), , l2 � l1, �, l �l �, 1�, T2 � �l1T1 � 2 1 �, � �, l1 �, , � l1T2 � l1T1 �, , a (K-1), 0.1×10-5, 0.85×10-5, 1.2×10-5, 1.3×10-5, 1.4×10-5, 1.7×10-5, 1.9×10-5, 2.5×10-5, 6.1×10-5, 6.1×10-5, 6.9×10-5, 8.8×10-5, , �, , 4.268 � 4.256 �, 1 �, (4.256 � 27) �, �, 4.256 �, 1.2 � 10�5 ��, , 0.012 �, 1 �, 114.912 �, 4.256 ��, 1.2 � 10�5 ��, 1, �, �114.912 � 1000 ��, 4.256 �, � 261.96 �C, , �, , 7.5.2 Areal Expansion:, The increase ∆A, in the surface area, on, heating is called areal expansion or superficial, Example 7.8: The length of a metal rod at 27 °C expansion., is 4 cm. The length increases to 4.02 cm when, �A, the metal rod is heated upto 387 °C. Determine, � �T, A, the coefficient of linear expansion of the metal, �A, or, � � �T, rod., A, Solution: Given, Fig. 7.5: Areal expansion ∆A is exaggerated, , T1 = 27 °C, for explanation., , T2 = 387 °C, If a substance is in the form of a plate of, , l1 = 4 cm = 4×10-2 m, area A, then for small change ∆T in temperature,, , l2 = 4.02 cm = 4.02×10-2 m, the fractional change in area, ∆A/A (as shown, We have, in Fig. 7.5), is directly proportional to ∆T., l �l, �A, � �T, �� 2 1, A, l, (, T, �, T, ), 1 2, 1, , �A, --- (7.13), or, � � �T, �2, 4.02 � 4.0 � � 10, A, �, , �, where β is called the coefficient of areal, 4 � 10�2 (387 � 27), expansion of solid. It depends on the material, 0.02 � 10�2, �, of the solid. Rearranging Eq. (7.13), we get, 4 � 10�2 � 360, AT � A0, �A, ��, �, --- (7.14), � 1.39 � 10�5 / �C, , A�T, A0 (T � T0 ), , Example 7.9: Length of an iron rod at where A = area of plate at 0 °C, 0, temperature 27 °C is 4.256 m. Find the, AT = area of plate when heated to T °C, temperature at which the length of the same rod, T0 = 0 °C is initial temperature, increases to 4.268 m.(α for iron = 1.2×10-5 K-1), T = final temperature, Solution: Given, ∆A = AT - A0 = change in area, T1 = 27 °C, l1 = 4.256 m,, ∆T =T - T0= rise in temperature., l2 = 4.268m, α = 1.2×10-5 K-1, If A0 = 1 m2 and T - T0 = 1 °C, then, β = AT - A0 (numerically)., , 122
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Therefore, coefficient of areal expansion of a, solid is defined as the increase in the area per, unit original area at 0°C for one degree rise, in temperature., The unit of β is per degree celcius or per, kelvin., As in the case of α, β also does not vary, much with temperature. Hence, if A1 is the area, of a metal plate at T1 °C and A2 is the area at, higher temperature T2 °C, then, A2 � A1, ��, --- (7.15), A1 (T2 � T1 ) , Example 7.10: A thin aluminium plate has an, area 286 cm2 at 20 °C. Find its area when it is, heated to 180 °C., (β for aluminium = 4.9×10-5 /°C), Solution: Given , , T1 = 20 °C, , T2 = 180 °C, , A1 = 286 cm2, , β = 4.9×10-5 /°C, We have, A2 � A1, ��, A1 (T2 � T1 ), ∴ A2= A1 [1 + β (T2-T1)], = 286 [1 + 4.9×10-5 (180-20)], = 286 [1 + 4.9×10-5×160], = 286 [1 + 784.0×10-5], = 286 [1 + 0.00784], = 286 [1.00784], ... A2 = 288.24 cm2, 7.5.3 Volume expansion, The increase in volume due to heating is, called volume expansion or cubical expansion., , �V, � �T, V, �V, or, � � �T, V, , Fig. 7.6: Volume expansion, exaggerated for explanation., , ∆V, , is, , If the substance is in the form of a cube, of volume V, then for small change ∆T in, temperature, the fractional change, ∆V/V, (as shown in Fig.7.6), in volume is directly, proportional to ∆T., �V, � �T, V, �V, or, � � �T, V, , --- (7.16), , where γ is called coefficient of cubical or, volume expansion. It depends upon the nature, of the material. Its unit is per degree celcius or, per kelvin. From Eq.(7.16), we can write, � �, , V � V0, �V, � T, V �T V0 (T - T0 ), , --- (7.17), , where V0 = volume at 0 °C, VT = volume when heated to T °C, T0 = 0 °C is initial temperature, T = final temperature, ∆V = VT - V0= change in volume, ∆T =T - T0= rise in temperature., If V0 = 1 m3, T - T0=1 °C, then, γ =VT - V0 (numerically)., The coefficient of cubical expansion of, a solid is therefore defined as increase in, volume per unit original volume at 0°C for, one degree rise in the temperature., If V1 is the volume of a body at T1 °C and, V2 is the volume at higher temperature T2 °C,, then, V �V, �1 � 2 1, --- (7.18), V1 (T2 � T1 ) , γ1 is the coefficient of volume expansion at, temperature T1 °C., Since fluids possess definite volume and, take the shape of the container, only change, in volume is significant. Equations (7.17) and, (7.18) are valid for cubical or volume expansion, of fluids. It is to be noted that since fluids are kept, in containers, when one deals with the volume, expansion of fluids, expansion of the container, is also to be considered. If expansion of fluid, results in a volume greater than the volume, of the container, the fluid will overflow if the, container is open. If the container is closed,, volume expansion of fluid will cause additional, , 123
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pressure on the walls of the container. Can you, now tell why the balloon bursts sometimes on, its own on a hot day?, Normally solids and liquids expand on, heating. Hence their volume increases on, heating. Since the mass is constant, it results in, a decrease in the density on heating. You have, learnt about the anomalous behaviour of water., Water expands on cooling from 4°C to 0°C., Hence its density decreases on cooling in this, temperature range., In Table 7.2 are given typical average, values of the coefficient of volume expansion, γ for some materials in the temperature range, 0°C to 100°C., Table 7.2: Values of coefficient of volume, expansion for some common materials., Materials, , γ (K ), -1, , (γliquid = 1.75×10-4 /°C, γglass = 2.75×10-5 /°C), Solution: Given , , , V1= 600 cm3, , , , T1 = 0 °C, , , , T2 = 90 °C, V �V, �� 2 1, V1 (T2 � T1 ), , We have, , ... increase is volume = V2 - V1= γ V1 (T2- T1), Increase in volume of beaker, = γglass× V1 (T2- T1), , , 2×10-6, Invar, 2.5×10-5, Glass (ordinary), (3.3-3.9)×10-5, Steel, 3.55×10-5, Iron, 4.2×10-5, Gold, 5.7×10-5, Brass, 6.9×10-5, Aluminium, 18.2×10-5, Mercury, 20.7×10-5, Water, 58.8×10-5, Paraffin, 95.0×10-5, Gasoline, 110×10-5, Alcohol (ethyl), γ is also characteristic of the substance but, is not strictly a constant. It depends in general, on temperature as shown in Fig.7.7. It is seen, that γ becomes constant only at very high, temperatures., , Fig. 7.7: Coefficient of volume expansion, of copper as a function of temperature., , Example 7.11 : A liquid at 0 °C is poured, in a glass beaker of volume 600 cm3 to fill it, completely. The beaker is then heated to 90 °C., How much liquid will overflow?, , = 2.75×10-5×600×(90-0), = 2.75×10-5×600×90, , = 148500×10-5 cm3, ... increase in volume of beaker = 1.485 cm3, Increase in volume of liquid, , , = γliquid × V1 (T2- T1), , , , = 1.75×10-4×600×(90-0), , , , = 1.75×10-4×600×90, , = 94500×10-4 cm3, ... increase in volume of liquid , = 9.45 cm3, ... volume of liquid which overflows, , , = (9.45-1.485) cm3, , = 7.965 cm3, 7.5.4 , Relation between Coefficients of, Expansion:, i) Relation between β and α:, Consider a square plate of side l0 at 0 °C, and lT at T °C., ... lT = l0 (1+αT) from Eq. (7.11)., If area of plate at 0 °C is A0, A0 = l02., If area of plate at T °C is AT,, AT = lT2 = l02 (1+αT)2, or AT = A0 (1+αT)2 , --- (7.19), Also from Eq. (7.14),, AT = A0 (1+βT) --- (7.20), , 124
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Using Eqs. (7.19) and (7.20), we get, Solution: Given, , T1 = 0 °C, A0 (1+αT)2 = A0 (1+βT), , T2 = 100 °C, or 1+ 2αT +α2T2 =1+βT, , A1 = 50×8 = 400 cm2, Since the values of α are very small, the, , A2 = 401.57 cm2, term α2T2 is very small and may be neglected., ∴ β = 2α , --- (7.21) We have, A2 � A1, � � 2� �, A1 (T2 � T1 ), Can you tell?, (401.57 � 400) cm 2, �, 1. Why the metal wires for electrical, 400 cm 2 � (100 � 0) �C, transmission lines sag?, 1.57, 2. Why a railway track is not a continuous, �, � 0.3925 � 10�4 �C�1, 400 � 100, piece but is made up of segments, separated by gaps?, �� � 0.1962 � 10�4 �C�1, 3. How a steel wheel is mounted on an, � 1.962 � 10�5 �C�1, axle to fit exactly?, ∴ Coefficient of linear expansion of brass, 4. Why lakes freeze first at the surface?, is 1.962×10-5 /°C., The result is general because any solid can, be regarded as a collection of small squares., Do you know ?, ii) Relation between γ and α:, * When pressure is held constant, due to, Consider a cube of side l0 at 0 °C, change in temperature, the volume of, and lT at T °C., a liquid or solid changes very little in, ... lT = l0 (1+αT) from Eq. (7.11)., comparison to the volume of a gas., 3, If volume of the cube at 0 °C is V0, V0 = l0 . * The coefficient of volume expansion, γ, is, generally an order of magnitude larger for, If volume of the cube at T °C is VT ,, liquids than for solids., VT = lT3 = l03 (1+αT)3, * Metals have high values for the coefficient, or VT = V0 (1+αT)3 , --- (7.22), for linear expansion, α, than non-metals., *, γ changes more with temperature than α, Also from Eq. (7.17),, and β., VT = V0 (1+γT) --- (7.23), * We know that water expands on freezing, Using Eqs. (7.22) and (7.23), we get, from 4 ºC to 0 ºC. Other two substances,, V0 (1+αT)3 = V0 (1+γT), that expnad on freezing are metals bismuth, 2 2, 3 3, (Bi) and antimony (Sb). Thus the density, or 1+ 3αT +3α T + α T =1+γT, of liquid is more than corresponding solid, Since the values of α are very small, the, and hence solid Bi or Sb float on their, terms with higher powers of α may be neglected., liquids like ice floats on water., ∴ γ = 3α , --- (7.24), Again the result is general because any, solid can be regarded as a collection of small 7.6 Specific Heat Capacity:, 7.6.1 Specific Heat Capacity of Solids and, cubes., Liquids, Finally, the relation between α, β and γ is, � �, If 1 kg of water and 1 kg of paraffin are, �� �, --- (7.25), 2 3 , heated in turn for the same time by the same, Example 7.12: A sheet of brass is 50 cm long heater, the temperature rise of paraffin is about, and 8 cm broad at 0 °C. If the surface area at twice that of water. Since the heater gives, 100 °C is 401.57cm2, find the coefficient of equal amounts of heat energy to each liquid, it, seems that different substances require different, linear expansion of brass., , 125
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amounts of heat to cause the same temperature, rise of 1°C in the same mass of 1 kg., If ∆Q stands for the amount of heat, absorbed or given out by a substance of mass, m when it undergoes a temperature change ∆T,, then the specific heat capacity of that substance, is given by, �Q, s�, m�T --- (7.26), If m = 1 kg and ∆T = 1°C then s = ∆Q., Thus specific heat capacity is defined as, the amount of heat per unit mass absorbed, or given out by the substance to change its, temperature by one unit (one degree) 1 °C, or 1K., Table 7.3: Specific heat capacity of some, substances at room temperature and, atmospheric pressure., Substance, , Specific heat capacity, (J kg-1 K-1), , 120, Steel, 128, Lead, Gold, 129, 134.4, Tungsten, 234, Silver, 387, Copper, Iron, 448, Carbon, 506.5, Glass, 837, 903.0, Aluminium, 2118, Kerosene, 2130, Paraffin oil, Alcohol (ethyl), 2400, Ethanol, 2500, Water, 4186.0, The SI unit of specific heat capacity is J/, kg °C or J/kg K and C.G.S. unit is erg/g °C or, erg/g K. The specific heat capacity is a property, of the substance and weakly depends on its, temperature. Except for very low temperatures,, the specific heat capacity is almost constant for, all practical purposes., If the amount of substance is specified in, terms of moles µ instead of mass m in kg, then, the specific heat is called molar specific heat (C), and is given by, , 1 �Q, --- (7.27), � �T , The SI unit of molar specific heat capacity, is J/mol °C or J/mol K. Like specific heat, molar, specific heat also depends on the nature of the, substance and its temperature. Table 7.3 lists, the values of specific heat capacity for some, common materials., From Table 7.3, it can be seen that water, has the highest specific heat capacity compared, to other substances. For this reason, water is, used as a coolant in automobile radiators as well, as for fomentation using hot water bags., 7.6.2 Specific Heat Capacity of Gas:, In case of a gas, slight change in, temperature is accompanied with considerable, changes in both, the volume and the pressure., If gas is heated at constant pressure, volume, changes and therefore some work is done on, the surroundings during expansion requiring, additional heat. As a result, specific heat at, constant pressure (Sp) is greater than specific, heat at constant volume (Sv). It is thus necessary, to define two principal specific heat capacities, for a gas., Principal specific heat capacities of gases:, a) The principal specific heat capacity of a, gas at constant volume (Sv) is defined as, the quantity of heat absorbed or released, for the rise or fall of temperature of unit, mass of a gas through 1 K (or 1°C) when, its volume is kept constant., b) The principal specific heat capacity of a, gas at constant pressure (Sp) is defined as, the quantity of heat absorbed or released, for the rise or fall of temperature of unit, mass of a gas through 1K (1°C) when its, pressure is kept constant., Molar specific heat capacities of gases:, a) Molar specific heat capacity of a gas at, constant volume (Cv) is defined as the, quantity of heat absorbed or released for, the rise or fall of temperature of one mole, of the gas through 1K (or 1°C), when its, volume is kept constant., , 126, , C
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b) Molar specific heat capacity of a gas at, constant pressure (Cp) is defined as the, quantity of heat absorbed or released for, the rise or fall of temperature of one mole, of the gas through 1K (or 1°C), when its, pressure is kept constant., Relation between Principal and Molar, Specific Heat Capacities:, A relation between principal specific heat, capacity and molar specific heat capacity is, given by the following expression, Molar specific heat capacity = Molecular, weight × principal specific heat capacity., i.e. Cp= M × Sp and Cv= M × Sv, where M is the molecular weight of the gas., Table 7.4 lists values of molar specific, heat capacity for some commonly known gases., Table 7.4: Molar specific heat capacity of, some gases., Gas, CP, CV, -1, -1, (J mol K ) (J mol-1 K-1), He, 20.8, 12.5, H2, 28.8, 20.4, N2, 29.1, 20.8, 29.4, 21.1, O2, CO2, 37.0, 28.5, , = 4×10 × 300 J, ... Q = 12000 J, 7.6.4 Heat Capacity (Thermal Capacity):, Heat capacity or thermal capacity of a, body is the quantity of heat needed to raise or, lower the temperature of the whole body by, 1°C (or 1K)., ∴ Thermal heat capacity can be written as, Heat received or given out, = mass × 1 × specific heat capacity, --- (7.29), Heat capacity = Q = m × s , Heat capacity (thermal capacity) is measured, in J/°C., Example 7.14: Find thermal capacity for a, copper block of mass 0.2 kg, if specific heat, capacity of copper is 290 J/kg °C., Solution: Given, m = 0.2 kg, s = 290 J/kg °C, Thermal capacity = m × s = 0.2 kg×290 J/kg °C, , =58 J/ °C, 7.7 Calorimetry:, Calorimetry is an experimental technique, for the quantitative measurement of heat, exchange. To make such measurement a, calorimeter is used. Figure 7.8 shows a simple, water calorimeter., It consists of cylindrical vessel made of, copper or aluminium and provided with a stirrer, and a lid. The calorimeter is well-insulated to, prohibit any transfer of heat into or out of the, calorimeter., , 7.6.3 Heat Equation:, If a substance has a specific heat capacity, of 1000 J/kg °C, it means that heat energy of, 1000 J raises the temperature of 1 kg of that, substance by 1°C or 6000 J will raise the, temperature of 2 kg of the substance by 3 °C. If, the temperature of 2 kg mass of the substance, falls by 3 °C, the heat given out would also, be 6000 J. In general we can write the heat, equation as, Heat received or given out (Q) = mass, (m) × temperature change (∆t) × specific heat, capacity (s)., or Q = m × DT × s , --- (7.28), Example 7.13: If the temperature of 4 kg, mass of a material of specific heat capacity, 300 J/ kg °C rises from 20 °C to 30 °C. Find the, Fig. 7.8: Calorimeter., heat received., One important use of calorimeter is to, Solution:, determine the specific heat of a substance using, Q = 4 kg × (30-20) °C × 300 J/kg °C, , 127
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the principle of conservation of energy., Here we are dealing with heat energy and the, system is isolated from surroundings. Therefore,, heat gained is equal to the heat lost., In the technique known as the “method, of mixtures”, a sample 'A' of the substance is, heated to a high temperature which is accurately, measured. The sample 'A' is then placed quickly, in the calorimeter containing water. The contents, are stirred constantly until the mixture attains a, final common temperature. The heat lost by the, sample 'A' will be gained by the water and the, calorimeter. The specific heat of the sample 'A', of the substance can be calculated as under:, Let, m1 = mass of the sample 'A', m2 = mass of the calorimeter and the stirrer, m3 = mass of the water in calorimeter, s1 = specific heat capacity of the substance of, sample 'A', s2 = specific heat capacity of the material of, calorimeter (and stirrer), s3 = specific heat capacity of water, T1 = initial temperature of the sample 'A', T2 = initial temperature of the calorimeter, stirrer and water, T = final temperature of the combined system, We have the data as follows:, Heat lost by the sample 'A' = m1s1 (T1- T), Heat gained by the calorimeter and the stirrer, = m2s2 (T - T2), Heat gained by the water = m3s3 (T - T2), Assuming no loss of heat to the, surroundings, the heat lost by the sample goes, into the calorimeter, stirrer and water. Thus, writing heat equation as,, m1s1(T1- T), = m2s 2(T - T2) + m3s3(T - T2) ---(7.30), Knowing the specific heat capacity of, water (s3 = 4186 J kg-1 K-1) and copper (s2 = 387, J kg-1 K-1) being the material of the calorimeter, and the stirrer, one can calculate specific heat, capacity (s1) of material of sample 'A', from Eq., (7.30) as, , s1 �, , (m2 s2 � m3 s3 )(T � T2 ), m1 (T1 � T ), , --- (7.31), , Also, one can find specific heat capacity, of water or any liquid using the following, expression, it the specific heat capacity of the, material of calorimeter and sample is known, m s (T � T ) m2 s2, s3 � 1 1 1, �, --- (7.32), m3 (T � T2 ), m3, Note - In the experiment, the heat from the solid, sample 'A' is given to the liquid and therefore, the sample should be denser than the liquid, so, that sample does not float on the liquid., Example 7.15: A sphere of aluminium of 0.06, kg is placed for sufficient time in a vessel, containing boiling water so that the sphere is, at 100 °C. It is then immediately transferred to, 0.12 kg copper calorimeter containing 0.30 kg, of water at 25 °C. The temperature of water rises, and attains a steady state at 28 °C. Calculate, the specific heat capacity of aluminium., (Specific heat capacity of water, sw = 4.18 ×, 103J kg-1 K-1, specific heat capacity of copper, -1 -1, sCu = 0.387×103 J kg K ), Solution : Given, Mass of aluminium sphere = m1 = 0.06 kg, Mass of copper calorimeter = m2= 0.12 kg, Mass of water in calorimeter, = m3= 0.30 kg, Specific heat capacity of copper, = sCu = s2 = 0.387×103 J kg-1 K-1, Specific heat capacity of water, = sw = s3= 4.18×103 J kg-1 K-1, Initial temperature of aluminium sphere, = T1 =100°C, Initial temperature of calorimeter and, water = T2= 25°C, Final temperature of the mixture, = T = 28°C, We have, , 128
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(ice) to liquid (water)., , (m2 s2 � m3 s3 )(T � T2 ), m1 (T1 � T ), , Temperature T (0C), , �� 0.12 � 387 � � � 0.30 � 4180 � �� � 28 � 25 �, =�, (0.06 )(100 � 28), , � 46.44 � 1254 � � 3 = 3901.32, =, (0.06 ) � 72, -1, , = 903.08 J kg K, , 4.32, , A, (0,0), , -1, , ∴ Specific heat capacity of aluminium is, 903.08 J kg-1 K-1., 7.8 Change of State:, Matter normally exists in three states: solid,, liquid and gas. A transition from one of these, states to another is called a change of state. Two, common changes of states are solid to liquid and, liquid to gas (and vice versa). These changes, can occur when exchange of heat takes place, between the substance and its surroundings., , Activity, To understand the process of change of, state, Take some cubes of ice in a beaker., Note the temperature of ice (0 °C). Start, heating it slowly on a constant heat source., Note the temperature after every minute., Continuously stir the mixture of water and, ice. Observe the change in temperature., Continue heating even after the whole of, ice gets converted into water. Observe, the change in temperature as before till, vapours start coming out. Plot the graph, of temperature (along y-axis) versus time, (along x-axis). You will obtain a graph, of temperature versus time as shown in, Fig. 7.9., , Analysis of observations :, 1) From point A to B:, There is no change in temperature from, point A to point B, this means the temperature, of the ice bath does not change even though, heat is being continuously supplied. That is the, temperature remains constant until the entire, amount of the ice melts. The heat supplied is, being utilised in changing the state from solid, , C, , B, , ...., ...., ...., ...., ...., ...., ...., , s1 �, , D, , Time (t) (s), , Fig. 7.9 : Variation of temperature with time., a) The change of state from solid to liquid is, called melting and from liquid to solid is, called solidification., b) Both the solid and liquid states of the, substance co-exist in thermal equilibrium, during the change of states from solid to, liquid or vice versa., c) The temperature at which the solid and, the liquid states of the substance are in, thermal equilibrium with each other is, called the melting point of solid (here ice), or freezing point of liquid (here water). It, is characteristic of the substance and also, depends on pressure., d) The melting point of a substance at one, standard atmospheric pressure is called its, normal melting point., e) At one standard atmospheric pressure, the, freezing point of water and melting point, of ice is 0 °C or 32°F. The freezing point, describes the liquid to solid transition, while melting point describes solid-toliquid transition., 2) From point B to D:, The temperature begins to rise from point, B to point C, i.e., after the whole of ice gets, converted into water and we continue further, heating. We see that temperature begins to, rise. The temperature keeps on rising till it, reaches point C i.e., nearly 100 °C. Then it, again becomes steady. It is observed that the, temperature remains constant until the entire, amount of the liquid is converted into vapour., The heat supplied is now being utilized to, change water from liquid state to vapour or, gaseous state., a) The change of state from liquid to vapour, , 129
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is called vapourisation while that from, vapour to liquid is called condensation., b) Both the liquid and vapour states of the, substance coexist in thermal equilibrium, during the change of state from liquid to, vapour., c) The temperature at which the liquid and, the vapour states of the substance coexist, is called the boiling point of liquid,, here water or steam point. This is also, the temperature at which water vapour, condenses to form water., d) The boiling point of a substance at one, standard atmospheric pressure is called its, normal boiling point., Can you tell?, 1. What after point D in graph ? Can steam, be hotter than 100 °C ?, 2. Why steam at 100 °C causes more harm, to our skin than water at 100 °C?, , is more. Hence the rate of losing such molecules, to atmosphere will be larger. Thus, higher is the, temperature of the liquid, greater is the rate of, evaporation. Since faster molecules are lost, the, average kinetic energy of the liquid is reduced, and hence the temperature of the liquid is, lowered. Hence the phenomenon of evaporation, gives a cooling effect to the remaining liquid., Since evaporation takes place from the surface, of a liquid, the rate of evaporation is more if the, area exposed is more and if the temperature of, the liquid is higher., You might have seen that if your mother, wants her sari/clothes to dry faster, she does, not fold them. More is the area exposed, faster, is the drying because the water gets evaporated, faster. The presence of wind or strong breeze, and content of water vapour in the atmosphere, are two other important factors determining the, drying of clothes but we do not refer to them here., Before giving an injection to a patient,, normally a spirit swab is used to disinfect the, region. We feel a cooling effect on our skin due, to evaporation of the spirit as explained before., , Do you know ?, , Activity, , You must have seen that water spilled, on floor dries up after some time. Where does, the water disappear? It is converted into water, vapour and mixes with air. We say that water, has evaporated. You also know that water can be, converted into water vapour if you heat the water, till its boiling point. What is then the difference, between boiling and evaporation?, Both evaporation and boiling involve, change of state, evaporation can occur at any, temperature but boiling takes place at a fixed, temperature for a given pressure, unique for each, liquid. Evaporation takes place from the surface, of liquid while boiling occurs in the whole liquid., As you know, molecules in a liquid are, moving about randomly. The average kinetic, energy of the molecules decides the temperature, of the liquid. However, all molecules do not, move with the same speed. One with higher, kinetic energy may escape from the surface, region by overcoming the interatomic forces., This process can take place at any temperature., This is evaporation. If the temperature of the, liquid is higher, more is the average kinetic, energy. Since the number of molecules is fixed, it, implies that the number of fast moving molecules, , Activity to understand the dependence, of boiling point on pressure, Take a round bottom flask, more than, half filled with water. Keep it over a burner, and fix a thermometer and steam outlet, through the cork of the flask, as shown in figure. As water, in the flask gets heated, note, that first the air, which was, dissolved in the water comes, out as small bubbles. Later, bubbles of steam form at the, bottom but as they rise to the, cooler water near the top, they, condense and disappear. Finally, as the, temperature of the entire mass of the water, reaches 100 °C, bubbles of steam reach the, surface and boiling is said to occur. The, steam in the flask may not be visible but as, it comes out of the flask, it condenses as tiny, droplets of water giving a foggy appearance., If now the steam outlet is closed for a, few seconds to increase the pressure in the, , 130
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arrangement of carbon atoms is different in the, two cases. Figure 7.10 shows the phase diagram, of water and CO2. Let us try to understand the, diagram., , flask, you will notice that boiling stops., More heat would be required to raise the, temperature (depending on the increase in, pressure) before boiling starts again. Thus, boiling point increases with increase in, pressure., Let us now remove the burner. Allow, water to cool to about 80°C. Remove the, thermometers and steam outlet. Close the, flask with a air tight cork. Keep the flask, turned upside down on a stand. Pour icecold water on the flask. Water vapours in the, flask condense reducing the pressure on the, water surface inside the flask. Water begins, to boil again, now at a lower temperature., Thus boiling point decreases with decrease, in pressure and increases with increase in, pressure., , Fig. 7.10 (a): Phase diagram of water (not, to scale)., , Can you tell?, 1. Why cooking is difficult at high altitude?, 2. Why cooking is faster in pressure cooker?, 7.8.1 Sublimation:, Have you seen what happens when, camphor is burnt? All substances do not pass, through the three states: solid-liquid-gas., There are certain substances which normally, pass from the solid to the vapour state directly, and vice versa. The change from solid state to, vapour state without passing through the liquid, state is called sublimation and the substance is, said to sublime. Dry ice (solid CO2) and iodine, sublime. During the sublimation process, both, the solid and vapour states of a substance, coexist in thermal equilibrium. Most substances, sublime at very low pressures., 7.8.2 Phase Diagram:, A pressure - temperature (PT) diagram, often called a phase diagram, is particularly, convenient for comparing different phases of a, substance., A phase is a homogeneous composition of, a material. A substance can exist in different, phases in solid state, e.g., you are familiar with, two phases of carbon- graphite and diamond., Both are solids but the regular geometric, , Fig. 7.10 (b): Phase diagram of CO2 (not to, scale)., i) Vapourisation curve l - v: The curve labelled, l - v represents those points where the liquid and, vapour phases are in equilibrium. Thus it is a, graph of boiling point versus pressure. Note, that the curves correctly show that at a pressure, of 1 atmosphere, the boiling points of water is, 100°C and that the boiling point is lowered for, a decreased pressure., ii) Fusion curve l - s: The curve l - s represents, the points where the solid and liquid phases, coexist in equilibrium. Thus it is a graph of the, freezing point versus pressure. At one standard, atmosphere pressure, the freezing point of water, is 0 °C as shown in Fig. 7.10 (a). Also notice, that at a pressure of one standard atmosphere, water is in the liquid phase if the temperature is, between 0 °C and 100 °C but is in the solid or, vapour phase if the temperature is below 0 °C, or above 100 °C. Note that l - s curve for water, slopes upward to the left i.e., fusion curve of, water has a slightly negative slope. This is true, , 131
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only of substances that expand upon freezing., However, for most materials like CO2, the, l - s curve slopes upwards to the right i.e., fusion, curve has a positive slope. The melting point of, CO2 is -56 °C at higher pressure of 5.11 atm., iii) Sublimation curve s - v: The curve, labelled s - v is the sublimation point versus, pressure curve. Water sublimates at pressure, less than 0.0060 atmosphere, while carbon, dioxide, which in the solid state is called dry, ice, sublimates even at atmospheric pressure at, temperature as low as -78 °C., iv) Triple point: The temperature and pressure, at which the fusion curve, the vapourisation, curve and the sublimation curve meet and all the, three phases of a substance coexist is called the, triple point of the substance. That is, the triple, point of water is that point where water in solid,, liquid and gaseous states coexist in equilibrium, and this occurs only at a unique temperature and, pressure. The triple point of water is 273.16 K, and 6.11×10-3 Pa and that of CO2 is -56.6 °C and, 5.1×10-5 Pa., 7.8.3 Gas and Vapour:, The terms gas and vapour are sometimes, used quite randomly. Therefore, it is important, to understand the difference between the two., A gas cannot be liquefied by pressure alone,, no matter how high the pressure is. In order, to liquefy a gas, it must be cooled to a certain, temperature. This temperature is called critical, temperature., Critical temperatures for some common gases, and water vapour are given in Table 7.5. Thus,, nitrogen must be cooled below -147 °C to, liquefy it by pressure., Table 7.5: Critical Temperatures of some, common gases and water vapour., Gas, Air, N2, O2, CO2, Water vapour, , Critical Temperature, (K), (°C), -190, 83, -147, 126, -118, 155, 31.1, 241.9, 374, 647, , Gas and vapour can thus be defined as1) A substance which is in the gaseous phase, and is above its critical temperature is called, a gas., 2) A substance which is in the gaseous phase, and is below its critical temperature is called, a vapour., Vapour can be liquefied simply by, increasing the pressure, while gas cannot., Vapour also exerts pressure like a gas., 7.8.4 Latent Heat:, Whenever there is a change in the state of, a substance, heat is either absorbed or given out, but there is no change in the temperature of the, substance., Latent heat of a substance is the quantity, of heat required to change the state of unit, mass of the substance without changing its, temperature., Thus if mass m of a substance undergoes, a change from one state to the other then the, quantity of heat absorbed or released is given, Q = mL , --- (7.33), by, where L is known as latent heat and is, characteristic of the substance. Its SI unit is J, kg-1. The value of L depends on the pressure and, is usually quoted at one standard atmospheric, pressure., The quantity of heat required to convert, unit mass of a substance from its solid state to, the liquid state, at its melting point, without, any change in its temperature is called its, latent heat of fusion (Lf )., The quantity of heat required to convert, unit mass of a substance from its liquid state, to vapour state, at its boiling point without, any change in its temperature is called its, latent heat of vapourization (Lv )., A plot of temperature versus heat energy, for a given quantity of water is shown is Fig., 7.11., From Fig. 7.11, we see that when heat is, added (or removed) during a change of state,, the temperature remains constant. Also the, slopes of the phase lines are not all the same,, which indicates that specific heats of the various, states are not equal. For water the latent heat, , 132
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of fusion and vaporisation are Lf = 3.33×105J, kg-1 and Lv = 22.6×105J kg-1 respectively. That, is 3.33Í105J of heat is needed to melt 1kg of, ice at 0 °C and 22.6×105J of heat is needed to, convert 1 kg of water to steam at 100 °C. Hence,, steam at 100°C carries 22.6×105J kg-1 more heat, than water at 100 °C. This is why burns from, steam are usually more serious than those from, boiling water. Melting points, boiling point and, latent heats for various substances are given in, Table 7.6., , Fig. 7.11: Temperature versus heat for, water at one standard atmospheric pressure, (not to scale)., , Table 7.6 : Temperature of change of state and latent heats for various substances at one, standard atmosphere pressure., Substance, Gold, Lead, Water, Ethyl alcohol, Mercury, Nitrogen, Oxygen, , Melting point, (°C), , Lf, (×10 Jkg-1), , 1063, 328, 0, -114, -39, -210, -219, , 0.645, 0.25, 3.33, 1.0, 0.12, 0.26, 0.14, , 5, , Example 7.16: When 0.1 kg of ice at 0 °C, is mixed with 0.32 kg of water at 35 °C in a, container. The resulting temperature of the, mixture is 7.8 °C. Calculate the heat of fusion, of ice (swater = 4186 J kg-1 K-1)., Solution: Given, , mice = 0.1 kg, , mwater = 0.32 kg, , Tice = 0 °C, , Twater = 35 °C, , TF = 7.8 °C, , swater = 4186 kg K-1, Heat lost by water, = mwater swater (TF- Twater), = 0.32 kg × 4186 J × (7.8 - 35) °C, = - 36434.944 J (here negative sign, indicates loss of heat energy), Heat required to melt ice = mice Lf = 0.1×Lf, Heat required to raise temperature of water, (from ice) to final temperature, , 133, , Boiling point, Lv, 5, (°C), (×10 Jkg-1), 2660, 1744, 100, 78, 357, -196, -183, , 15.8, 8.67, 22.6, 8.5, 2.7, 2.0, 2.1, , , = mice s (T - Tice ), , = 0.1 kg×4186 J×(7.8 - 0) C°, , = 3265.08 J, Head lost = Heat gained, 36434.944 � 0.1 Lf � 3265.08, 36434.944 � 3265.08, = 3316.9864, 0.1, = 3.31698 � 105 J kg-1, , Lf �, , Do you know ?, The latent heat of vapourization is, much larger than the latent heat of fusion., The energy required to completely separate, the molecules or atoms is greater than the, energy needed to break the rigidity (rigid, bonds between the molecules or atoms) in, solids. Also when the liquid is converted, into vapour, it expands. Work has to be done, against the surrounding atmosphere to allow, this expansion.
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7.9 Heat Transfer:, Heat may be transferred from one point, of body to another in three different ways- by, conduction, convection and radiation. Heat, transferes through solids by conduction. In this, process, heat is passed on from one molecule, to other molecule but the molecules do not, leave their mean positions. Liquids and gases, are heated by convection. In this process, there, is a bodily movement of the heated molecules., In order to transfer heat by conduction and, convection a material medium is required., However transfer of heat by radiation does not, need any medium. Radiation of heat energy, takes place by electromagnetic (EM) waves that, travel with a speed of 3×108 ms-1 in the space/, vacuum . The energy from the Sun comes to us, by radiation. It may be noted that conduction is, a slow process of heat transfer while convection, is a rapid process. However radiation is the, fastest process because the transfer of heat takes, place at the speed of light., 7.9.1 Conduction:, Conduction is the process by which heat, flows from the hot end to the cold end of a solid, body without any net bodily movement of the, particles of the body., Heat passes through solids by conduction, only. When one end of a metal rod is placed in, a flame while the other end is held in hand, the, end held in hand slowly gets hotter, although, it itself is not in direct contact with flame. We, say that heat has been conducted from the hot, end to the cold end. When one end of the rod, is heated, the molecules there vibrate faster. As, they collide with their slow moving neighbours,, they transfer some of their energy by collision, to these molecules which in turn transfer energy, to their neighbouring molecules still farther, down the length of the rod. Thus the energy, of thermal motion is transferred by molecular, collisions down the rod. The transfer of heat, continues till the two ends of the rod are at the, same temperature in principle but this will take, infinite time. Normally various sections of the, rod will attain a temperature which remains, constant but not same through out the length of, , the rod. This method of heat transfer is called, conduction., Those solid substances which conduct heat, easily are called good conductors of heat e.g., silver, copper, aluminium, brass etc. All metals, are good conductors of heat. Those substances, which do not conduct heat easily are called bad, conductors of heat e.g. wood, cloth, air, paper,, etc. In general, good conductors of heat are, also good conductors of electricity. Similarly, bad conductors of heat are bad conductors of, electricity also., 7.9.1.1 Thermal Conductivity:, Thermal conductivity of a solid is a, measure of the ability of the solid to conduct, heat through it. Thus good conductors of heat, have higher thermal conductivity than bad, conductors., Suppose that one end of a metal rod is, heated (see Fig 7.12 (a)). The heat flows by, conduction from hot end to the cold end. As a, result the temperature of every section of the, rod starts increasing. Under this condition, the, rod is said to be in a variable temperature state., After some time the temperature at each section, of the rod becomes steady i.e. does not change., Note that temperature of each cross-section of, the rod is constant but not the same. This is, called steady state condition. Under steady state, condition, the temperature at points within the, rod decreases uniformly with distance from the, hot end to the cold end. The fall of temperature, with distance between the ends of the rod in the, direction of flow of heat, is called temperature, gradient., , � Temperature gradient �, , T1 � T2, x, , where T1= temperature of hot end, T2= temperature of cold end, x = length of the rod, 7.9.1.2 Coefficient of Thermal Conductivity:, Consider a cube of each side x and each face, of cross-sectional area A. Suppose its opposite, faces are maintained at temperatures T1 and T2, (T1 > T2) as shown in Fig. 7.12 (b). Experiments, show that under steady state condition, the, , 134
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quantity of heat ‘Q’ that flows from the hot face, to the cold face is, i) directly proportional to the cross-sectional, area A of the face. i.e., Q ∝ A, ii) directly proportional to the temperature, difference between the two faces i.e., Q ∝, (T1- T2), iii) directly proportional to time t (in seconds), for which heat flows i.e. Q ∝ t, iv) inversely proportional to the perpendicular, distance x between hot and cold faces i.e.,, Q ∝ 1/x, Combining the above four factors, we, have the quantity of heat, A(T1 � T2 )t, Q�, x, kA(T1 � T2 )t, --- (7.34), �Q �, x, , , SI unit of coefficient of thermal, conductivity k is J s-1 m-1 °C-1 or J s-1 m-1 K-1 and, its dimensions are [L1 M1 T-3 K-1]., From Eq. (7.34), we also have, Q kA(T1 � T2 ), �, --- (7.36), t, x, , The quantity Q/t, denoted by Pcond , is the, time rate of heat flow (i.e. heat flow per second), from the hotter face to the colder face, at right, angles to the faces. Its SI unit is watt (W). SI, unit of k can therefore be written as W m-1 °C-1, or W m-1 K-1., Using calculus, Eq. (7.36) may be written, as, dQ, dT, � �kA, dt, dx, , dT, is the temperature gradient., dx, The negative sign indicates that heat flow, where k is a constant of proportionality and is, called coefficient of thermal conductivity. Its is in the direction of decreasing temperature., value depends upon the nature of the material., dT, dQ, If A 1=, m 2 and, 1, then, =, =k, 2, If A = l m , T1-T2= 1 °C (or 1 K), t = 1 s and, dx, dt, (numerically)., x = 1 m, then from Eq. (7.34), Q = k., Hence the coefficient of thermal, Fig 7.12 (a):, conductivity of a material may also be, Section of a, defined as the rate of flow of heat per unit, metal bar in the, area per unit temperature gradient when the, steady state., heat flow is at right angles to the faces of a, thin parallel-sided slab of material., The coefficients of thermal conductivity of, some materials are given in Table 7.7., Fig 7.12 (b): Section, 7.9.1.3 Thermal Resistance (RT):, of a cube in the, Conduction rate Pcond is the amount of, steady state., energy transferred per unit time through a slab, of area A and thickness x, the two sides of the, slab being at temperatures T1 and T2 (T1 >T2), and, Thus the coefficient of thermal, is given by Eq. (7.36), conductivity of a material is defined as the, T � �T, Q, quantity of heat that flows in one second, --- (7.37), Pcond � � � kA 1 2, between the opposite faces of a cube of side, x , t, 1 m, the faces being kept at a temperature, As discussed earlier, k depends on the, difference of 1°C (or 1 K)., material of the slab. A material that readily, From Eq. (7.34), we have, transfers heat energy by conduction is a good, Qx, k�, --- (7.35) thermal conductor and has high value of k., A(T1 � T2 )t , , 135, , where
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Table 7.7: Coefficient, conductivity (k)., Substance, , of, , thermal, , Coefficient of thermal, conductivity (J s-1 m-1 K-1), Silver, 406, Copper, 385, Aluminium, 205, Steel, 50.2, Insulating brick, 0.15, Glass, 0.8, Brick and concrete, 0.8, Water, 0.8, Wood, 0.04-0.12, 0.024, Air at 0 °C, , or °C s/J and its dimensional formula is, [M-1 L-2 T3 K1]., The lower the thermal conductivity k,, the higher is the thermal resistance. RT A, material with high RT value is a poor thermal, conductor and is a good thermal insulator., Thermal resistivity ρT is the reciprocal of, thermal conductivity k and is characteristic of a, material while thermal resistance is that of slab, (or of rod) and depends on the material and on, the thickness of slab (or length of rod)., Example 7.17: What is the rate of energy, loss in watt per square metre through a glass, window 5 mm thick if outside temperature, is -20 ºC and inside temperature is 25 ºC?, (kglass = 1 W/m K), Solution : Given, kglass = 1 W/m K, T1 = 25 ºC, T2 = -20 ºC, x = 5 mm = 5 × 10-3 m, ∴ T1 -�T2 = 25 – (-20) ºC = 45 K, T1 � �T2, Q, ., We have Pcond � � � kA, x, t, ∴The rate of energy loss per square metre is, P, T � �T, � cond � �k 1 2, x, A, , In western countries , where the temperature, falls below 0 ºC in winter season, insulating the, house from the surroundings is very important., In our country, if we wish to carry cold drinks, with us for picnic or wish to bring ice-cream, from the shop to our house, we need to keep, them in containers (made up of say thermocol), that are poor thermal conductors. Hence the, concept of thermal resistance RT, similar, to electrical resistance, is introduced. The, opposition of a body, to the flow of heat through, it, is called thermal resistance. The greater the, thermal conductivity of a material, the smaller, is its thermal resistance and vice versa. Thus, bad thermal conductors are those which have, high thermal resistance., = 1W m-1 K-1 × 45 K / (5 × 10-3 m), From Eq. (7.37), = 9 × 103 W/m2, (T1 � T2 ) x, 7.9.1.4 Applications of Thermal Conductivity:, �, --- (7.38), i) Cooking utensils are made of metals, Pcond, kA , but are provided with handles of bad, We know that when a current flows through a, conductors., conductor, the ratio V/I is called the electrical , Since metals are good conductors of, resistance of the conductor where V is the, heat, heat can be easily conducted through, electrical potential difference between the ends, the base of the utensils. The handles of, of the conductor and I is the current or rate, utensils are made of bad conductors of, of flow of charge. In Eq. (7.38), (T1-T2) is the, heat (e.g., wood, ebonite etc.) so that they, temperature difference between the ends of the, can not conduct heat from the utensils to, conductor and Pcond is the rate of flow of heat., our hands., Therefore in analogy with electrical resistance, ii) Thick walls are used in the construction, (T1-T2)/ Pcond is called thermal resistance RT of, of cold storage rooms. Brick is a bad, the material i.e.,, conductor of heat so that it reduces the, x, flow of heat from the surroundings to, Thermal resistance RT =, kA, the rooms. Still better heat insulation, The SI unit of thermal resistance is °C s/ kcal, is obtained by using hollow bricks. Air, , 136
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being a poorer conductor than a brick, it, further avoids the conduction of heat from, outside., iii) To prevent ice from melting it is wrapped, in a gunny bag. A gunny bag is a poor, conductor of heat and reduces the heat, flow from outside to ice. Moreover, the, air filled in the interspaces of a gunny, bag, being very bad conductor of heat,, further avoids the conduction of heat from, outside., Low thermal conductivity can also be a, disadvantage. When hot water is poured in, a glass beaker the inner surface of the glass, expands on heating. Since glass is a bad, conductor of heat, the heat from inside does not, reach the outside surface so quickly. Hence the, outer surface does not expand thereby causing a, crack in the glass., Example 7.18: The temperature difference, between two sides of an iron plate, 2 cm thick,, is 10 °C. Heat is transmitted through the plate at, the rate of 600 kcal per minute per square metre, at steady state. Find the thermal conductivity, of iron., Solution: Given, , Solution : Given, A = 1000 cm2 = 1000 ×10-4 m2, k = 0.022 cal/ s cm °C = 0.022 ×102 cal/m °C, x = 4 mm = 0.4 ×10-2 m, T1 = 27 °C, T2 = -5 °C, From Eq. (7.34), we have, kA(T1 � T2 )t, x, Q kA(T1 � T2 ), � �, t, x, 0.022 � 102 � 1000 � 10�4 � (27 � (�5)), �, 0..4 � 10�2, � 1.76 � 103 cal / s � 1.76 kcal / s, Q�, , 7.9.2 Convection:, We have seen that heat is transmitted, through solids by conduction wherein energy, is transferred from one molecule to another but, the molecules themselves vibrating with larger, amplitude do not leave their mean positions., But in convection, heat is transmitted from one, point to another by the actual bodily movement, of the heated (energised) molecules within the, fluid., In liquids and gases heat is transmitted by, Q, 600, � 600 kcal / min m 2 �, � 10 kcal / s m 2 convection because their molecules are quite, At, 60, free to move about. The mechanism of heat, �2, x � 2 cm � 2 � 10 m, transfer by convection in liquids and gases is, described below., T1 � T2 � 10 �C, Consider water being heated in a vessel, From Eq.(7.34), we have, from below. The water at the bottom of the, kA(T1 � T2 )t, Q�, vessel is heated first and consequently its, x, density decreases i.e., water molecules at the, Q x, bottom are separated farther apart. These hot, �k �, At T1 � T2, molecules have high kinetic energy and rise, 2, �2, upward to cold region while the molecules, 10 kcal / s m � 2 � 10 m, �, from cold region come down to take their place., 10�C, Thus each molecule at the bottom gets heated, � 0.02 kcal / m s �C, and rises then cools and descends. This action, Example 7.19: Calculate the rate of loss of sets up the flow of water molecules called, heat through a glass window of area 1000 convection currents. The convection currents, cm2 and thickness of 4 mm, when temperature transfer heat to the entire mass of water. Note, inside is 27 °C and outside is -5 °C. Coefficient that transfer of heat is by the bodily/ physical, of thermal conductivity of glass is 0.022 cal/ s movement of the water molecules., cm °C., , 137
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Always remember:, The process by which heat is transmitted, through a substance from one point to, another due to the actual bodily movement, of the heated particles of the substance is, called convection., 7.9.2.1 Applications of Convection:, i) Heating and cooling of rooms, The mechanism of heating a room by, a heat convector or heater is entirely, based on convection. The air molecules, in immediate contact with the heater are, heated up. These air molecules acquire, sufficient energy and rise upward. The cool, air at the top being denser moves down to, take their place. This cool air in turn gets, heated and moves upward. In this way,, convection currents are set up in the room, which transfer heat to different parts of the, room. The same principle but in opposite, direction is used to cool a room by an airconditioner., ii) Cooling of transformers, Due to current flowing in the windings of, the transformer, enormous heat is produced., Therefore, transformer is always kept in, a tank containing oil. The oil in contact, with transformer body heats up, creating, convection currents. The warm oil comes, in contact with the cooler tank, gives heat, to it and descends to the bottom. It again, warms up to rise upward. This process is, repeated again and again. The heat of the, transformer body is thus carried away by, convection to the cooler tank. The cooler, tank, in turn loses its heat by convection to, the surrounding air., 7.9.2.2 Free and Forced Convection:, i) When a hot body is in contact with air, under ordinary conditions, like air around, a firewood, the air removes heat from the, body by a process called free or natural, convection. Land and sea breezes are, also formed as a result of free convection, currents in air., ii) The convection process can be accelerated, by employing a fan to create a rapid, , circulation of fresh air. This is called forced, convection. Example in section 7.9.2.1, are of forced convection, namely, heat, convector, air conditioner, heat radiators, in IC engine etc., 7.9.3 Radiation:, The transfer of heat energy from one, place to another via emission of EM energy, (in a straight line with the speed of light), without heating the intervening medium is, called radiation., For transfer of heat by radiation, molecules, are not needed i.e. medium is not required. The, fact that Earth receives large quantities of heat, form the Sun shows that heat can pass through, empty space (i.e., vacuum) between the Sun and, the atmosphere that surrounds the Earth . In, fact, transfer of heat by radiation has the same, properties as light (or EM wave)., A natural question arises as to how heat, transfer occurs is the absence of a medium, (i.e., molecules). All objects possess thermal, energy due to their temperature T(T > 0 K)., The rapidly moving molecules of a hot body, emit EM waves travelling with the velocity, of light. These are called thermal radiations., These carry energy with them and transfer it, to the low-speed molecules of a cold body on, which they fall. This results in an increase in, the molecular motion of the cold body and, its temperature rises. Thus transfer of heat by, radiation is a two-fold process- the conversion, of thermal energy into waves and reconversion, of waves into thermal energy by the body on, which they fall. We will learn about EM waves, in Chapter 13., 7.10 Newton’s Laws of Cooling:, If hot water in a vessel is kept on table,, it begins to cool gradually. To study how a, given body can cool on exchanging heat with, its surroundings, following experiment is, performed., A calorimeter is filled up to two third of, its capacity with boiling water and is covered., A thermometer is fixed through a hole in the, lid and its position is adjusted so that the bulb, of the thermometer is fully immersed in water., , 138
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The calorimeter vessel is kept in a constant, temperature enclosure or just in open air since, room temperature will not change much, during experiment. The temperature on the, thermometer is noted at one minute interval, until the temperature of water decreases by, about 25 °C. A graph of temperature T (along, y-axis) is plotted against time t (along x-axis)., This graph is called cooling curve (Fig 7.13 (a))., From this graph you can infer how the cooling, of hot water depends on the difference of its, temperature from that of its surroundings. You, will also notice that initially the rate of cooling, is higher and it decreases as the temperature, of the water falls. A tangent is drawn to the, curve at suitable points on the curve. The slope, of each tangent (dT/dt) gives the rate of fall of, temperature at that temperature. Taking (0,0), as the origin, if a graph of dT/dt is plotted, against corresponding temperature difference, (T-T0), the curve is a straight line as shown in, Fig 7.13 (b)., Fig 7.13 (a):, Temperature versus, time graph. lim �T, �t �0 �t, gives the slope of the, tangent drawn to the, curve at point A and, indicates the rate of, fall of temperature., , According to Newton’s law of cooling the, rate of loss of heat dT/dt of the body is directly, proportional to the difference of temperature, (T -T0) of the body and the surroundings, provided the difference in temperatures is small., Mathematically this may be expressed as, dT, � (T -T0 ), dt, dT, �, � C (T -T0 ) --- (7.39), dt, where C is constant of proportionality., Example 7.20: A metal sphere cools at the rate, of 1.6 °C/min when its temperature is 70°C. At, what rate will it cool when its temperature is, 40°C. The temperature of surroundings is 30°C., Solution: Given, T1 = 70° C, T2 = 40° C, T0 = 30° C, � dT �, � dt � � 1.6 �C / min, �1, �, According to Newton’s law of cooling, if, C is the constant of proportionality, � dT �, � dt � � C (T1 -T0 ), �1, �, or, 1.6 � C (70 � 30), 1.6, �C �, � 0.04 / min, 40, � dT �, Also �, � � C (T2 -T0 ), � dt �2, � 0.04(40 � 30) � 0.4 � C/ min, Thus the rate of cooling drops by a factor of, four when the difference in temperature of the, metal sphere and its surroundings drops by a, factor of four., , Fig 7.13 (b):, Rate of change of, temperature versus, time graph., , Internet my friend, The above activity shows that a hot body, loses heat to its surroundings in the form of heat, radiation. The rate of loss of heat depends on, the difference in the temperature of the body, and its surroundings. Newton was the first to, study the relation between the heat lost by a, body in a given enclosure and its temperature, in a systematic manner., , 139, , 1. https://hyperphysics.phy-astr.gsu.edu/, hbase/hframe.html, 2. https://youtu.be/7ZKHc5J6R5Q, 3. https://physics.info/expansion
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ises, , erc, , Ex, , Exercises, , 1. Choose the correct option., iv) What is absolute zero?, i) Range of temperature in a clinical v) Derive the relation between three, thermometer, which measures the, coefficients of thermal expansion., temperature of human body, is, vi) State applications of thermal expansion., (A)70 ºC to 100 ºC, vii) Why do we generally consider two, (B) 34 ºC to 42 ºC, specific heats for a gas?, (C) 0 ºF to 100 ºF, viii) Are freezing point and melting point, (D) 34 ºF to 80 ºF, same with respect to change of state ?, ii) A glass bottle completely filled with water, Comment., is kept in the freezer. Why does it crack?, ix) Define (i) Sublimation (ii) Triple point., (A) Bottle gets contracted, x) Explain the term 'steady state'., (B) Bottle is expanded, of, thermal, xi) Define, coefficient, (C) Water expands on freezing, conductivity. Derive its expression., (D) Water contracts on freezing, xii) Give any four applications of thermal, iii) If two temperatures differ by 25 °C on, conductivity in every day life., Celsius scale, the difference in temperature xiii) Explain the term thermal resistance., on Fahrenheit scale is, State its SI unit and dimensions., (A) 65° , (B) 45°, xiv) How heat transfer occurs through, (D) 25°, (C) 38° , radiation in absence of a medium?, iv) If α, β and γ are coefficients of linear, area xv) State Newton’s law of cooling and, l and volume expansion of a solid then, explain how it can be experimentally, (A) α:β:γ 1:3:2 , (B) α:β:γ 1:2:3, verified., (C) α:β:γ 2:3:1 , (D) α:β:γ 3:1:2, xvi) What is thermal stress? Give an example, v) Consider the following statementsof disadvantages of thermal stress in, (I) The coefficient of linear expansion has, practical use?, dimension K -1, xvii) Which materials can be used as thermal, (II) The coefficient of volume expansion, insulators and why?, -1, has dimension K, 3. Solve the following problems., (A) I and II are both correct , i) A glass flask has volume 1×10-4 m3., (B) I is correct but II is wrong, It is filled with a liquid at 30 ºC., (C) II is correct but I is wrong , If the temperature of the system is raised, (D) I and II are both wrong, to 100 ºC, how much of the liquid, vi) Water falls from a height of 200 m. What is, will overflow. (Coefficient of volume, the difference in temperature between the, expansion of glass is 1.2×10-5 (ºC)-1, water at the top and bottom of a water fall, while that of the liquid is 75×10-5 (ºC)-1 )., given that specific heat of water is 4200 J, , kg-1 °C-1?, , [Ans : 516.6 × 10-8 m3], (A) 0.96°C, (B) 1.02°C, ii) Which will require more energy, heating, (C) 0.46°C, (D) 1.16°C, a 2.0 kg block of lead by 30 K or heating, 2. Answer the following questions., a 4.0 kg block of copper by 5 K? (slead =, i) Clearly state the difference between heat, 128 J kg-1 K-1, scopper = 387 J kg-1 K-1) , and temperature?, , [Ans : copper], ii) How a thermometer is calibrated ?, iii) Specific latent heat of vaporization of, iii) What are different scales of temperature?, water is 2.26 × 106 J/kg. Calculate the, What is the relation between them?, energy needed to change 5.0 g of water, , 140
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into steam at 100 ºC. , , [Ans : 11.3 × 103 J], iv) A metal sphere cools at the rate of, 0.05 ºC/s when its temperature is 70, ºC and at the rate of 0.025 ºC/s when, its temperature is 50 ºC. Determine the, temperature of the surroundings and find, the rate of cooling when the temperature, of the metal sphere is 40 ºC. , , [Ans : 30 ºC, 0.0125 ºC/s], v) The volume of a gas varied linearly with, absolute temperature if its pressure is, held constant. Suppose the gas does not, liquefy even at very low temperatures, at, what temperature the volume of the gas, will be ideally zero? , , [Ans : -273.15 ºC], vi) In olden days, while laying the rails for, trains, small gaps used to be left between, the rail sections to allow for thermal, expansion. Suppose the rails are laid at, room temperature 27 ºC. If maximum, temperature in the region is 45 ºC and, the length of each rail section is 10 m,, what should be the gap left given that, α = 1.2 × 10-5 K-1 for the material of the, rail section?, , [Ans : 2.16 mm], vii) A blacksmith fixes iron ring on the rim of, the wooden wheel of a bullock cart. The, diameter of the wooden rim and the iron, ring are 1.5 m and 1.47 m respectively, at room temperature of 27 ºC. To what, temperature the iron ring should be, heated so that it can fit the rim of the, wheel (αiron = 1.2×10-5 K-1)., , , [Ans: 1727.7 °C ], viii) In a random temperature scale X, water, boils at 200 °X and freezes at 20 °X., Find the boiling point of a liquid in this, scale if it boils at 62 °C. , , [Ans: 131.6°X], ix) A gas at 900°C is cooled until both, its pressure and volume are halved., Calculate its final temperature. , , [Ans: 293.29K], , x) An aluminium rod and iron rod show 1.5, m difference in their lengths when heated, at all temperature. What are their lengths, at 0 °C if coefficient of linear expansion, for aluminium is 24.5×10-6 /°C and for, iron is 11.9×10-6 /°C , , [Ans: 1.417m, 2.917m], xi) What is the specific heat of a metal if 50, cal of heat is needed to raise 6 kg of the, metal from 20°C to 62 °C ?, , [Ans: s = 0.198 cal/kg °C], xii) The rate of flow of heat through a copper, rod with temperature difference 30 °C is, 1500 cal/s. Find the thermal resistance, of copper rod., , [Ans: 0.02 °C s cal], xiii) An electric kettle takes 20 minutes to, heat a certain quantity of water from 0°C, to its boiling point. It requires 90 minutes, to turn all the water at 100°C into steam., Find the latent heat of vaporisation., (Specific heat of water = 1cal/g°C), [Ans: 450 cal/g], , xiv) Find the temperature difference between, two sides of a steel plate 4 cm thick,, when heat is transmitted through the, plate at the rate of 400 k cal per minute, per square metre at steady state. Thermal, conductivity of steel is 0.026 kcal/m s K., , [Ans:10.26°C or 10.26 K], xv) A metal sphere cools from 80 °C to 60, °C in 6 min. How much time with it take, to cool from 60 °C to 40 °C if the room, temperature is 30°C?, [Ans: 10 min], , , 141, , ***
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8., , Sound, , Can you recall?, 1. What type of wave is a sound wave? , 3. What are reverberation and echo? , 8.1 Introduction:, We are all aware of the ripples created on the, surface of water when a stone is dropped in it., The water molecules oscillate up and down, around their equilibrium positions but they do, not move from one point to another along the, surface of water. The disturbance created by, dropping the stone, however travels outwards., This type of wave is a periodic and regular, disturbance in a medium which does not cause, any flow of material but causes the flow of, energy and momentum from one point to, another. There are different types of waves and, not all types require material medium to travel, through. We know that light is a type of wave, and it can travel through vacuum. Here we will, first study different types of waves, learn about, their common properties and then study sound, waves in particular., Types of waves:, (i) Mechanical waves: A wave is said to be, mechanical if a material medium is essential, for its propagation. Examples of these types, of waves are water waves, waves along a, stretched string, seismic waves, sound waves,, etc., (ii) EM waves: These are generated due to, periodic vibrations in electric and magnetic, fields. These waves can propagate through, material media, however, material medium is, not essential for their propagation. These will, be studied in Chapter 13., (iii) Matter waves: There is always a wave, associated with any object if it is in motion., Such waves are matter waves. These are, studied in quantum mechanics., Travelling or progressive waves are, waves in which a disturbance created at, one place travels to distant points and keeps, travelling unless stopped by some external, , 2. Can sound travel in vacuum?, 4. What is meant by pitch of sound?, agencies. In such types of waves energy gets, transferred from one point to another. Water, waves mentioned above are travelling waves., They keep travelling outward from the point, where stone was dropped until they are stopped, by walls of the container or the boundary of the, water body. Other type of waves are stationary, waves about which we will learn in XIIth, standard., 8.2 Common Properties of all Waves:, The properties described below are valid for, all types of waves, however, here they are, described for mechanical waves., 1) Amplitude (A): Amplitude of a wave motion, is the largest displacement of a particle of the, medium through which the wave is propagating,, from its rest position. It is measured in metre, in SI units., 2) Wavelength (l): Wavelength is the distance, between two successive particles which are, in the same state of vibration. It is further, explained below. It is measured in metre., 3) Period (T): Time required to complete one, vibration by a particle of the medium is the, period T of the wave. It is measured in seconds., 4) Double periodicity: Waves possess double, periodicity. At every location the wave motion, repeats itself at equal intervals of time, hence, it is periodic in time. Similarly, at any given, instant, the form of wave repeats at equal, distances hence, it is periodic in space. In, this way wave motion is a doubly periodic, phenomenon i.e periodic in time and periodic, in space., 5) Frequency (n): Frequency of a wave is the, number of vibrations performed by a particle, during each second. SI unit of frequency, is hertz. (Hz) Frequency is a reciprocal, 1, of time period, i.e., n =, T, , 142
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6) Velocity (v): The distance covered by a, wave per unit time is called the velocity of the, wave. During the period (T), the wave covers a, distance equal to the wavelength (l) Therefore, the magnitude of velocity of wave is given by,, distance, Magnitude of velocity =, time, wavelength, v=, period, �, T --- (8.1), 1, --- (8.2), but = n (frequency), T, --- (8.3), � v � n�, This equation indicates that, the magnitude, of velocity of a wave in a medium is constant., Increase in frequency of a wave causes decrease, in its wavelength. When a wave goes from one, medium to another medium, the frequency of, the wave does not change. In such a case speed, and wavelength of the wave change., For mechanical waves to propagate through, a medium, the medium should possess certain, properties as given below:, i) The medium should be continuous and, elastic so that the medium regains original, state after removal of deforming forces., ii) The medium should possess inertia. The, medium must be capable of storing energy, and of transferring it in the form of waves., iii) The frictional resistance of the medium, must be negligible so that the oscillations, will not be damped., 7) Phase and phase difference:, v�, , Fig. 8.1 (a): Displacement as a function of, distance along the wave., , Fig. 8.1 (b): Displacement as a function of, time., , In the Fig. 8.1 (a), displacements of various, particles along a sinusoidal wave travelling, along + ve x-axis are plotted against their, respective distances from the source (at O) at a, given instant. This plot is valid for transverse as, well as longitudinal wave., The state of oscillation of a particle is called, its phase. In order to describe the phase at a, place, we need to know (a) the displacement (b), the direction of velocity and (c) the oscillation, number (during which oscillation) of the, particle there., In Fig. 8.1 (a), particles P and Q (or E and, C or B and D) have same displacements but the, directions of the their velocities are opposite., Particles B and F have same magnitude of, displacements and same direction of velocity., Such particles are said to be in phase during, their respective oscillations. Also, these are, successive particles with this property of having, same phase. Separation between these two, particles is wavelength λ. These two successive, particles differ by '1' in their oscillation number,, i.e., if particle B is at its nth oscillation, particle, F will be at its (n +1)th oscillation as the wave is, travelling along + x direction. Most convenient, way to understand phase is in terms of angle., For a sinusoidal wave, the variation in the, displacement is a 'sine' function of distance, from the source and of time as discussed below., For such waves it is possible for us to assign, angles corresponding to the displacement (or, time)., At the instant the above graph is drawn,, the disturbance (energy) has just reached the, particle A. The phase angle corresponding, to this particle A can be taken as 0°. At this, instant, particle B has completed quarter, oscillation and reached its positive maximum, (sin θ = +1). The phase angle θ of this particle, B is πc/2 = 90° at this instant. Similarly, phase, angles of particles C and E are πc (180°) and 2πc, (360°) respectively. Particle F has completed, one oscillation and is at its positive maximum, during its second oscillation. Hence its phase, � c 5� c, c, �, angle is 2� �, . , 2, 2, , 143
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B and F are the successive particles in, the same state (same displacement and same, direction of velocity) during their respective, oscillations. Separation between these two is, wavelength (λ). Phase angle between these, two differs by 2πc. Hence wavelength is better, understood as the separation between two, particles with phase difference of 2πc., As noted above, waves possess double, periodicity. This means the displacements of, particles are periodic in space (as shown in Fig., 8.1 (a)) as well as periodic time. Figure 8.1, (b) shows the displacement of one particular, particle as a function of time., , 8.3 Transverse Waves and Longitudinal, Waves:, Progressive waves can be of two types,, transverse and longitudinal waves., Transverse waves : A wave in which, particles of the medium vibrate in a direction, perpendicular to the direction of propagation of, wave is called transverse wave. Water waves, are transverse waves, as water molecules, vibrate perpendicular to the surface of water, while the wave propagates along the surface., Characteristics of transverse waves., 1) All particles of the medium in the path of the, wave vibrate in a direction perpendicular, to the direction of propagation of the wave, with same period and amplitude., Activity :, 2) When transverse wave passes through, (1) Using axes of displacement and, a medium, the medium is divided, into alternate the crests i.e., regions of, distance, sketch two waves A and B, positive displacements and troughs i.e.,, such that A has twice the wavelength, regions of negative displacements., and half the amplitude of B., 3) A crest and an adjacent trough form one, (2) Determine the wavelength and, cycle of a transverse wave. The distance, amplitude of each of the two waves P, measured along the wave between any two, consecutive points in the same phase (crest, and Q shown in figure below., or trough) is called the wavelength of the, wave., 4) , Crests and troughs advance in the, medium and are responsible for transfer of, energy., 5) Transverse waves can travel through solids, Characteristics of progressive wave, and on surfaces of liquids only. They can, not travel through liquids and gases. EM, 1) All vibrating particles of the medium have, waves are transverse waves but they do, same amplitude, period and frequency., not require material medium for, 2) State of oscillation i.e., phase changes from, propagation., particle to particle., Example 8.1: The speed of sound in air is 330 6) When transverse waves advance through a, medium there is no change in the pressure, m/s and that in glass is 4500 m/s. What is the, and density at any point of medium,, ratio of the wavelength of sound of a given, however shape changes periodically., frequency in the two media?, 7) If vibrations of all the particles along the, Solution:, vair = n λair, path of a wave are constrained to be in, , vglass = nλ glass, a single plane, then the wave is called, �air, v air, 330, �2, polarised wave. Transverse wave can be, �, =, �, � 7.33 � 10, polarised., �glass v glass 4500, �2, 8) Medium conveying a transverse wave, � 0.0733 � 7.33 � 10, must possess elasticity of shape., , 144
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Longitudinal waves : A wave in which, particles of the medium vibrate in a direction, parallel to the direction of propagation of wave, is called longitudinal wave. Sound waves are, longitudinal waves., Characteristics of longitudinal waves:, 1) All the particles of medium along the path, of the wave vibrate in a direction parallel, to the direction of propagation of wave, with same period and amplitude., 2) When longitudinal wave passes through, a medium, the medium is divided into, regions of alternate compressions and, rarefactions. Compression is the region, where the particles of medium are crowded, (high pressure zone), while rarefaction is, the region where the particles of medium, are more widely separated, i.e. the medium, gets rarefied (low pressure zone)., 3) A compression and adjacent rarefaction, form one cycle of longitudinal wave. The, distance measured along the wave between, any two consecutive points having the, same phase is the wavelength of wave., 4) For propagation of longitudinal waves,, the medium should possess the property, of elasticity of volume. Thus longitudinal, waves can travel through solids. liquids, and gases. Longitudinal wave can not, travel through vacuum or free space., 5) The compression and rarefaction advance, in the medium and are responsible for, transfer of energy., 6) When longitudinal wave advances through, a medium there are periodic variations, in pressure and density along the path of, wave and also with time., 7) Longitudinal waves can not be polarised,, as the direction of vibration of particles, and direction of propagation of wave are, same or parallel., 8.4 Mathematical Expression of a Wave:, Let us describe a progressive wave, mathematically. Since it is a progressive wave,, we require a function of both the position x and, time t. This function will describe the shape, of the wave at any instant of time. Another, , requirement of the function is that it should, describe the motion of the particle of the medium, at that point. A sinusoidal progressive wave can, be described by a sinusoidal function. Let us, assume that the progressive wave is transverse, and, therefore, the position of the particle of the, medium is described by a fixed value of x. The, displacement from the equilibrium position can, be described by y. Such a sinusoidal wave can, be written as follows:, y (x,t) = a sin (kx - ωt + φ) , --- (8.4), Hence a, k, ω and φ are constants., Let us see the justification for writing this, equation. At a particular instant say t = to,, y (x, t0) = a sin (kx - ωt0 + φ), = a sin (kx + constant ), Thus the shape of the wave at t = t0, as a, function of x is a sine wave., Also, at a fixed location x = x0,, y (x0,t) = a sin (kx0-ωt + φ), = a sin (constant - ωt), Hence the displacement y, at x = x0 varies, as a sine function., This means that the particles of the medium,, through which the wave travels, execute simple, harmonic motion around their equilibrium, position. In addition x must increase in the, positive direction as time t increases, so as to, keep (kx-ωt + φ) a constant. Thus the Eq. (8.4), represents a wave travelling along the positive, x axis. A wave represented by, y(x, t) = a sin (kx + ωt + φ), --- (8.5), is a wave travelling in the direction of the, negative x axis., Symbols in Eq. (8.4):, y (x, t) is the displacement as a function of, position (x) and time (t), a is the amplitude of the wave., ω is the angular frequency of the wave, k is the angular wave number, (kx0- ωt + φ) is the argument of the, sinusoidal wave and is the phase of the particle, at x at time t., , 145
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8.5 The Speed of Travelling Waves, Table 8.1: Speed of Sound in Gas, Liquids,, Speed of a mechanical wave depends and Solids, upon the elastic properties and density of the, Medium, Speed (m/s), medium. The same medium can support both, Gases, transverse and longitudinal waves which have, Air [0°C], 331, different speeds., Air, [20°C], 343, 8.5.1 The speed of transverse waves, Helium, 965, The speed of a wave is determined by, Hydrogen, 1284, the restoring force produced in the medium, Liquids, when it is disturbed. The speed also depends, Water (0°C), 1402, on inertial properties like mass density of the, Water (20°C), 1482, medium. The waves produced on a string are, Seawater, 1522, transverse waves. In this case the restoring, force is provided by the tension T in the string., Solids, The inertial property i.e. the linear mass density, Vulcanised Rubber 54, m, can be determined from the mass of string M, Copper, 3560, and its length L as m = M/L. The formula for, Steel, 5941, speed of transverse wave on stretched string is, Granite, 6000, given by, Aluminium, 6420, T, --- (8.6), m , The derivation of the formula is beyond the, scope of this book., The important point here is that the speed of a, transverse wave depends only on the properties, of the string, T and m. It does not depend on, wavelength or frequency of the wave., 8.5.2 The speed of longitudinal waves, In case of longitudinal waves, the particles, of the medium oscillate forward and backward, along the direction of wave propagation. This, causes compression and rarefaction which, travel in the medium as the medium possess, elastic property., Speed of sound in liquids and solids is, higher than that in gases. The speed of sound, as a longitudinal wave in an ideal gas is given, by Newton’s formula as discussed below., Speed of sound in different media is given in, table below., v=, , Always remember:, When a sound wave goes from one, medium to another its velocity changes, along with its wavelength. Its frequency,, which is decided by the source remains, constant., , 8.5.3 Newton’s formula for velocity of sound:, Propagation of longitudinal waves was, studied by Newton. Sound waves travel, through a medium in the form of compressions, and rarefactions. The density of medium is, greater at the compression while being smaller, in the rarefaction. Hence the velocity of sound, depends on elasticity and density of the medium., Newton formulated the relation as, E, --- (8.7), � , where E is the proper modulus of elasticity of, medium and ρ is the density of medium., Newton assumed that, during propagation, of sound, there is no change in the average, temperature of the medium. Hence sound, wave propagation in air is an isothermal, process (temperature remaining constant ) and, isothermal elasticity should be considered., The volume elasticity of air determined under, isothermal change is called isothermal bulk, modulus and is equal to the atmospheric, pressure ‘P’. Hence Newtons formula for speed, of sound in air is given by, v�, , v�, , 146, , P, � --- (8.8)
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As atmospheric pressure is given by P=hdg, and at NTP,, h = 0.76 m of Hg, d = 13600 kg/m3-density of mercury, ρ = 1.293 kg/m3- density of air, g = 9.8 m/s2, and, v�, , 0.76 � 13600 � 9.8, 1.293, , v = 279.9 m/s at NTP., This is the value of velocity of sound, according to Newton’s formula. But the, experimental value of velocity of sound at 00C, as determined earlier by a number of scientists, is 332 m/s. The difference between predicted, value by Newton’s formula and experimental, value is large and it is not due to experimental, error. The Experimental value is 16% greater, than the value given by the formula. Newton, could not give satisfactory explanation of this, discrepancy. It was resolved by French physicist, Pierre Simon Laplace (1749-1827)., Example 8.2: Suppose you are listening to an, out-door live concert sitting at a distance of 150, m from the speakers. Your friend is listening, to the live broadcast of the concert in another, country and the radio signal has to travel 3000, km to reach him. Who will hear the music first, and what will be the time difference between, the two? Velocity of light =3×108 m/s and that, of sound is 330m/s., Solution: Time taken by sound to reach you, 150, = =, s 0.4546, 330, Time taken by the broadcasted sound (which is, done by EM waves having velocity =3×108m/s), 3000 km, 3 � 103, �, �, � 10�2 s, 5, 5, 3 � 10 km / s 3 � 10, , process but is a rapid process. If frequency is, 256 Hz, the air is compressed and rarefied 256, times in a second. Such process must be a rapid, process. Heat is produced during compression, and is lost during rarefaction. This heat does not, get sufficient time for dissipation. Due to this, the total heat content remains the same. Such, a process is called an adiabatic process and, hence, adiabatic elasticity must be adiabatic, and not isothermal elasticity, as was assumed, by Newton., Always remember:, In isothermal process temperature, remains constant while in adiabatic, process there is neither transfer of heat, nor of mass., The adiabatic modulus of elasticity of air, is given by,, E = γP --- (8.9), where P is the pressure of the medium (air), and γ is ratio of specific heat of air at constant, pressure (Cp) to the specific heat of air at, constant volume (Cv) called as the adiabatic, ratio, i.e., γ =, , Cp, Cv, , --- (8.10), , , For air the ratio of Cp / Cv is 1.41, i.e. γ = 1.41, Newton's formula for speed of sound in air as, modified by Laplace to give, v�, , �P, �, , --- (8.11), , , Accoriding to this formula velocity of sound at, NTP is, v�, , 1.41� 0.76 � 13600 � 9.8, 1.293, , ∴ your friend will hear the sound first. The, = 332.3 m/s, time difference will be, This value is in close agreement with, = 0.4546 - 0.01, the, experimental, value. As seen above, the, = 0.4446 s., velocity of sound depends on the properties of, 8.5.4 Laplace’s correction, the medium., According to Laplace, the generation, of compression and rarefaction is not a slow, , 147
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8.5.5 Factors affecting speed of sound:, Hence for gaseous medium obeying ideal, As sound waves travel through atmosphere gas equation change in pressure has no effect, (open air), some factors related to air affect the on velocity of sound unless there is change in, temperature., speed of sound., Example 8.3: Consider a closed box of rigid, Do you know ?, walls so that the density of the air inside it, Cp, the specific heat of gas at constant, is constant. On heating, the pressure of this, enclosed air is increased from P0 to P. It is now, pressure, is defined as the quantity of heat, observed that sound travels 1.5 times faster, required to raise the temperature of unit mass, 0, than at pressure P0 calculate P/P0., of gas through 1 K when pressure remains, constant., Solution:, Cv, the specific heat of gas at constant, � Po, vP �, volume, is defined as the quantity of heat, �, required to raise the temperature of unit mass, � Po, of gas through 10 K when volume remains, vPo �, �, constant., When pressure is kept constant the, v P � 1.5 v P o, volume of the gas increases with increase in, � Po, �P, temperature. Thus additional heat is required, � 1.5, �, �, to increase the volume of gas against the, external pressure. Therefore heat required, P, P, � 2.25 o, to raise the temperature of unit mass of gas, �, �, through 10 K when pressure is kept constant, P � 2.25 Po, , is greater than the heat required when volume, (b) Effect of temperature on speed of sound, is kept constant. i.e. Cp > Cv., Suppose vo and v are the speeds of sound at, a) Effect of pressure on velocity of sound, T0 and T in kelvin respectively. Let ρ0 and ρ be, According to Laplace’s formula velocity the densities of gas at these two temperatures., of sound in air is, The velocity of sound at temperature T0 and T, �P, can be written by using Eq. (8.13),, v�, � RT0, �, v0 �, M --- M is molar mass, n = 1, If M is the mass and V is volume of air then, � RT, M, v�, ��, M, V, v, RT, � �, � PV, --- (8.12), v0, RT0, �v �, M , v, T, At constant temperature PV = constant, � �, --- (8.14), according to Boyle’s law. Also M and γ are, v0, T0 , constant, hence v = constant., This equation shows that speed of sound, Therefore at constant temperature, a, in air is directly proportional to the square root, change in pressure has no effect on velocity of, of absolute temperature. Thus, speed of sound, sound in air. This can be seen in another way., in air increases with increase in temperature., For gaseous medium, PV = nRT, n being the, Taking To= 273 K and writing T= (273 + t) K, number of moles., where t is the temperature in degree celsius., � nRT, --- (8.13) The ratio of velocity of sound in air at t 0C to, �v �, M, that at 00C is given by,, , , 148
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v, 273 � t, �, v0, 273, , �, , v, t, � 1�, v0, 273, , �, , v, � 1� � t, v0, , where � �, , 1, 273, , 1, , or, v � v 0 �1 � � t � 2, As a is very small,we can write, � 1 �, v v0 �1 � � t �, � 2 �, � 1 1 �, v � v0 �1 � �, t�, � 2 273 �, t �, �, v � v0 �1 �, �, � 546 �, v, v � v0 � 0 t, 546, But v0 =332 m/s at 00C, 332, � v � v0 �, t, 546, � v v 0 � � 0.61� t , , , --- (8.15), i.e., for 1°C rise in temperature velocity, increases by 0.61 m/s. Hence for small, variations in temperature (< 50° C), the speed, of sound changes linearly with temperature., (c) Effect of humidity on speed of sound, Humidity (moisture) in air depends upon, the presence of water vapour in it. Let ρm and ρd, be the densities of moist and dry air respectively., If vm and vd are the speeds of sound in moist air, and dry air then using Eq. (8.11)., �P, vm �, �m, and v d �, �, , vm, �, vd, , �P, �d, �d, �m, , --- (8.16), , , Moist air is always less dense than dry air,, i.e.,, , ρm< ρd, (ρm = 0.81 kg/m3(at 0°C) and, ρd= 1.29 kg/m3(at 0°C)), ... vm > vd., Thus, the speed of sound in moist air is, greater than speed of sound in dry air. i.e speed, increases with increase in the moistness of air., 8.6 Principle of Superposition of Waves:, Waves don’t display any repulsion towards, each other. Therefore two wave patterns can, overlap in the same region of the space without, affecting each other. When two waves overlap, their displacements add vectorially. This, additive rule is referred to as the principle of, superposition of waves., When two or more waves travelling, through a medium arrive at a point of medium, simultaneously, each wave produces its own, displacement at that point independent of, the others. Hence the resultant displacement, at that point is equal to the vector sum of, the displacements due to all the waves. The, phenomenon of superposition will be discussed, in detail in XIIth standard., 8.7 Echo, reverberation and acoustics:, Sound waves obey the same laws of, reflection as those of light., 8.7.1 Echo:, An echo is the repetition of the original, sound because of reflection from some rigid, surface at a distance from the source of sound., If we shout in a hilly region, we are likely to, hear echo., Why can’t we hear an echo at every place?, At 220C, the velocity of sound in air is 344 m/s., Our brain retains sound for 0.1 second. Thus for, us to hear a distinct echo, the sound should take, more than 0.1s after starting from the source, (i.e., from us) to get reflected and come back, to us., distance = speed × time, , = 344 × 0.1, , = 34.4 m., To be able to hear a distinct echo, the, reflecting surface should be at a minimum, , 149
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distance of half of the above distance i.e 17.2, m. As velocity depends on the temperature of, air, this distance will change with temperature., Example 8.4: A man shouts loudly close to a, high wall. He hears an echo. If the man is at, 40 m from the wall, how long after the shout, will the echo be heard ? (speed of sound in air, = 330 m/s), solution: The distance travelled by the sound, wave, = 2 × distance from man to wall., = 2 × 40, = 80 m., distance, ... Time taken to travel the distance =, speed, 80 m, =, 330 m / s, = 0.24 s, .. . The man will hear the echo 0.24 s after he, shouts., 8.7.2 Reverberation:, If the reflecting surface is nearer than 15, m from the source of sound, the echo joins up, with the original sound which then seems to be, prolonged. Sound waves get reflected multiple, times from the walls and roof of a closed, room which are nearer than 15 m. This causes, a single sound to be heard not just once but, continuously. This is called reverberation. It is, this the persistence of sound after the source has, switched off, as a result of repeated reflection, from walls, ceilings and other surfaces., Reverberation characteristics are important in, the design of concert halls, theatres etc., If the time between successive reflections, of a particular sound wave reaching us is small,, the reflected sound gets mixed up and produces, a continuous sound of increased loudness which, can’t be heard clearly., Reverberation can be decreased by making, the walls and roofs rough and by using curtains, in the hall to avoid reflection of sound. Chairs, and wall surfaces are covered with sound, absorbing materials. Porous cardboard sheets,, perforated acoustic tiles, gypsum boards, thick, curtains etc. at the ceilings and at the walls are, most convenient to reduce reverberation., , 8.7.3 Acoustics:, The branch of physics which deals with, the study of production, transmission and, reception of sound is called acoustics. This is, useful during the construction of theaters and, auditorium. While designing an auditorium,, proper care for the absorption and reflection of, sound should be taken. Otherwise audience will, not be able to hear the sound clearly., For proper acoustics in an auditorium the, following conditions must be satisfied., 1) The sound should be heard sufficiently, loudly at all the points in the auditorium., The surface behind the speaker should be, parabolic with the speaker at its focus; so, that the distribution of sound is uniform, in the auditorium. Reflection of sound, is helpful in maintaining good loudness, through the entire auditorium., 2) Echoes and reverberation must be, eliminated or reduced. Echoes can be, reduced by making the reflecting surfaces, more absorptive. Echo will be less if the, auditorium is full., 3) Unnecessary focusing of sound should be, avoided and there should not be any zone, of poor audibility or region of silence. For, that purpose curved surface of the wall or, ceiling should be avoided., 4) Echelon effect : It is due to the mixing of, sound produced in the hall by the echoes, of sound produced in front of regular, structure like the stairs. To avoid this, stair, type construction must be avoided in the, hall., 5) The auditorium should be sound-proof, when closed, so that stray sound can not, enter from outside., 6) For proper acoustics no sound should be, produced from the inside fittings, seats,, etc. Instead of fans, air conditioners may, be used. Soft action door closers should be, used., Acoustics observed in nature, The importance of acoustic principles goes, far beyond human hearing. Several animals use, , 150
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sound for navigation., (a) Bats depends on sound rather than light, to locate objects. So they can fly in, total darkness of caves. They emit short, ultrasonic pulses of frequency 30 kHz to, 150 kHz. The resulting echoes give them, information about location of the obstacle., (b) Dolphins use an analogous system for, underwater navigation. The frequencies, are subsonic about 100 Hz. They can sense, an object of about the size of a wavelength, i.e., 1.4 m or larger., Medical applications of acoustics, (a) Shock waves which are high pressure high, amplitude waves are used to split kidney, stones into smaller pieces without invasive, surgery. A shock wave is produced, outside the body and is then focused by a, reflector or acoustic lens so that as much, of its energy as possible converges on the, stone. When the resulting stresses in the, stone exceeds its tensile strength, it breaks, into small pieces which can be removed, easily., (b) Reflection of ultrasonic waves from, regions in the interior of body is used for, ultrasonic imaging. It is used for prenatal, (before the birth) examination, detection, of anamolous conditions like tumour etc, and the study of heart valve action., (c) At very high power level, ultrasound is, selective destroyer of pathalogical tissues, in treatment of arthritis and certain type of, cancer., Other applications of acoustics, (a) SONAR is an acronym for Sound, Navigational Ranging. This is a technique, for locating objects underwater by, transmitting a pulse of ultrasonic sound, and detecting the reflected pulse. The time, delay between transmission of a pulse and, the reception of reflected pulse indicates, the depth of the object. This system is, useful to measure motion and position of, the submerged objects like submarine., (b) Acoustic principle has important, application to environmental problems, like noise control. The design of quiet-, , mass transit vehicle involves the study, of generation and propagation of sound, in the motor’s wheels and supporting, structures., (c) We can study properties of the Earth by, measuring the reflected and refracted, elastic waves passing through its interior., It is useful for geological studies to detect, local anomalies like oil deposits etc., 8.8 Qualities of sound:, Audible sound or human response to sound:, Whenever we talk about audible sound,, what matters is how we perceive it. This is, purely a subjective attribute of sound waves., Major qualities of sound that are of our, interest are (i) Pitch, (ii) Timbre or quality and, (iii) Loudness., (i) Pitch:, This aspect refers to sharpness or shrillness, of the sound. If the frequency of sound is, increased, what we perceive is the increase in, the pitch or we feel the sound to be sharper., Tone refers to the single frequency of that wave, while a note may contain one or more than, one tones. We use the words high pitch or high, tones if frequency is higher. As sharpness is a, subjective term, sentences like “sound of double, frequency is doubly sharp” make no sense., Also, a high pitch sound need not be louder., Tones of guitar are sharper than that of a base, guitar, sound of tabla is sharper than that of, a dagga, (in general) female sound is sharper, than that of a male sound and so on., For a sound amplifier (or equaliser) when, we raise the treble knob (or treble Button), high, frequencies are boosted and if we raise bass, knob, low frequencies are boosted., (ii) Timbre (sound quality), During telephonic conversation with a, friend, (mostly) you are able to know who is, speaking at the other end even if you are not, told about who is speaking. Quite often we say,, “Couldn’t you recognise the voice?” The sound, quality in this context is called timbre. Same, song played on a guitar, a violin, a harmonium, or a piano feel significantly different and we, can easily identify that instrument. Quality, of sound of any sound instrument (including, , 151
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our vocal organ) depends upon the mixture of, tones and overtones in the sound generated by, that instrument. Even our own sound quality, during morning (after we get up) and in the, evening is different. It is drastically affected if, we are suffering from cold or cough. Concept, of overtones will be discussed during XIIth, standard., (iii) Loudness:, Intensity of a wave is a measurable, quantity which is proportional to square of, the amplitude (I ∝ A2) and is measured in, the (SI) unit of W/m2. Human perception of, intensity of sound is loudness. Obviously, if, intensity is more, loudness is more. The human, response to intensity is not linear, i.e., a sound, of double intensity is louder but not doubly, loud. This is also valid for brightness of light., In both cases, the response is approximately, logarithmic. Using this property, the loudness, (and brightness) can be measured., Under ideal conditions, for a perfectly, healthy human ear, the least audible intensity is, I0 = 10-12 W/m2. Loudness of a sound of intensity, I, measured in the unit bel is given by, � I �, Lbel � �log10 � �, --- (8.17), � I 0 � , Popular or commonly used unit for loudness is, decibel. We know, 1 decimetre or 1 dm = 0.1m., Similarly, 1 decibel or 1 db = 0.1 bel. ∴1 bel, = 10 db. Thus, loudness expressed in db is 10, times the loudness in bel, � I �, � Ldb � 10 Lbel � 10 log10 � �, � I0 �, For sound of least audible intensity I0,, �I �, Ldb �1� 0 log10 � 0 � � 10 log10 �1� � 0 --- (8.18), � I0 �, This corresponds to threshold of hearing, For sound of 10 db,, , Hence, loudness of 20 db sound is felt, double that of 10 db, but its intensity is 10, times that of the 10 db sound. Now, we feel 40, db sound twice as loud as 20 db sound but its, intensity is 100 times as that of 20 db sound, and 10000 times that of 10 db sound. This is the, power of logarithmic or exponential scale., If we move away from a (practically) point, source, the intensity of its sound varies inversely, 1, , with square of the distance, i.e., I ∝ 2 ., r, Whenever you are using earphones or jam, your mobile at your ear, the distance from the, source is too small. Obviously, such a habit for, a long time can affect your normal hearing., Example 8.5: When heard independently, two, sound waves produce sensations of 60 db and, 55 db respectively. How much will the sensation, be if those are sounded together, perfectly in, phase?, Solution:, I, I, L1 � 60 �db � 10 log10 1 ��� 1 � 106 �or I1 � 106 I 0, I0 I0, Similarly, I 2 = 105.5 I 0, As the waves combine perfectly in phase,, the vector addition of their amplitudes will be, given by A2 � ( A1 � A2 ) 2 � A12 � A22 � 2 A1 A2, As intensity is proportional to square of the, amplitude., � I � I1 � I 2 � 2 I1 I 2, , �, , � 105 I 0 101 � 100.5 � 2 101.5, , �, , � 105 I 0 10 � 3.1623 � 2 � 100.75, , �, , �, , � 24.41� 105 I 0 � 2.441� 106 I 0, , � I � � I �, 10 �10, � log10 � � �� � � 101 or I � 10 I 0, � I0 � � I0 �, , For sound of 20 db,, � I � � I �, 20 � 10 �log10 � � �� � �10, � 2 or I � 100 I 0, I, I, � 0� � 0�, , It is interesting to note that there is only a, marginal increase in the loudness., , and so on., , 152
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Table 8.2: Approximate Decibel Ratings of Some Audible Sounds, Source or description of noise, , Loudness, Ldb, , Effcet, , Extremely loud, , 160, , Jet aeroplane, near 25 m, Auto horn, within a metre, Aircraft tale, off, 60 m, , 150, , Immediate ear, damage, Rupture of eardrum, , 110, , Strongly painful, , Diesel train, 30 m, Average factory, , 80, , Highway traffic, 8 m, Conversion at a restaurant, Conversation at home, Quiet urban background sound, Quiet rural area, Whispering of leaves, 5 m, Normal breathing, , 70, 60, 50, 40, 30, 20, 10, , Threshold of hearing, , 0, , 8.9 Doppler Effect:, Have you ever heard an approaching train, and noticed distinct change in the pitch of the, sound of its whistle, when it passes away ?, Same thing similar happens when a listener, moves towards or away from the stationary, source of sound. Such a phenomenon was, first identified in 1842 by Austrian physicist, Christian Doppler (1803-1853) and is known, as Doppler effect., When a source of sound and a listener are, in motion relative to each other the frequency, of sound heard by listener is not the same as the, frequency emitted by the source., Doppler effect is the apparent change, in frequency of sound due to relative motion, between the source and listener. Doppler effect, is a wave phenomenon. It holds for sound, waves and also for EM waves. But here we, shall consider it for sound waves only., The changes is frequency can be studied under, 3 different conditions:, 1) When listener is stationary but source is, moving., 2) When listener is moving but source is, stationary., 3) When listener and source both are moving., , Uncomfortable, , Virtual silence, , Do you know ?, According to the world health, organisation a billion young people could be, at risk of hearing loss due to unsafe listening, practices. Among teenagers and young, adults aged 12-35 years (i) about 50% are, exposed to unsafe levels of sound from use, of personal audio devices and (ii) about 40%, are exposed to potentially damaging sound, levels at clubs, discotheques and bars., 8.9.1 Source Moving and Listener Stationary:, Consider a source of sound S, moving away, from a stationary listener L (called relative, recede) with velocity vs. Speed of sound waves, with respect to the medium is v which is always, positive. Suppose the listener uses a detector for, counting each wave crest that reaches it., Initially (at t = 0), source which is at point, S1 emits a crest when at distance d from the, listener see Fig. 8.2 (a). This crest reaches the, listener at time t1= d/v. Let T0 be the time period, at which the waves are emitted. Thus, at t =, T0 the source moves the distance = vs To and, reaches the point S2. Distance of S2 from the, listener is (d+vsTo). when at S2, the source emits, second crest. This crest reaches the listener at, � d � v sT0 �, t2 =T0 � �, --- (8.19), �, � v � , , 153
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Similarly at time pTo, the source emits its, (p+1)th crest (where, p is an integer, p = 1,2,3,...)., It reaches the listener at time, � d + pv sT0 �, t p+1 = pT0 + �, �, v, �, �, , Fig. 8.2 (b): Doppler effect detected when, the listener is moving and source is at rest, in the medium., Hence the listener’s detector counts p, 8.9.2 Listener Approaching a Stationary, crests in the time interval, Source with Velocity vL:, � d + pv sT0 � d, t p+1 - t1 = pT0 + �, � v, Consider a listener approaching with, v, �, �, Hence the period of wave as recorded by velocity vL towards a stationary source S as, shown in Fig. 8.2 (b). Let the first wave be, the listener is, emitted by the source at t = 0, when the listener, (t - t ), T = p+1 1, or, was at L1 at an initial distance d from the source., p, Let t1 be the instant when the listener receives, d + pv sT0 d �, �, this (wave), his position being L2. During time, - �, � pT0 +, v, v, t1, the listener travels distance vLt1 towards the, �, T =�, stationary source. In this time, the sound wave, p, travels distance � d � v L t1 � with speed v., vT, T =T0 + s 0, d � v L t1, d, v, � t1 �, ����� t1 �, v, v � vL, � v �, T =T0 �1 + s �, v�, �, Second wave is emitted by the source at t = T0, = the time period of the waves emitted by the, � v + vs �, T =T0 �, �, source. Let t2 be the instant when the listener, � v �, receives second wave. During time t2 , the, 1 1 � v �, distance travelled by the listener is v L t2 . Thus,, � = �, �, T T0 � v + v s �, the distance to be travelled by the sound to, reach the listener is then d - v L t2 ., � v �, � n = n0 �, --- (8.20), �, ∴ Sound (second wave) travels this distance, � v + vs �, d � v L t2, with, speed, v, in, time, �, where n is the frequency recorded by the listener, v, However, this time should be counted after T0,, and no is the frequency emitted by the source., If source of sound is moving towards the as the second wave was emitted at t �= �T0 ., listener with speed vs (called relative approach),, d � v L t2 � t � vT0 � d, 2, �, t, �, T, �, the second term from Eq. (8.18) onwards, will, 2, 0, v � vL, v, be negative (or will be subtracted)., d � v L t3, 2vT0 � d, Thus, in this case,, � t3 �, Similarly, t3 � 2T0 �, v, v � vL, � v �, Extending this argument to (p+1)th wave, we, n = n0 �, --- (8.21), � , can write,, v, v, s �, �, pvT0 � d, d � v L t p �1, � t p �1 �, t p �1 � pT0 �, v � vL, v, Fig. 8.2 (a): Doppler effect detected when, the source is moving and listener is at rest, in the medium., , Time duration between instances of receiving, successive waves is the observed or recorded, period T., , 154
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pvT0 � d, pvT0, d, � pT � t p �1 � t1 �, �, �, �, v � vL, v � vL v � vL, , � v �, �T � T0 �, �, � v � v L � , �, , --- (8.22), , 1 1 � v � vL �, �, �, T T0 �� v ��, , � v � vL �, --- (8.23), � n � n0 �, �, � v � , 8.9.3 Both Source and Listener are Moving:, In general when both the source and, listener are in motion, we can write the observed, frequency, , � v � vL �, n = n0 �, � --- (8.24), � v vs �, Where the upper signs (in both numerator and, denominator) should be chosen during relative, approach while lower signs should be chosen, during relative recede. It must be remembered, that ‘when you are deciding the sign for any, one of these, the other should be considered to, be at rest’., Illustration:, Consider an observer or listener and a, source moving with respective velocities vL and, vS along the same direction. In this case, listener, is approaching the source with vL (irrespective, of whether source is moving or not). Thus, the, upper, i.e., positive sign, should be chosen, for numerator. However, the source is moving, with vS away form the listener irrespective of, listener's motion. Thus the lower sign in the, denominator which is positive has to be chosen., � v + vL �, � n � no �, � , � v + vs �, , --- (8.25), , Case (I) If |vL| = |vs|, n = no. Thus there is no, Doppler shift as there is no relative motion,, even if both are moving., Case (II) If |vL| > |vs|, numerator will be greater,, n > no. This is because there is relative approach, as the listener approaches the source faster and, the source is receding at a slower rate., , Case (III) If |vL| < |vs|, n < no as now there is, relative recede (source recedes faster, listener, approaches slowly)., 8.9.4 Common Properties between Doppler, Effect of Sound and Light:, A) Wherever there is relative motion between, listener (or observer) and source (of sound, or light waves), the recorded frequency is, different than the emitted frequency., B) Recorded frequency is higher (than emitted, frequency), if there is relative approach., C) Recorded frequency is lower, if there is, relative recede., D) If vL or vs are much smaller then wave, speed (speed of sound or light) we can use, vr as relative velocity. In this case, using, Eq. (8.24), �n v r ��, , --- (8.26), , , v, �, n, where ∆n is Doppler shift or change in the, recorded frequency, i.e., |n - no| and ∆λ is, the recorded change in wavelength., n � n0 v r, �, , n, v, � v �, � n � n0 � 1 � r � , --- (8.27), v �, �, , , , Once again upper sign is to be used during, relative approach while lower sign is to be, used during relative recede., E) If velocities of source and observer, (listener) are not along the same line, their respective components along the, line joining them should be chosen for, longitudinal Doppler effect and the same, mathematical treatment is applicable., 8.9.5 , Major Differences between Doppler, Effects of Sound and Light:, A) As the speed of light is absolute, only, relative velocity between the observer and, the source matters, i.e., who is in motion is, not relevant., B) Classical and relativistic Doppler effects, are different in the case of light, while in, case of sound, it is only classical., , 155
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C) For obtaining exact Doppler shift for sound, waves, it is absolutely important to know, who is in motion., D) If wind is present, its velocity alters the, speed of sound and hence affects the, Doppler shift. In this case, component of, the wind velocity (vw) is chosen along the, line joining source and observer. This is to, be algebraically added with the velocity of, sound. Hence 'v' is to be replaced by (v ±, vw) in all the above expressions. Positive, sign to be used if v and vw are along, the same direction (remember that v is, always positive and always from source to, listener). Negative sign is to be used if v, and vw are oppositely directed., Example 8.6: A rocket is moving at a speed of, 220 m/s towards a stationary target. It emits a, wave of frequency 1200 Hz. Some of the sound, reaching the target gets reflected back to the, rocket as an echo. Calculate (1) The frequency, of sound detected by the target and (2) The, frequency of echo detected by rocket (velocity, of sound= 330 m/s.), , � v + vL �, n' = n �, �, � v �, � 330 � 220 �, � 330 ��, , n � 3600 �, , n � 6000 Hz, , The frequency of echo detected by rocket =, 6000 Hz, Example 8.7: A bat, flying at velocity VB = 12.5, m/s, is followed by a car running at velocity, VC = 50 m/s. Actual directions of the velocities, of the car and the bat are as shown in the figure, below, both being in the same horizontal plane, (the plane of the figure). To detect the car, the, bat radiates ultrasonic waves of frequency, 36 kHz. Speed of sound at surrounding, temperature is 350 m/s., , There is an ultrasonic frequency detector, fitted in the car. Calculate the frequency, Solution: Given, target stationary, i.e.,, recorded by this detector., vL = 0, vs = 220 m/s, v = 330 m/s, The ultrasonic waves radiated by the bat, n0 = 1200 Hz, are reflected by the car. The bat detects these, To find the frequency of sound detected by waves and from the detected frequency, it, the target we have to used Eq. (8.25), knows about the speed of the car. Calculate the, frequency of the reflected waves as detected by, � v �, n = n0 �, the bat. (sin 37° = cos 53° ≈ 0.6, sin 53° = cos, �, � v � vs �, 37° ≈ 0.8), � 330 �, Solution: As shown in the figure below, the, n � 1200 �, �, components of velocities of the bat and the car,, � 330 � 220 �, along the line joining them, are, n � 3600 Hz, 0, �1, The frequency of sound detected by the VC cos 53 � 50 � 0.6 � 30 �m�s �and �, target = 3600 Hz., VB cos 370 � 12.5 � 0.8 � 10�m�s �1., When echo is heard by rocket’s detector,, These should be used while calculating the, target is considered as source, doppler shifted frequencies., ... vs = 0, The frequency of sound emitted by the source, (i.e. target) is n0 = 3600 Hz, and the frequency, detected by rocket is n'. Now listener is, approaching the source and so we have to use., , 156
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v � v L � emitted frequency n0 � 38 � 103 �Hz , n =�?, n, �, n, �;, Doppler shifted frequency,, 0�, v v s � Car, the source, is approaching the listener, �, upper signs to be used during approach, lower, (bat)., signs during recede., 0, Thus, v S v=, =, 30 m/s, C cos 53, Part I: Frequency radiated by the bat n0 = 36, 0, Thus, v L v=, 10 m/s, ×103 Hz, Frequency detected by the detector in =, B cos 37, the car = n = ?, Now bat-the listener is receding while car the, � v � vL �, In this case, bat is the source which is moving, � n � n0 �, source, is, approaching, �, away from the car (receding) while the detector, � v � vs �, � 350 � 10 �, in the car is the listener, who is approaching the, � n � 38 � 103 �, �, 0, source (bat)., =, v s V=, 10 m/s and, � 350 � 30 �, B cos37, 0, =, v L V=, 30 m/s, 34, C cos 53, � 38 � 103 �, 32, The source (bat) is receding, while the listener, � v � vL �, � �40.375��103 �Hz, (car) is approaching � n � n0 �, �, � 40.375 kHz, � v � vs �, 3 � 350 � 30 �, � n � 36 � 10 �, �, � 350 � 10 �, Internet my friend, � 38 � 103 �Hz = 38 kHz, Part II: Reflected frequency, as detected by https://hyperphysics.phys-astr.gsu.edu/, hbase/hframe.html, the bat: Frequency reflected by the car is the, , Doppler shifted frequency as detected at the, car. Thus, this time, the car is the source with, ises, , erc, , Ex, , Exercises, , 1. Choose the correct alternatives, concerns should, i) A sound carried by air from a sitar to a, (A) amplify sound, (B) reflect sound, listener is a wave of following type., (C) transmit sound, (D) absorb sound, (A) Longitudinal stationary , 2. Answer briefly., (B)Transverse progressive, i), Wave motion is doubly periodic. Explain., (C) Transverse stationary , ii), What is Doppler effect?, (D) Longitudinal progressive, iii) Describe a transverse wave., ii) When sound waves travel from air to water, iv) Define a longitudinal wave., which of these remains constant ?, v), State Newton’s formula for velocity of, (A) Velocity , (B) Frequency, sound., (C) Wavelength , (D) All of above, vi) What is the effect of pressure on velocity, iii) The Laplace’s correction in the expression, of sound?, for velocity of sound given by Newton is vii) What is the effect of humidity of air on, needed because sound waves, velocity of sound?, (A) are longitudinal , viii) What do you mean by an echo?, (B) propagate isothermally, ix) State any two applications of acoustics., (C) propagate adiabatically , x), Define amplitude and wavelength of a, (D) are of long wavelength, wave., iv) Speed of sound is maximum in, xi) Draw a wave and indicate points which, (A) air , (B) water , are (i) in phase (ii) out of phase (iii), (C) vacuum, (D) solid, have a phase difference of π/2., v) The walls of the hall built for music, , 157
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xii), , Define the relation between velocity,, wavelength and frequency of wave., xiii) State and explain principle of, superposition of waves., xiv) State the expression for apparent, frequency when source of sound and, listener are, , i) moving towards each other, , ii) moving away from each other, xv) State the expression for apparent, frequency when source is stationary and, listener is, , 1) moving towards the source, , 2) moving away from the source, xvi) State the expression for apparent, frequency when listener is stationary, and source is., , i) moving towards the listener, , ii) moving away from the listener, xvii) Explain what is meant by phase of a, wave., xviii) Define progressive wave. State any four, properties., xix) Distinguish between traverse waves and, longitudinal waves., xx) Explain Newtons formula for velocity, of sound. What is its limitation?, 3. Solve the following problems., i), A certain sound wave in air has a speed, 340 m/s and wavelength 1.7 m for this, wave, calculate, a) the frequency, b) the period., , [Ans a) 200 Hz, b) 0.005s], ii), A tuning fork of frequency 170 Hz, produces sound waves of wavelength 2, m. Calculate speed of sound., , [Ans: 340 m/s], iii) An echo-sounder in a fishing boat, receives an echo from a shoal of fish, 0.45 s after it was sent. If the speed of, sound in water is 1500 m/s, how deep is, the shoal?, , [Ans : 337.5 m], iv) A girl stands 170 m away from a high, wall and claps her hands at a steady rate, so that each clap coincides with the echo, of the one before., , a) If she makes 60 claps in 1 minute,, , what value should be the speed of sound, in air?, , b) Now, she moves to another location, and finds that she should now make, 45 claps in 1 minute to coincide with, successive echoes. Calculate her distance, for the new position from the wall., , [Ans: a) 340 m/s b) 255 m], v), Sound wave A has period 0.015 s, sound, wave B has period 0.025. Which sound, has greater frequency?, , [Ans : A], vii) At what temperature will the speed of, sound in air be 1.75 times its speed at, N.T.P?, , [Ans: 836.06 K = 563.06 °C], viii) A man standing between 2 parallel eliffs, fires a gun. He hearns two echos one, after 3 seconds and other after 5 seconds., The separation between the two cliffs is, 1360 m, what is the speed of sound?, , [Ans:340m/s], ix) If the velocity of sound in air at a given, place on two different days of a given, week are in the ratio of 1:1.1. Assuming, the temperatures on the two days to be, same what quantitative conclusion can, your draw about the condition on the, two days?, , [Ans: Air is moist on one day, , and ρdry = 1.12 ρdry = 1.21 ρmoist ], x), A police car travels towards a stationary, observer at a speed of 15 m/s. The siren, on the car emits a sound of frequency 250, Hz. Calculate the recorded frequency., The speed of sound is 340 m/s., , [Ans : 261.54 Hz], xi) The sound emitted from the siren of an, ambulance has frequency of 1500 Hz., The speed of sound is 340 m/s. Calculate, the difference in frequencies heard by a, stationary observer if the ambulance, initially travels towards and then away, from the observer at a speed of 30 m/s., , [Ans : 266.79 Hz], , 158, , ***
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Optics, , 9., Can you recall?, 1. What are laws of reflection and refraction?, 2. What is dispersion of light?, 3. What is refractive index?, 9.1 Introduction:, “See it to believe it” is a popular saying., In order to see, we need light. What exactly, is light and how are we able to see anything?, We will explore it in this and next standard., We know that acoustics is the term used for, science of sound. Similarly, optics is the term, used for science of light. There is a difference, in the nature of sound waves and light waves, which you have seen in chapter 8 and will learn, in chapter 13., 9.2 Nature of light:, Earlier, light was considered to be that form, of radiant energy which makes objects visible, due to stimulation of retina of the eye. It is a, form of energy that propagates in the presence, or absence of a medium, which we now call, waves. At the beginning of the 20th century, it, was proved that these are electromagnetic (EM), waves. Later, using quantum theory, particle, nature of light was established. According to, this, photons are energy carrier particles. By an, experiment using countable number of photons,, it is now an established fact that light possesses, dual nature. In simple words we can say that, light consists of energy carrier photons guided, by the rules of EM waves. In vacuum, these, waves (or photons) travel with a speed of, In a material medium, the speed of EM, waves is given by, , ,, , where permittivity ε and permeability µ, are constants which depend on the electric, and magnetic properties of the medium., c, , The ratio n =, is called the absolute, v, refractive index and is the property of the, medium., , 4. What is total internal reflection?, 5. How does light refract at a curved surface?, 6. How does a rainbow form?, c = 299792458 m s-1 According to Einstein’s, special theory of relativity, this is the maximum, possible speed for any object. For practical, purposes we write it as c = 3×108 m s-1., Commonly, observed, phenomena, concerning light can be broadly split into three, categories., (I) Ray optics or geometrical optics: A, particular direction of propagation of, energy from a source of light is called, a ray of light. We use ray optics for, understanding phenomena like reflection,, refraction, double refraction, total, internal reflection, etc., (II) Wave optics or physical optics: For, explaining phenomena like interference,, diffraction, polarization, Doppler effect,, etc., we consider light energy to be in the, form of EM waves. Wave theory will be, further discussed in XIIth standard., (III) Particle nature of light: Phenomena like, photoelectric effect, emission of spectral, lines, Compton effect, etc. cannot be, explained by using classical wave theory., These involve the interaction of light with, matter. For such phenomena we have to, use quantum nature of light. Quantum, nature of light will be discussed in XIIth, standard., 9.3 Ray optics or geometrical optics:, In geometrical optics, we mainly study, image formation by mirrors, lenses and prisms., It is based on four fundamental laws/ principles, which you have learnt in earlier classes., (i) Light travels in a straight line in a, homogeneous and isotropic medium., Homogeneous means that the properties, of the medium are same every where in, the medium and isotropic means that the, , 159
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properties are the same in all directions., (ii) Two or more rays can intersect at a point, without affecting their paths beyond that, point., (iii) Laws of reflection:, (a) Reflected ray lies in the plane formed by, incident ray and the normal drawn at the, point of incidence; and the two rays are on, either side of the normal., (b) Angles of incidence and reflection are, equal., (iv) Laws of refraction: These apply at the, boundary between two media, (a) Refracted ray lies in the plane formed by, incident ray and the normal drawn at the, point of incidence; and the two rays are on, either side of the normal., (b) Angle of incidence ( θ 1 in a medium of, refractive index n 1) and angle of refraction, ( θ 2 in medium of refractive index n 2) are, related by Snell’s law, given by, , ( n 1)sin θ 1 = ( n 2)sin θ 2., Do you know ?, Interestingly, all the four laws stated, above can be derived from a single, principle called Fermat’s (pronounced, ''Ferma'') principle. It says that “While, travelling from one point to another by one, or more reflections or refractions, a ray of, light always chooses the path of least, time”., Ideally it is the path of extreme time,, i.e., path of minimum or maximum time., We strongly recommend you to go through, a suitable reference book that will give, you the proof of i = r during reflection and, Snell’s law during refraction using, Fermat’s principle., , Solution:, Speed of light in vacuum, c = 3×108m/s, nglass = 10.5, ∴ Speed of light in glass =, c, nglass, , �, , 3 � 108, � 2 � 108 m / s, 1.5, , Distance to be travelled by light in glass,, s = 2 mm = 2×10-3 m, ∴Time t required by light to travel this distance,, , t�, , s, v glass, , �, , 2 � 10 �3, � 10 �11 s, 8, 2 � 10, , Most convenient prefix to express this small, time is pico (p) = 10-12, ∴ t = 10 × 10-12 = 10 ps, 9.3.1 Cartesian sign convention:, While using geometrical optics it is, necessary to use some sign convention. The, relation between only the numerical values of, u, v and f for a spherical mirror (or for a lens), will be different for different positions of the, object and the type of mirror. Here u and v are, the distances of object and image respectively, from the optical center, and f is the focal, length. Properly used suitable sign convention, enables us to use the same formula for all, different particular cases. Thus, while deriving, a formula and also while using the formula it, is necessary to use the same sign convention., Most convenient sign convention is Cartesian, sign convention as it is analogous to coordinate, geometry. According to this sign convention,, (Fig. 9.1):, , Example 9.1: Thickness of the glass of a, spectacle is 2 mm and refractive index of its, glass is 1.5. Calculate time taken by light to, cross this thickness. Express your answer with, the most convenient prefix attached to the unit, ‘second’., , 160, , Fig. 9.1 Cartesian sign convention., i) All distances are measured from the optical, center or pole. For most of the optical, objects such as spherical mirrors, thin, lenses, etc., the optical centers coincides, with their geometrical centers.
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ii) Figures should be drawn in such a way, that the incident rays travel from left to, right. A diverging beam of incident rays, corresponds to a real point object (Fig. 9.2, (a)), a converging beam of incident rays, corresponds to a virtual object (Fig. 9.2, (b)) and a parallel beam corresponds to an, object at infinity. Thus, a real object should, be shown to the left of pole (Fig. 9.2 (a)), and virtual object or image to the right of, pole. (Fig. 9.2 (b)), , Fig. 9.2: (a) Diverging beam from a real, object, , Fig. 9.2: (b) Converging beam towards a, virtual object., iii) x-axis can be conveniently chosen as the, principal axis with origin at the pole., iv) Distances to the left of the pole are, negative and those to the right of the pole, are positive., v) Distances above the principal axis (x-axis), are positive while those below it are, negative., Unless specially mentioned, we shall always, consider objects to be real for further, discussion., 9.4 Reflection:, 9.4.1 Reflection from a plane surface:, a) If the object is in front of a plane reflecting, surface, the image is virtual and laterally, inverted. It is of the same size as that of the, object and at the same distance as that of, object but on the other side of the reflecting, surface., , b) If we are standing on the bank of a still, water body and look for our image formed, by water (or if we are standing on a plane, mirror and look for our image formed by, the mirror), the image is laterally reversed,, of the same size and on the other side., c) If an object is kept between two plane, mirrors inclined at an angle θ (like in a, kaleidoscope), a number of images are, formed due to multiple reflections from, both the mirrors. Exact number of images, depends upon the angle between the mirrors, and where exactly the object is kept. It can, be obtained as follows (Table 9.1):, 360, Calculate n �, �, Let N be the number of images seen., (I) If n is an even integer, N � � n � 1� ,, irrespective of where the object is., (II) If n is an odd integer and object is exactly, on the angle bisector, N � � n � 1� ., (III) If n is an odd integer and object is off the, angle bisector, N = n, (IV) If n is not an integer, N = m, where m is, integral part of n., , 161, , Table 9.1, , Angle, θ0, , n�, , 360, �, , Position of, the object, On angle, bisector, Off angle, bisector, , N, , 120, , 3, , 2, , 120, , 3, , 110, , 3.28, , Anywhere, , 3, , 90, , 4, , Anywhere, , 3, , 80, , 4.5, , 4, , 72, , 5, , 72, , 5, , Anywhere, On angle, bisector, Off angle, bisector, , 60, , 6, , Anywhere, , 5, , 50, , 7.2, , Anywhere, , 7, , 3, , 4, 5
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Example 9.2: A small object is kept, symmetrically between two plane mirrors, inclined at 38°. This angle is now gradually, increased to 41°, the object being symmetrical, all the time. Determine the number of images, visible during the process., Solution: According to the convention used in, the table above,, 360, � � 380 � n �, � 9.47 �, 38, ∴ N = 9. This is valid till the angle is 40° as the, object is kept symmetrically, Beyond 40°, n < 9 and it decreases upto , 360, = 8.78, ., 41, Hence now onwards there will be 8 images till, 41°., 9.4.2 Reflection from curved mirrors:, In order to focus a parallel or divergent, beam by reflection, we need curved mirrors., You might have noticed that reflecting mirrors, for a torch or headlights, rear view mirrors of, vehicles are not plane but concave or convex., Mirrors for a search light are parabolic. We, shall restrict ourselves to spherical mirrors only, which can be studied using simple mathematics., Such mirrors are parts of a sphere polished from, outside (convex) or from inside (concave)., Radius of the sphere of which a mirror, is a part is called as radius of curvature (R), of the mirror. Only for spherical mirrors, half, of radius of curvature is focal length of the, R�, �, mirror � f � 2 � . For a concave mirror it is, �, �, the distance at which parallel incident rays, converge. For a convex mirror, it is the distance, from where parallel rays appear to be diverging, after reflection. According to sign convention,, the incident rays are from left to right and they, should face the polished surface of the mirror., Thus, focal length of a convex mirror is positive, (Fig 9.3 (a)) while that of a concave mirror is, negative (Fig. 9.3 (b))., Relation between f, u and v:, For a point object or for a small finite, object, the focal length of a small spherical, , (concave or convex) mirror is related to object, distance and image distance as, 1 1 1, --- (9.1), � � � , f v u, , Fig. 9.3 (a): Parallel rays incident from left, appear to be diverging from F, lying on the, positive side of origin (pole)., , Fig. 9.3 (b): Parallel rays incident from, left appear to converge at F, lying on the, negative side of origin (pole)., By a small mirror we mean its aperture, (diameter) is much smaller (at least one tenth), than the values of u, v and f., Focal power: Converging or diverging ability, of a lens or of a mirror is defined as its focal, 1, power. It is measured as P = ., f, In SI units, it is measured as diopter., �1�dioptre � D � � 1�m�1, Lateral magnification: Ratio of linear size, of an image to that of the object, measured, perpendicular to the principal axis, is defined as, v, the lateral magnification m =, u, For any position of the object, a convex mirror, , 162
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always forms virtual, erect and diminished, image, m < 1 . In the case of a concave mirror, it depends upon the position of the object., Following Table 9.2 will help you refresh your, knowledge., Table 9.2, , Concave mirror (f negative), Real(R), or, Virtual, (V), , Position of, object, , Position of, image, , u =∞, u>2f, u = 2f, 2f >u> f, u= f, , v= f, R, 2f >v> f R, v = 2f, R, v>2f, R, v��, R, v >u, V, , u< f, , Lateral, magnifi-cation, , m =0, m <1, m =1, m >1, m��, , to a cone of very small angle., (iii) If there is a parallel beam of rays, it is, paraxial, i.e., parallel and close to the principal, axis., However, in reality, these assumptions do, not always hold good. This results into distorted, or defective image. Commonly occurring, defects are spherical aberration, coma,, astigmatism, curvature, distortion. Except, spherical aberration, all the other arise due to, beams of rays inclined to principal axis. These, are not discussed here., Spherical, , aberration:, As, mentioned, R, �, �, earlier, the relation � f � � giving a single, 2�, �, , m >1, , Example 9.3: A thin pencil of length 20 cm, is kept along the principal axis of a concave, mirror of curvature 30 cm. Nearest end of the, pencil is 20 cm from the pole of the mirror., What will be the size of image of the pencil?, Solution: R = 30 cm, f = R/2 =-15 cm ... (Concave mirror), 1 1 1, �� �, f v u, For nearest end, u = u1 = - 20 cm . Let the image, distance be v1, 1, 1, 1, �, ���� v1 � �60 �cm, �� �, �15 v1 �20, Nearest end is at 20 cm and pencil itself is 20, cm long. Hence farthest end is 20 + 20 = 40, cm � �u2, Let the image distance be v2, 1, 1, 1, �, ���� v 2 � �24 �cm�, �� �, �15 v 2 �40, ∴ Length of the image = 60 -24 = 36 cm., Defects or aberration of images: The theory, of image formation by mirrors or lenses,, and the formulae that we have used such as, 1 1 1, R, f = or � � � etc., f v u, 2, are based on the following assumptions: (i), Objects and images are situated close to the, principal axis., (ii) Rays diverging from the objects are confined, , point focus is applicable only for small aperture, spherical mirrors and for paraxial rays. In reality,, when the rays are farther from the principal axis,, the focus gradually shifts towards pole (Fig., 9.4). This phenomenon (defect) arises due to, spherical shape of the reflecting surface, hence, called as spherical aberration. It results into a, unsharp (fuzzy) image with unclear boundaries., , Fig. 9.4: Spherical aberration for curved, mirrors., The distance between FM and FP (Fig., 9.4) is measured as the longitudinal spherical, aberration. If there is no spherical aberration,, we get a single point image on a screen placed, perpendicular to the principal axis at that, location, for a beam of incident rays parallel to, the axis. In the presence of spherical aberration,, no such point is possible at any position of the, screen and the image is always a circle. At a, particular location of the screen, the diameter of, this circle is minimum. This is called the circle, of least confusion. In the figures it is across, AB. Radius of this circle is transverse spherical, aberration., , 163
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In the case of curved mirrors, this defect Absolute refractive index:, can be completely eliminated by using a, Absolute refractive index of a medium is, parabolic mirror. Hence surfaces of mirrors defined as the ratio of speed of light in vacuum, used in a search light, torch, headlight of a car, to that in the given medium., telescopes, etc., are parabolic and not spherical., c, n = where c and v are respective speeds, v, of light in vacuum and in the medium. As n, Do you know ?, is the ratio of same physical quantities, it is a, Why does a parabolic mirror not have, unitless and dimensionless physical quantity., spherical aberration?, For any material medium (including, Parabola is a geometrical shape drawn, n > 1, i.e., light travels fastest in vacuum, air), in such a way that every point on it is, than in any material medium. Medium having, equidistant from a straight line and from a, greater value of n is called optically denser. An, point. Figure 9.5 shows a parabola. Points A,, optically denser medium need not be physically, B, C, … on it are equidistant from line RS, denser, e.g., many oils are optically denser than, (called directrix) and point F (called focus)., water but water is physically denser than them., Hence A′A = AF, B′B = BF, C′C = CF, …., R, Relative refractive index:, Refractive index of medium 2 with respect, to medium 1 is defined as the ratio of speed of, light v1 in medium 1 to its speed v2 in medium, n2 v1, 1, =, 2. Thus, n=, 2, n1 v 2, S, , Fig. 9.5: Single focus for parabolic mirror., If rays of equal optical path converge, at a point, that point is the location of real, image corresponding to that beam of rays., Paths A″AA′, B″BB′. C″CC′, etc.,, are equal paths in the absence of mirror., If the parabola ABC… is a mirror then, the respective optical paths will be A″AF,, B″BF, C″CF, … and from the definition of, parabola, these are also equal. Thus, F is the, single point focus for entire beam parallel to, the axis with NO spherical aberration., , Do you know ?, , 9.5 Refraction:, Being an EM wave, the properties of light, (speed, wavelength, direction of propagation,, etc.) depend upon the medium through which, it is traveling. If a ray of light comes to an, interface between two media and enters into, another medium of different refractive index,, it changes itself suitable to that medium. This, phenomenon is defined as refraction of light., The extent to which these properties change is, decided by the index of refraction, 'n'., , 164, , (a) Logic behind the convention 1n2 : Letter, n is the symbol for refractive index,, n2 corresponds to refractive index of, medium 2 and 1n2 indicates that it is, with respect to medium 1. In this case,, light travels from medium 1 to 2 so we, need to discuss medium 2 in context to, medium 1., (b) Dictionary meaning of the word refract, is to change the path`. However, in, context of Physics, we should be more, specific. We use the word deviate for, changing the path. During refraction at, normal incidence, there is no change, in path. Thus, there is refraction but, no deviation. Deviation is associated, with refraction only during oblique, incidence. Deviation or changing the, path or bending is associated with, many phenomena such as reflection,, diffraction, scattering, gravitational, bending due to a massive object, etc.
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Example 9. 4: A crane flying 6 m above a still,, clear water lake sees a fish underwater. For the, crane, the fish appears to be 6 cm below the, water surface. How much deep should the crane, immerse its beak to pick that fish?, For the fish, how much above the water surface, does the crane appear? Refractive index of, This relation holds good for a plane, water = 4/3., parallel transparent slab also as shown below., Solution: For crane, apparent depth of the fish, Figure 9.6 shows a plane parallel slab of a, is 6 cm and real depth is to be determined., transparent medium of refractive index n. A, point object O at real depth R appears to be at For fish, real depth (height, in this case) of the, I at apparent depth A, when seen from outside crane is 6 m and apparent depth (height) is to, (air). Incident rays OA (traveling undeviated) be determined., and OB (deviating along BC) are used to locate, the image., , Illustrations of refraction: 1) When seen from, outside, the bottom of a water body appears to, be raised. This is due to refraction at the plane, surface of water. In this case, , Real depth, nwater ≅, apparent depth, , For crane, it is water with respect to air as real, depth is in water and apparent depth is as seen, from air, 4 R R, � n � � � ����� R � 8�cm, 3 A 6, Fig. 9.6: Real and apparent depth., By considering i and r to be small, we can write,, x, x, tan � r � � � sin � r � and tan � i � � � sin � i �, A, R, �x�, sin � r � �� A �� R, Real�depth, � �, �n �, �, sin � i � � x � A Apparent�deptth, �R�, � �, 2) A stick or pencil kept obliquely in a glass, containing water appears broken as its part in, water appears to be raised., Small angle approximation: For small angles,, expressed in radian, sin � � � � tan� ., For example, for, , In this case the error is 0.5236 � 0.5 � �0.0236 in, 0.5, which is 4.72 %., For practical purposes we consider angles less, than 100 where the error in using sin � � � is, less than 0.51 %. (Even for 600, it is still 15.7 %), It is left to you to verify that this is almost, equally valid for tanθ till 200 only., , For fish, it is air with respect to water as the, real height is in air and seen from water., 3 R 6, � n � � � ����� A � 8�m, 4 A A, 9.6 Total internal reflection:, , Fig. 9.7: Total internal reflection., Figure 9.7 shows refraction of light, emerging from a denser medium into a rarer, medium for various angles of incidence., The angles of refraction in the rarer medium, are larger than the corresponding angles of, incidence. At a particular angle of incidence ic, in the denser medium, the corresponding angle, of refraction in the rarer medium is 900. For, angles of incidence greater than ic , the angle, of refraction become larger than 900 and the ray, does not enter into rarer medium at all but is, reflected totally into the denser medium. This is, , 165
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called total internal reflection. In general, there, is always partial reflection and partial refraction, at the interface. During total internal reflection, TIR, it is total reflection and no refraction. The, corresponding angle of incidence in the denser, medium is greater than or equal to the critical, angle., Critical angle for a pair of refracting media, can be defined as that angle of incidence in the, denser medium for which the angle of refraction, in the rarer medium is 90°., Do you know ?, In Physics the word critical is used when, certain phenomena are not applicable or, more than one phenomenon are applicable., Some examples are as follows., (i) In case of total internal reflection, the, phenomenon of reversibility of light, is not applicable at critical angle and, refraction is possible only for angles of, incidence in the denser medium smaller, than the critical angle., (ii) At the critical temperature, a substance, coexists into all the three states;, solid, liquid and gas. At all the other, temperatures, only two states are, simultaneously possible., (iii) For liquids, streamline flow is possible, till critical velocity is achieved., At critical velocity it can be either, streamline or turbulent., Let µ be the relative refractive index, of denser medium with respect to the rarer., Applying Snell’s law at the critical angle of, 1, incidence, iC , we can write sin ( ic ) �, as,, �, (µ)sin (ic) = (1) sin 90°, For commonly used glasses of, µ = 1.5, ic = 41° 49′ ≅ 42° and for water of, 4, � � , ic = 48° 35′ (Both, with respect to air), 3, 9.6.1 Applications of total internal reflection:, (i) Optical fibre: Though little costly for initial, set up, optic fibre communication is undoubtedly, the most effective way of telecommunication, by way of EM waves., , Fig. 9.8 (a): Optical fibre construction., , Fig. 9.8 (b): Optical fibre working., An optical fibre essentially consists of an, extremely thin (slightly thicker than a human, hair), transparent, flexible core surrounded, by optically rarer (smaller refractive index),, flexible cover called cladding. This system is, coated by a buffer and a jacket for protection., Entire thickness of the fibre is less than half a, mm. (Fig. 9.8(a)). Number of such fibres may, be packed together in an outer cover., An optical signal (ray) entering the core, suffers multiple total internal reflections (Fig., 9.8 (b)) and emerges after several kilometers, with extremely low loss travelling with highest, possible speed in that material ( ~ 2,00,000, km/s for glass). Some of the advantages of, optic fibre communication are listed below., (a) Broad bandwidth (frequency range): For, TV signals, a single optical fibre can, carry over 90000 channels (independent, signals)., (b) Immune to EM interference: Being, electrically non-conductive, it is not able, to pick up nearby EM signals., (c) Low attenuation loss: The loss is lower, than 0.2 dB/km so that a single long cable, can be used for several kilometers., (d) Electrical insulator: No issue with ground, loops of metal wires or lightning., (e) Theft prevention: It is does not use copper, or other expensive material., (f) Security of information: Internal damage is, most unlikely., (ii) Prism binoculars: Binoculars using, only two cylinders have a limitation of field, of view as the distance between the two, cylinders can’t be greater than that between, the two eyes. This limitation can be overcome, , 166
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by using two right angled glass prisms, ( iC ~ 420 ) used for total internal reflection as, shown in the Fig. 9.9. Total internal reflections, occur inside isosceles, right angled prisms., , Fig. 9.9: Prism binoculars, (iii) Periscope: It is used to see the objects on, the surface of a water body from inside water., The rays of light should be reflected twice, through right angle. Reflections are similar, to those in the binoculars (Fig 9.10) and total, internal reflections occur inside isosceles, right, angled prisms., , Fig. 9.10: Periscope., Example 9.5: There is a tiny LED bulb at the, center of the bottom of a cylindrical vessel of, diameter 6 cm. Height of the vessel is 4 cm. The, beaker is filled completely with an optically, dense liquid. The bulb is visible from any, inclined position but just visible if seen along, the edge of the beaker. Determine refractive, index of the liquid., Solution: As seen from the accompanying, figure, if the bulb is just visible from the edge,, angle of incidence in the liquid (at the edge), must be the critical angle of incidence, iC, , From the dimensions given,, tan ( ic ) �, , 3, sin 90� 5, � sin ( ic ) � � nliquid �, �, 4, 5, sin( ic ) 3, 3, , 9.7 Refraction at a spherical surface and, lenses:, In the section 9.5 we saw that due to, refraction, the bottom of a water body appears, Real depth, to be raised and nwater = apparent depth ., However, this is valid only if we are dealing, with refraction at a plane surface. In many cases, such as liquid drops, lenses, ellipsoid paper, weights, etc, curved surfaces are present and the, formula mentioned above may not be true. In, such cases we need to consider refraction at one, or more spherical surfaces. This will involve, parameters including the curvature such as, radius of curvature, in addition to refractive, indices., Lenses: Commonly used lenses can be, visualized to be consisting of intersection of, two spheres of radii of curvature R1 and R2 or of, one sphere and a plane surface (R = ∞) . A lens, is said to convex if it is thicker in the middle, and narrowing towards the periphery. A lens is, concave if it is thicker at periphery and narrows, down towards center. Convex lens is visualized, to be internal cross section of two spheres (or, one sphere and a plane surface) while concave, lens is their external cross section (Figs. 9.11-a to, 9.11-f). Concavo-convex and convexo-concave, lenses are commonly used for spectacles of, positive and negative numbers, respectively., For lenses of material optically denser than, the medium in which those are kept, convex, lenses have positive focal length [according, to Cartesian sign convention] and converge, the incident beam while concave lenses have, negative focal length and diverge the incident, beam., For most of the applications of lenses,, maximum thickness of lens is negligible (at, least 50 times smaller) compared with all the, other distances such as R1 and R2, u, v, f, etc., Such a lens is called as a thin lens and physical, , 167
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center of such a lens can be assumed to be the For lenses, the relations between u, v, R and f, common pole (or optical center) for both its depend also upon the refractive index n of the, refracting surfaces., R�, �, material of the lens. The relation � f � 2 �, �, �, Fig. 9.11 (a): Convex, does, NOT, hold, good, for, lenses., Below, we, shall, lens, as, internal, derive the necessary relation by considering, cross section of two, refraction at the two surfaces of a lens, spheres., independently., Fig. 9.11 (b): Concave, lens as external cross, section of two spheres., , Unless mentioned specifically, we assume, lenses to be made up of optically denser, material compared to the medium in which, those are kept, e.g., glass lenses in air or in, water, etc. As special cases we may consider, lenses of rarer medium such as an air lens, in water or inside a glass. A spherical, hole inside a glass slab is also a lens of, rarer medium. In such case, physically (or, geometrically or shape-wise) convex lens, diverges the incident beam while concave, lens converges the incident beam., , Fig. 9.11 (c): Plano, convex lens, , Fig. 9.11 (d): Plano, concave lens, , Fig. 9.11 (e): concaveconvex lens, , Fig. 9.11 (f) convexconcave lens, 1 1 1, � � � , --- (9.2), f v u, If necessary, we can have a number of, thin lenses in contact with each other having, common principal axis. Focal power of such, combination is given by the algebraic addition, (by considering ± signs) of individual focal, powers., , For any thin lens,, , Refraction at a single spherical surface:, Consider a spherical surface YPY’ of radius of, curvature R, separating two transparent media, of refractive indices n1 and n2 �respectively with, n1 < n2 . P is the pole and X’PX is the principal, axis. A point object O is at an object distance, -u from the pole, in the medium of refractive, index n1 . Convexity or concavity of a surface, is always with respect to the incident rays, i.e.,, with respect to a real object. Hence in this case, the surface is convex (Fig. 9.12)., , �1� 1 1 1, 1, � � � � � � � ��, f, � f i � f1 f 2 f 3, � P1 � P2 � P3 �.. � �Pi � P, , Fig. 9.12: Refraction at a single refracting, surface., To locate its image and in order to minimize, spherical aberration, we consider two paraxial, For only two thin lenses, separated in air by rays. The ray OP along the principal axis, distance d,, travels undeviated along PX. Another ray OA, 1 1 1, d, strikes the surface at A. CAN is the normal, � � �, � P1 � P2 � dP1P2 � P, from center of curvature C of the surface at A., f, f1 f 2 f 1 f 2, Angle of incidence in the medium n1 at A is i., ∴, , 168
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As n1< n2 , the ray deviates towards the normal,, travels along AZ and cuts the principal axis at, I. Thus, real image of point object O is formed, at I. Angle of refraction, in medium n2 is r. n refractive, =, =, index�of�the�other�medium 1�, 2, According to Snell’s law,, u � ��4 �cm�, n1 sin � i � � n2sin � r � , --- (9.3), v=?, Let, be the angles subtended by R � ��3�cm�, incident ray, normal and refracted ray with the n � n n n, 2, 1, � 2� 1, principal axis., v u, R, � i ��, � � � �and�r � � � �, 1 � 1.5 1 1.5 1 1 3, � �, ��� � � ���� v � ��4.8�cm, For paraxial rays, all these angles are ��, �3, v �4 6 v 8, small and PA can be considered as an arc for, In this case apparent depth is NOT less, ., than real depth. This is due to curvature of the, refracting surface., arc �AP arc �AP, In this case (Fig. 9.12) we had considered, Also, � �, �, ,�, PO, �u, the object placed in rarer medium, real image, arc AP arc AP, in denser medium and the surface facing the, ��, �, and, PC, R, object to be convex. However, while deriving, arc �AP arc �AP, the relation, all the symbolic values (which, ��, �, v, PI, could be numeric also) were substituted as, per the Cartesian sign convention (e.g. ‘u’, � n1i � n2 r, as negative, etc.). Hence the final expression, � n1 �� � � � � n2 � � � � �, (Eq. 9.4) is applicable to any surface, separating any two media, and real or virtual, � � n2 � n1 � � � n2� � n1�, image provided you substitute your values, Substituting, and canceling 'arc AP', (symbolic or numerical) as per Cartesian, we get, sign convention. The only restriction is that, n2 � n1 n2 n1, n1 is for medium of real object and n2 is the, � �, --- (9.4), other, medium (not necessarily the medium, v u , R, of image). Only in the case of real image, it, Example 6: A glass paper-weight (n =1.5) of, will be in medium n2. If virtual, it will be in, radius 3 cm has a tiny air bubble trapped inside, the medium n1 (with image distance negative, it. Closest distance of the bubble from the, how do you justify this?)., surface is 2 cm. Where will it appear when seen, We strongly suggest you to do the, from the other end (from where it is farthest)?, derivations yourself for any other special, Solution: Accompanying Figure below case such as object placed in the denser, illustrates the location of the bubble., medium, virtual image, concave surface, etc., It must be remembered that in any case you, will land up with the same expression as in, Eq. (9.4)., Lens makers’ equation: Relation between, refractive index (n), focal length (f ) and radii of, curvature R1 and R2 for a thin lens., Consider a lens of radii of curvature R1 and, According to the symbols used in the Eq. R kept in a medium such that n is refractive, 2, (9.4), we get,, , 169
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index of material of the lens with respect to the Adding Eq. (9.5) and (9.6), we get,, outside medium. Assuming the lens to be thin,, � 1 1 � 1 1, � n � 1� � � � � �, P is the common pole for both the surfaces. O is, � R1 R2 � v u, a point object on the principal axis at a distance, u from P. First refracting surface of the lens For, of radius of curvature R1 faces the object (Fig, � 1 1 �, 1, --- (9.7), �� � � n � 1� � � �, 9.13)., f, � R1 R2 �, For preparing spectacles, it is necessary, to grind the glass (or acrylic, etc.) for having, the desired radii of curvature. Equation (9.7), can be used to calculate the radii of curvature, for the lens, hence it is called the lens makers’, equation. (It should be remembered that while, Fig. 9.13: Lens maker's equation., solving problems when you are using equations, Axial ray OP travels undeviated. Paraxial 9.1, 9.2, 9.4, 9.7, etc., we will be substituting the, ray OA deviates towards normal and would values of the corresponding quantities. Hence, intersect axis at I1, in the absence of second this time it is algebraic substitution, i.e., with, refracting surface. PI1 = v1 is the image distance, Special cases:, for intermediate image I1., Most popular and most common special, Thus, the symbols to be used in Eq. (9.4) are, case is the one in which we have a thin,, n2 = n,� n1 = 1,� R = R1 ,� u = u , v = v1, symmetric, double lens. In this case, R1 �and �R2, are numerically equal., n �1 n, 1, � �, ∴, --- (9.5), (A) Thin, symmetric, double convex lens: R1, R1, v1 � u �, , is positive, R2 is negative and numerically, =, R=, R., (Not that, in this case, we are not substituting, equal. Let R, 1, 2, the algebraic values but just using different, 1, � 1 1 � 2 � n � 1�, symbols.), �� � � n � 1� � �, �, f, R � R ��, R, �, Before reaching I1, the ray PI1 is intercepted, Further, for popular variety of glasses,, at B by the second refracting surface. In this, n ≅ 1.5 . In such a case, f = R ., case, the incident rays AB and OP are in the, (B) Thin, symmetric, double concave lens:, medium of refractive index n and converging, R1 is negative, R2 is positive and numerically, towards I1. Thus, I1 acts as virtual object for, =, R=, R., equal. Let R, second surface of radius of curvature (R2) and, 1, 2, object distance is � u � v1 � . As the incident rays, 1, � 1 1 � 2 � n � 1�, �� � � n � 1� �, � ��, are in the medium of refractive index n, this, f, �R, � �R R �, is the medium of (virtual) object ∴ n1 = n and, Further if, refractive index of the other medium is n2 = 1., (C) Thin, planoconvex lenses: One radius is, After refraction, the ray bends away from, 1 n �1, R and the other is ∞. � �, the normal and intersects the principal axis at I, f, R, which is the real image of object O formed due, Further if, to the lens. ∴ PI = v., Substituting all these symbols in Eq. (9.4), proper ± sign), we get, Example 7: A dense glass double convex lens, 1� n n �1 1, n, � n � 2 � designed to reduce spherical aberration, �, � �, --- (9.6), has |R1|:|R2|=1:5. If a point object is kept 15 cm, R2, � R2 v � v1 �, in front of this lens, it produces its real image at, , 170
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parallel surfaces must be separated over very, 7.5 cm. Determine R1 and R2., Solution: u = - 15 cm, v = + 7.5 cm (real image large distance and i should be large., is on opposite side)., 1 1 1, 1, 1, 1, � � � ���� � � �, ���� f � �5�cm, f v u, f 7.5 �15, The lens is double convex. Hence, R1 is positive, and R2 is negative. Also, R2 = 5 R1 and n = 2., � 1 1 � 1, � �� �, � R1 R2 � f, , � n � 1� �, , � 1, 1 � 1, �, � � 2 � 1� � �, � ���, � R � � 5 R � �� 5, 1 �, � 1, � 6 � 1, � �1� �, � � ���� R1 � 6 �cm ���� R2 � 30�cm, 5, R, � 1� 5, 9.8 Dispersion of light and prisms:, The colour of light that we see depends, upon the frequency of that ray (wave). The, refractive index of a material also depends upon, the frequency of the wave and increases with, frequency. Obviously refractive index of light, is different for different colours. As a result,, for an obliquely incident ray, the angles of, refraction are different for each colour and they, separate (disperse) as they travel along different, directions. This phenomenon is called angular, dispersion Fig 9.14., , Fig. 9.15: Lateral dispersion due to plane, parellal slab., Example 8: A fine beam of white light is, incident upon the longer side of a plane parallel, glass slab of breadth 5 cm at angle of incidence, 600. Calculate angular deviation of red and, violet rays within the slab and lateral dispersion, between them as they emerge from the opposite, side. Refractive indices of the glass for red and, violet are 1.51 and 1.53 respectively., Solution: As shown in the Fig. 9.15 above,, VM = LV and RT = LR give respective lateral, deviations for violet and red colours and LVR =, LV - LR is the lateral dispersion between these, colours. nR = 1.51, nV = 1.53 and i = 60°, � sin rR �, , sin i sin 600, �, � 0.5735, 1.51, nR, , sin i sin 600, sin rV �, �, � 0.566, 1.53, nV, � rR � 350 �and �RV � 340 28’ ���� RV � rR � rV 32 ’, �, � i � rR � 250 , i � rV � 250 32’, Fig. 9.14: Angular dispersion at a single, surface., If a polychromatic beam of light (bundle of, rays of different colours) is obliquely incident, upon a plane parallel transparent slab, emergent, beam consists of all component colours, separated out. However, in this case all those are ��L � RT � AR sin i � r � 2.58�cm�, � � R ��, R, parallel to each other and also parallel to initial, direction. This is lateral dispersion which is LV � VM � AV � sin �i � rV �� � 2.58�cm, measured as the perpendicular distance between, the direction of incident ray and respective, It shows that the lateral dispersion is too, directions of dispersed emergent rays (LR and, LV) Fig 9.15. For it to be easily detectable, the small to detect., , 171
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In order to have appreciable and observable, dispersion, two parallel surfaces are not useful., In such case we use prisms, in which two, refracting surfaces inclined at an angle are, used. Popular variety of prisms are having, three rectangular surfaces forming a triangle., At a time two of these are taking part in the, refraction. The one, not involved in refraction is, called base of the prism. Fig 9.16., , Fig. 9.16: Prism consisting of three plane, surfaces., Any section of prism perpendicular to the base, is called principal section of the prism. Usually, we consider all the rays in this plane. Fig 9.17 a, and 9.17 b show refraction through a prism for, monochromatic and white beams respectively., Angular dispersion is shown for white beam., , reflecting surface AB. Normal passing through, the point of incidence Q is MQN. Angle of, incidence at Q is i. After refraction at Q, the ray, deviates towards the normal and strikes second, refracting surface AC at R which is the point, of emergence. MRN is the normal through R., Angles of refraction at Q and R are r1 and r2, respectively., , n, Fig. 9.18: Deviation through a prism., After R, the ray deviates away from normal and, finally emerges along RS making e as the angle, of emergence. Incident ray PQ is extended as, QT. Emergent ray RS meets QT at X if traced, backward. Angle TXS is angle of deviation δ ., ∠ AQN = ��ARN � 900 …… (Angles at, normal), ∴ From quadrilateral AQNR,, A + ∠ QNR = 1800, --- (9.8), , From ∆ QNR, r1 + r2 + ∠ QNR = 1800 --- (9.9), ∴ From Eqs. (9.8) and (9.9),, --- (9.10), A � r1 � r2 , Fig. 9.17 (a): Refraction through a prism Angle δ is exterior angle for triangle XQR., (monocromatic light)., ��, � �XQR � ��XRQ � �, �, � � i � r1 � � � e � r2 � � �, � � i � e � � � r1 � r2 � � �, , Fig. 9.17 (b): Angular dispersion through a, prism. (white light)., Relations between the angles involved:, Figure 9.18 shows principal section ABC of a, prism of absolute refractive index n kept in air., Refracting surfaces AB and AC are inclined at, angle A, which is refracting angle of prism or, simply ‘angle of prism’. Surface BC is the base., A monochromatic ray PQ obliquely strikes first, , Hence, using Eq. (9.10), � i � e � � � A � � �, � i � e � A � � , --- (9.11), Deviation curve, minimum deviation and, prism formula: From the relations (9.10) and, (9.11), it is clear that δ ,�e,�r1 �and �r2 depend upon, i, A and n. After a certain minimum value of, angle of incidence imin, the emergent ray is, possible. This is because of the fact that for, i< imin , r2 > ic and there is total internal reflection, at the second surface and there is no emergent, ray. This will be shown later. Then onwards,, , 172
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sin i, , as i increases, r1 increases as sin r = n but r2, 1, and e decrease. However, variation in δ with, increasing i is different. It is as plotted in the, Fig. 9.19., , Fig. 9.19: Deviation curve for a prism., It shows that, with increasing values of i,, the angle of deviation δ decreases initially to, a certain minimum �� m � and then increases., It should also be noted that the curve is not a, symmetric parabola, but the slope in the part, after is less. It is clear that except at � � � m ,, (Angle of minimum deviation) there are two, values of i for any given δ .�By applying the, principle of reversibility of light to path PQRS, it is obvious that if one of these values is i,, the other must be e and vice versa. Thus at, � � � m , we have i = e.� Also, in this case, r1 = r2, A, � �r �, and A = r1 + r2 = 2r �, 2, Only in this case QR is parallel to base BC and, the figure is symmetric., Using these in Eq. (9.11), we get,, , � A � �m �, �, � i�, , i � i � A � �m, 2, According to Snell’s law,, , � A � �m �, sin �, �, � 2 �, �n �, � A�, --- (9.12), sin � � , �2�, Equation (9.12) is called prism formula., Example 9.9: For a glass (n =1.5) prism having, refracting angle 600, determine the range of, angle of incidence for which emergent ray, is possible from the opposite surface and the, corresponding angles of emergence. Also, calculate the angle of incidence for which, i = e. How much is the corresponding angle of, minimum deviation?, , 173, , (I) Grazing emergence and minimum angle, of incidence: At the point of emergence, the, ray travels form a denser medium into rarer, (popular prisms are of denser material, kept, �1 � 1 �, in rarer). Thus if r2 � sin � n � �is the critical, � �, 0, angle, the angle of emergence e = 90 . This, is called grazing emergence or we say that, the ray just emerges. Angle of prism A is, constant for a given prism and A � r1 � r2 ., Hence the corresponding r1 and i will have, their minimum possible values., , (II) For commonly used glass prisms,, �1�, � 1 �, n = 1.5, sin �1 � � � sin �1 �, �, �n�, � 1.5 �, � 410 49' � � r2 �max, , If prism is symmetric (equilateral),, A �� 600 � r1 � 600 � 410 49’ � 18011’, � imin � �27055’ � 280., (III) For a symmetric (equilateral) prism,, the prism formula can be written as, , � �, �, � 60 � � m �, sin �, sin � 30 � m �, �, 2 �, �, � 2 ��, n�, sin � 30 �, � 60 �, sin � �, � 2 �, � �, �, � 2sin � 30 � m �, 2 �, �, (IV) For a prism of denser material,, kept in a rarer medium, the incident ray, deviates towards the normal during the, first refraction and away from the normal, during second refraction. However, during, both the refractions it deviates towards the, base only.
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Solution: As shown in the box above, separated. This is angular dispersion (Fig. 9.20)., imin = 27055' . Angle of emergence for this is, emax = 900 ., From the principle of reversibility of light,, 0, =, imax 90, =, ��and ��emin 27055’, n, Also, from the box above,, 60, �, �, �, m �, sin �, �, � 2 �, Fig. 9.20: Angular dispersion through a, n�, � 60 �, prism., sin � �, It is measured for any two component, � 2 �, colours., � �, �, sin � 30 � m �, �� 21 � � 2 � �1, �m �, 2 �, �, �, �, � 2sin � 30 � �, Normally we do it for extreme colours., sin � 30 �, 2 �, �, For white light, violet and red are the, extreme colours., �� VR � � V � � R, Using deviation for thin prism (Eq. 9.13), we, can write, �� 21 � � 2 � �1 � A � n2 � 1� � A � n1 � 1�, � A � n2 � n1 �, where n1 and n2 are refractive indices for the, i � e � A � � and i � e �for �� � � m, two colours., ∴ i + i = 60 + 37° 10′ = 97°10′ ∴ i = 48°35′, Also,, Thin prisms: Prisms having refracting angle, � VR � � V � � R � A � nV � 1� � A � nR � 1�, less than 100 A � 100 �are called thin prisms., --- (9.14), For such prisms we can comfortably use � A � nV � nR �, sin � � � . For such prisms to deviate the incident Yellow is practically chosen to be the mean, ray towards the base during both refractions, it colour for violet and red., is essential that i should also be less than 100 so This gives mean deviation, that all the other angles will also be small., � ��, Thus, � VR � V R � � Y � A � nY � 1�, --- (9.15), 2, , �, , �, , Do you know ?, , � i � nr1 and �e � nr2, , Using these in Eq. (9.11), we get,, i � e � nr1 � nr2 � n � r1 � r2 � � nA � A � �, --- (9.13), �� � A � n � 1� , A and n are constant for a given prism. Thus,, for a thin prism, for small angles of incidences,, angle of deviation is constant (independent of, angle of incidence)., Angular dispersion and mean deviation:, As discussed earlier, if a polychromatic beam, is incident upon a prism, the emergent beam, consists of all the individual colours angularly, , 174, , (i) If you see a rainbow widthwise, yellow, appears to be centrally located. Hence, angular deviation of yellow is average, for the entire colour span. This may be, the reason for choosing yellow as the, mean colour. Remember, red band is, widest and violet is much thinner than, blue., (ii) While obtaining the expression for ω,, we have used thin prism formula for δ ., However, the expression for ω (equation, 9.16) is valid as well for equilateral, prisms or right-angled prisms.
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Dispersive power: Ability of an optical is called a mirage (Fig. 9.21)., material to disperse constituent colours is its, dispersive power. It is measured for any two, colours as the ratio of angular dispersion to the, mean deviation for those two colours. Thus, for, the extreme colours of white light, dispersive, power is given by, , ��, , �, , �� V � � R �, , ��V � �R �, � 2 �, �, �, A � nV � nR �, A � nY � 1�, , �, , �V � �R, �Y, , �, , nV � nR, nY � 1, , --- (9.16), , , As ω is the ratio of same physical quantities,, it is unitless and dimensionless quantity. From, the expression in terms of refractive indices, it should be understood that dispersive power, depends only upon refractive index (hence, material only) and not upon the dimensions of, prism. For commonly used glasses it is around, 0.03., Example 10: For a dense flint glass prism of, refracting angle 100, obtain angular deviation, for extreme colours and dispersive power of, dense flint glass. (, �V � A(nV � 1) � 10(1.792 � 1) � (7.92)�, , � R � A(nR � 1) � 10(1.712 � 1) � (7.12))�, � Angular�dispersion,���VR � �V � � R � � 0.8 � �, 0, , dispersive power, ω =, � ��R, � V, � �V � � R �, � 2 �, �, �, � 7.92 � 7.12 �, � 2�, �, � 7.92 � 7.12 �, 2 � 0.8, �, � 0.11064, 15.04, (This is much higher than popular crown glass), 9.9 Some natural phenomena due to Sunlight:, Mirage: On a hot clear Sunny day, along, a level road, a pond of water appears to be, there ahead. However, if we physically reach, the spot, there is nothing but the dry road and, water pond again appears ahead. This illusion, , Fig. 9.21: The Mirage., On a hot day the air in contact with the, road is hottest and as we go up, it gets gradually, cooler. The refractive index of air thus increases, with height. As shown in the figure, due to this, gradual change in the refractive index, the ray of, light coming from the top of an object becomes, more and more horizontal as it almost touches, the road. For some reason (mentioned later) it, bends above. Then onwards, upward bending, continues due to denser air. As a result, for an, observer, it appears to be coming from below, thereby giving an illusion of reflection from an, (imaginary) water surface., Rainbow: Undoubtedly, rainbow is an eyecatching phenomenon occurring due to rains, and Sunlight. It is most popular because it is, observable from anywhere on the Earth. A, few lucky persons might have observed two, rainbows simultaneously one above the other., Some might have seen a complete circular, rainbow from an aeroplane (Of course, this time, it’s not a bow!). Optical phenomena discussed, till now are sufficient to explain the formation, of a rainbow., The facts to be explained are:, (i) It is seen during rains and on the opposite, side of the Sun., (ii) It is seen only during mornings and, evenings and not throughout the day., (iii) In the commonly seen rainbow red arch is, outside and violet is inside., (iv) In the rarely occurring concentric, secondary rainbow, violet arch is outside, and red is inside., (v) It is in the form of arc of a circle., (vi) Complete circle can be seen from a higher, altitude, i.e., from an aeroplane., , 175
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(vii) Total internal reflection is not possible in, this case., Conditions necessary for formation of a, rainbow: Light shower with relatively large, raindrops, morning or evening time and enough, Sunlight., Optical phenomena involved: During the, formation of a rainbow, the rays of Sunlight, incident on water drops, deviate and disperse, during refraction, internally (NOT total, internally) reflect once (for primary rainbow), or twice (for secondary rainbow) and finally, refract again into air. At all stages there, is angular dispersion which leads to clear, separation of the colours., Primary rainbow: Figure 9.22 (a) shows the, optical phenomena involved in the formation of, a primary rainbow due to a spherical water drop., , emerge from V′ and R′ and can be seen by an, observer on the ground. For the observer they, appear to be coming from opposite side of, the Sun. Minimum deviation rays of red and, violet colour are inclined to the ground level at, θR = 42.8° ≅ 43° and θV = 40.8 ≅ 41° respectively., As a result, in the ‘bow’ or arch, the red is above, or outer and violet is lower or inner., A, White, sunlight, , Observer on ground, , Fig. 9.22 (a): Formation of primary rainbow., , Do you know ?, Possible reasons for the upward bending, at the road during mirage could be:, (i) Angle of incidence at the road is, glancing. At glancing incidence, the, reflection coefficient is very large, which causes reflection., (ii) Air almost in contact with the road is, not steady. The non-uniform motion of, the air bends the ray upwards and once, it has bent upwards, it continues to do, so., (iii) Using Maxwell’s equations for EM, waves, correct explanation is possible, for the reflection., It may be pointed out that total internal, reflection is NEVER possible here because, the relative refractive index is just less than 1, and hence the critical angle (discussed in the, article 9.6) is also approaching 900., White ray AB from the Sun strikes from upper, portion of a water drop at an incident angle i., On entering into water, it deviates and disperses, into constituent colours. Extreme colours, violet(V) and red(R) are shown. Refracted rays, BV and BR strike the opposite inner surface, of water drop and suffer internal (NOT total, internal) reflection. These reflected rays finally, , Fig. 9.22 (b): Formation of secondary, rainbow., Secondary rainbow: Figure 9.22 (b) shows, some optical phenomena involved in the, formation of a secondary rainbow due to a, spherical water drop. White ray AB from the, Sun strikes from lower portion of a water drop, at an incident angle i. On entering into water, it, deviates and disperses into constituent colours., Extreme colours violet(V) and red(R) are shown., Refracted rays BV and BR finally emerge the, drop from V' and R' after suffering two internal, reflections and can be seen by an observer on, the ground. Minimum deviation rays of red and, violet colour are inclined to the ground level at, θR ≅ 51° and θV ≅ 53° respectively. As a result,, in the ‘bow’ or arch, the violet is above or outer, and red is lower or inner., , 176
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Do you know ?, (I) Why total internal reflection is not, possible during formation of a rainbow?, Angle of incidence i in air, at the water, drop, can’t be greater than 90°. As a result,, angle of refraction r in water will always less, than the critical angle. From Fig a and b and, by simple geometry, it is clear that this r itself, is the angle, of incidence, at any point, for one or, more internal, reflections., Fig. a, O b v i o u s l y,, total internal, reflection is not possible., (II) Why is rainbow seen only for a definite, angle range with respect to the ground?, For clear visibility we must have a beam, of enough intensity. From the deviation curve, (Fig 9.19) it is clear that near minimum, deviation the curve is almost parallel to x-axis,, i.e., for majority of angles of incidence in this, range, the angle of deviation is nearly the same, and those are, almost parallel, forming a beam, of, enough, intensity. Thus,, Fig. b, the rays in the, near, vicinity, of, minimum, deviation are almost parallel to each other., Rays beyond this range suffer wide angular, dispersion and thus will not have enough, intensity for visibility., By using simple geometry for Figs., a and b it can be shown that the angle of, deviation between final emergent ray and the, incident ray is δ = π + 2i - 4r during primary, rainbow, and δ = 2π + 2i - 6r during secondary, rainbow. Using these relations and Snell’s, law sini = nsinr , we can obtain derivatives, of δ . Second derivative of δ comes out, to be negative, which shows that it is the, minima condition. Equating first derivative, to zero we can obtain corresponding values, , 177, , of i and r. Again, by using Figs. a and b, we, can obtain the corresponding angles θ R �and θ� V, at the horizontal, which is the visible angular, position for the rainbow., (III) Why is the rainbow a bow or an arch?, Can we see a complete circular rainbow?, Figure c illustrates formation of primary, and secondary rainbows with their common, centre O is the point where the line joining, the sun and the observer meets the Earth, when extended. P is location of the observer., Different colours of rainbows are seen on, arches of cones of respective angles described, earlier., , Fig. c, Smallest half angle refers to the cone of, violet colour of primary rainbow, which is, 410. As the Sun rises, the common centre of, the rainbows moves down. Hence as the Sun, comes up, smaller and smaller part of the, rainbows will be seen. If the Sun is above, 410, violet arch of primary rainbow cannot, be seen. Obviously beyond 530, nothing will, be seen. That is why rainbows are visible, only during mornings and evenings., However, if observer moves up (may be in, an aeroplane), the line PO itself moves up, making lower part of the arches visible., After a certain minimum elevation, entire, circle for all the cones can be visible., (IV) Size of water drops convenient for, rainbow: Water drops responsible for the, formation of a rainbow should not be too, small. For too small drops the phenomenon, of diffraction (redistribution of energy due, to obstacles, discussed in XIIth standard), dominates and clear rainbow can’t be seen.
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9.10 Defects of lenses (aberrations of optical, images):, As mentioned in the section 9.4 for, aberration for curved mirrors, while deriving, various relations, we assume most of the rays, to be paraxial by using lenses of small aperture., In reality, we have objects of finite sizes. Also,, Fig. 9.24: Chromatic aberration: (a), we need optical devices of large apertures, Convex lens., (lenses and/or mirrors of size few meters for, telescopes, etc.). In such cases the beam of rays, is no more paraxial, quite often not parallel also., As a result, the spherical oberration discussed, for spherical mirrors can occur for lenses also., Only one defect is mentioned corresponding to, monochromatic beam of light., Chromatic aberration: In case of mirrors, there is no dispersion of light due to refractive, index. However, lenses are prepared by using, a transparent material medium having different, Fig. 9.24: Chromatic aberration: (b), refractive index for different colours. Hence, Concave lens, angular dispersion is present. A convex lens can, Reducing/eliminating chromatic aberration:, be approximated to two thin prisms connected, Eliminating, chromatic, aberration, base to base and for a concave lens those are, simultaneously, for, all, the, colours, is, impossible., vertex to vertex. (Fig. 9.23 (a) and 9.23 (b)), We try to eliminate it for extreme colours which, reduces it for other colours. Convenient methods, to do it use either a convex and a concave, lens in contact or two thin convex lenses with, proper separation. Such a combination is called, achromatic combination., Achromatic combination of two lenses in, contact: Let ω1 and ω2 be the dispersive powers, of materials of the two component lenses used, Fig. 9.23: (a) Convex lens (b) Concave lens in contact for an achromatic combination., Their focal lengths f for violet, red and yellow, If the lens is thick, this will result into (assumed to be the mean colour) are suffixed by, notably different foci corresponding to each respective letters V, R and Y., colour for a polychromatic beam, like a, � 1 1 �, white light. This defect is called chromatic, Also, let K1 � � � � for lens 1 and, aberration, violet being focused closest to pole, � R1 R2 �1, as it has maximum deviation. (Fig 9.24 (a) and, � 1 1 �, 9.24 (b)) Longitudinal chromatic aberration, K 2 � � � � �for lens 2., � R1 R2 � 2, transverse chromatic aberration and circle of, least confusion are defined in the same manner For two thin lenses in contact,, 1 1 1 ……, as that of spherical aberration for spherical, � �, f, f1 f 2, mirrors., To be used separately for respective colours., For the combination to be achromatic, the, , 178
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resultant focal length of the combination must, be the same for both the colours, i.e., , 1, 1, =, fV f=, R ��or �, fV, fR, 1, 1, 1, 1, �, �, �, �, f1V f 2V, f1 R f 2 R, (n1V-1) K1 + (n2V-1) K2 = (n1R-1) K1 + (n2R-1) K2, …… using lens makers’ Eq. (9.7), K1 n2V � n2 R, �, K 2 n1V � n1R, For mean colour yellow,, �, , , , --- (9.17), , Example 9.11: After Cataract operation, a, person is recommended with concavo-convex, spectacles of curvatures 10 cm and 50 cm., Crown glass of refractive indices 1.51 for red, and 1.53 for violet colours is used for this., Calculate the lateral chromatic aberration, occurring due to these glasses., Solution: For a concavo-concave lens, both, the radii of curvature are either positive or both, negative. If convex shape faces object, both, will be positive. See the accompanying figure., , 1, 1, 1, �, �, �, fY, f1Y f 2Y, with �, and, , 1, � � n1Y � 1� K1 �, f1Y, , 1, � � n2Y � 1� K 2, f 2Y, , K1 � n2Y � 1 � � f 2Y, ��, ��, K 2 � n1Y � 1 � � f1Y, Equating R.H.S. of (9.17), rearranging, we can write, �, , � n � n2 R, f 2Y, � � � 2V, f1Y, � n2Y � 1, �, �� 2, �1, , Fig. Concavo-convex, lens with convex face, receiving incident rays, , , �, � --- (9.18), �, and (9.18) and, , � R1 � 10 �cm�and�R2 � 50 �cm�, � 1 1 � � 1, 1 �, �1, �� � � � �, �, � � 0.08�cm, 10, 50, �, �, R, R, �, �, 2 �, � 1, , � � n1R � n1R �, � ��, �, � � n1Y � 1 �, --- (9.19), , Equation (9.19) is the condition for achromatic, combination of two lenses, in contact., Dispersive power ω is always positive. Thus,, one of the lenses must be convex and the other, concave., If second lens is concave, f 2Y is negative., 1, 1, 1, �, �, fY, f1Y f 2Y, For this combination to be converging, fY, should be positive., Hence, f1Y < f 2Y �and �1 � �2, ∴, , Thus, for an achromatic combination if there, is a choice between flint glass ( n = 1.655), and crown glass ( n = 1.517 ), the convergent, (convex) lens must be of crown glass and the, divergent (concave) lens of flint glass., , , � 1 1 �, 1, and�� � � nV � 1� � � �, fV, � R1 R2 �, � �1.53 � 1� � 0.08 � �0.0424, � fV � 23.58�cm �, ∴ Longitudinal chromatic aberration, = fV - fR=25.51 - 23.58, = 1.93 cm,... (quite appreciable!), Verify that you get the same answer even, if you consider the concave surface facing the, incident rays., Spherical aberration: Longitudinal spherical, aberration, transverse spherical aberration and, circle of least confusion are defined in the same, manner as that for spherical mirrors. (Fig 9.25, (a) and 9.25 (b)), , 179
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Fig. 9.25 (a): Spherical aberration, Convex, lens., , Fig. 9.25 (b): Spherical aberration, Concave, lens, Methods to reduce/eliminate spherical, aberration of lenses:, (i) Cheapest method to reduce the spherical, aberration is to use a planoconvex or, planoconcave lens with curved side facing, the incident rays (real object). Reversing it, increases the aberration appreciably., (ii) Certain ratio of radii of curvature for a, given refractive index almost eliminates, the spherical aberration. For n = 1.5, the, R1 1, 1, = and for n = 2, it is, ratio is, R2 6, 5, (iii) Use of two thin converging lenses, separated by distance equal to difference, between their focal lengths with lens of, larger focal length facing the incident rays, considerably reduces spherical aberration., (iv) Spherical aberration of a convex lens is, positive (for real image), while that of a, concave lens is negative. Thus, a suitable, combination of them (preferably a double, convex lens of smaller focal length and, a planoconcave lens of greater focal, length) can completely eliminate spherical, aberration., , 9.11 Optical instruments:, Introduction: Whether an object appears, bigger or not does not necessarily depend upon, its own size. Huge mountains far off may appear, smaller than a small tree close to us. This is, because the angle subtended by the mountain, at the eye from that distance (called the visual, angle) is smaller than that subtended by the tree, from its position. Hence, apparent size of an, object depends upon the visual angle subtended, by the object from its position. Obviously, for, an object to appear bigger, we must bring it, closer to us or we should go closer to it., However, due to the limitation for focusing, the eye lens it is not possible to take an object, closer than a certain distance. This distance is, called least distance of distance vision D. For, a normal, unaided human eye D = 25cm. If an, object is brought closer than this, we cannot, see it clearly. If an object is too small (like, the legs of an ant), the corresponding visual, angle from 25 cm is not enough to see it and, if we bring it closer than that, its image on the, retina is blurred. Also, the visual angle made, by cosmic objects far away from us (such as, stars) is too small to make out minor details and, we cannot bring those closer. In such cases we, need optical instruments such as a microscope, in the former case and a telescope in the latter., It means that microscopes and telescopes help, us in increasing the visual angle. This is called, angular magnification or magnifying power., Magnifying power: Angular magnification or, magnifying power of an optical instrument is, defined as the ratio of the visual angle made, by the image formed by that optical instrument, (β) to the visual angle subtended by the object, when kept at the least distance of distinct vision, ( α ). (Figure 9.26 (a) and 9.26 (b)) In the case, of telescopes, α is the angle subtended by the, object from its own position as it is not possible, to get it closer., Simple microscope or a reading glass: In, order to read very small letters in a newspaper,, sometimes we use a convex lens. You might, have seen watch-makers using a special type, of small convex lens while looking at very tiny, , 180
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parts of a wrist watch. Convex lens used for, this purpose is a simple microscope., , Fig. 9.26: (a) Visual Angle α., , Fig. 9.26: (b) Visual Angle β., Figure 9.26 (a) shows visual angle α made, by an object, when kept at the least distance of, distinct vision D. Without an optical instrument, this is the greatest possible visual angle as we, cannot get the object closer than this. Figure, 9.26 (b) shows a convex lens forming erect,, virtual and magnified image of the same object,, when placed within the focus. The visual angle, β of the object and the image in this case are, the same. However, this time the viewer is, looking at the image which is not closer than, D. Hence the same object is now at a distance, smaller than D. It makes β greater then α and, the same object appears bigger., Angular magnification or magnifying, power, in this case, is given by, , For small angles � �and �� , we can write,, � BA �, � tan � � � �� PA �� D, �, M� �, �, � tan �� � � BA � u, � D �, - (numerically), �, �, Limiting cases:, (i) For maximum magnifying power, the image, should be nearest possible, i.e., at D., 1 1 1, For a thin lens, � � �, f v u, In this case,, u � �u, , � M max �, , D, D, � 1�, u, f, , , (ii) For minimum magnifying power, v � �,�, i.e., u = f (numerically), D D, � M min � �, u, f, , Thus the angular magnification by a lens of, � D�, �D�, focal length f is between � f � and � 1� f �, �, �, � �, only., For common human eyesight, D = 25 cm., Thus, if f = 5 cm,, � D�, �D�, M min � � �� � 5�and �M max � � 1 � � � 6, ., f �, � f �, �, Hence image appears to be only 5 to 6 times, bigger for a lens of focal length 5 cm., �D�, v, For M min � � f �� � 5 , v � � . ∴ m � u � � ., � �, Thus, the image size is infinite times that of the, object, but appears only 5 times bigger., For, �D�, M max � 1 � � �� � 6 , , � f �, �25, v � �25�cm.�Corresponding�u �, 6 cm, v, ∴ m= = 6 . Thus, image size is 6 times, u, that of the object, and appears also 6 times, larger., Example 9.12: A magnifying glass of focal, length 10 cm is used to read letters of thickness, 0.5 mm held 8 cm away from the lens. Calculate, the image size. How big will the letters appear?, Can you read the letters if held 5 cm away from, the lens? If yes, of what size would the letters, appear? If no, why not?, f � �10 �cm ,�u � �8�cm ,�v � ?�, 1 1 1, 1 1 1, � � ���� � � ���� v � �40 �cm ��, f v u 10 v �8, , o, , and M = M max, �, , , 1, 1, 1, D D D, ��, � ����� � �, �, f � D �u, f �D u, , M, =, , 181, , D 25, =, = 3.125�, u, 8
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∴ Image will appear to be 3.125 times bigger., i.e., 3.125 × 0.5 = 1.5625 cm, For µ = - 5 cm, v will be - 10 cm., For an average human being to see clearly,, the image must be at or beyond 25 cm. Thus, it, will not possible to read the letters if held 5 cm, away from the lens., Compound microscope: As seen above, the, magnifying power of a simple microscope, is inversely proportional to its focal length., However, if we need focal length to be smaller, and smaller, the corresponding lens becomes, thicker and thicker. For such a lens both, spherical as well as chromatic aberrations are, dominant. Thus, if higher magnifying power is, needed, we go for using more than one lenses., The instrument is then called a compound, microscope. It is used to view very small objects, (sizes, . Also, whether, the image is erect or inverted is immaterial., A compound microscope essentially uses, two convex lenses of suitable focal lengths fit, into a cylindrical tube with some adjustment, possible for its length. The smaller lens (∼ 4 mm, to 6 mm aperture) facing the object is called the, objective. Other lens with which the observer, jams her/his eye is litter larger and called as, the eye lens. (Fig 9.27) During this discussion, we consider the eye lens to be a single lens, but, in practice it is an eyepiece, itself consisting of, two planoconvex lenses., , rmediate) image A′ B′ is within its focus. Hence,, for this object A′ B′, the eye lens behaves as a, simple microscope and produces its virtual and, magnified image A′′ B′′, which is inverted with, respect to original object AB., Magnifying power of a compound, microscope with two lenses: From its position,, the final image A′′ B′′ makes a visual angle β, at the eye (jammed at the eye lens). Visual angle, made by the object from distance D is α., A " B " A'B', �, ∴ tan � �, ve, ue, AB, tan � �, (Fig. 9.29 (a)), D, ∴Angular magnification or magnifying power,, , � tan � � A�B� � � D �, �, ��, ��, � tan � � ue � �� AB ��, � A�B� � � D �, ��, ��� �, � AB � � ue �, , M�, , � M � mo � M e, v, � A'B' �, � mo � o is the linear (lateral), Where, �, �, uo, � AB �, magnification of the objective and, , �D�, � � � M e is the angular magnification or, � ue �, magnifying power of the eye lens. Length, of the compound microscope then becomes, L = distance between the two lenses v0 + ue., Remarks:, (i) In order to increase mo , we need to decrease, uo . Thereby, the object comes closer, and closer to the focus of the objective., This increases v0 and hence length of the, microscope. Thus mo can be increased, only within the limitation of length of the, microscope., �D�, (ii) Minimum value of M e is � � for final, � fe �, image at infinity and maximum value of, , Fig. 9.27: Compound Microscope., As shown in the Fig. 9.27, a tiny object, �, D�, M e is � 1� � for final image at D, AB is placed between f and 2f of the objective, fe �, �, which produces its real, inverted and magnified, m, M, image A′ B′ in front of the eye lens. Position respectively. e and o together decide, the minimum and maximum magnifying, of the eye lens is so adjusted that the (intepower of the microscope., , 182
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Example 9.13: The pocket microscope used by, a student consists of eye lens of focal length, 6.25 cm and objective of focal length 2 cm., At microscope length 15 cm, the final image, appears biggest. Estimate distance of the object, from the objective and magnifying power of the, microscope., Solution:, , 1, 1 1, 1, 4, �, � ����, �, f e v e ue, 6.25 25, �, , 1, 1, � ���� ue � 5�cm ���, �25 ue, , � v o � L � ue � 15 � 5 � 10�cm��, , 1, 1 1, 1, 1, 1, �, � ���� �, � ���� uo � 2.5�cm, f o v o uo, 2 �10 uo, , � v �� D �, M � mo � M e � � 0 � � �, � uo � � ue �, � 10 � � 25 �, ��, � � � � 4 � 5 � 20, � 2.5 � � 5 �, Telescope: Telescopes are used to see terrestrial, or astronomical bodies. A telescope essentially, uses two lenses (or one large parabolic mirror, and a lens). The lens facing the object (called, objective) is of aperture as large as possible. For, Newtonian telescopes, a large parabolic mirror, faces the object., For terrestrial telescopes the objects to be, seen are on the Earth , like mountains, trees,, players playing a match in a stadium, etc. In, such case, the final image must be erect. Eye, lens used for this purpose must be concave, and such a telescope is popularly called a, binocular. A variety of binoculars use three, convex lenses with proper separation. The, third lens again inverts the second intermediate, image and makes final image erect with respect, to the object. In this text we shall be discussing, astronomical telescope., For an astronomical telescope, the objects, to be seen are planets, stars, galaxies, etc. In, this case there is no necessity of erect image., , Such telescopes use convex lens as eye lens., (Fig. 9.27)., , Fig. 9.28: Telescope., Magnifying power of a telescope: Objects, to be seen through a telescope cannot be, brought to distance D from the objective, like, in microscopes. Hence, for telescopes, α is the, visual angle of the object from its own position,, which is practically at infinity. Visual angle of, the final image is β and its position can be, adjusted to be at D. However, under normal, adjustments, the final image is also at infinity, but making a greater visual angle than that of, the object. (If the image is really at infinity,, there will not be any parallax at the cross wires)., Beam of incident rays is now inclined at an, angle α with the principal axis while emergent, beam is inclined at a greater angle β with the, principal axis causing angular magnification., (Fig. 9.28), Objective of focal length fo focusses the, parallel incident beam at a distance fo from the, objective giving an inverted image AB. For, normal adjustment, the eye lens is so adjusted, that the intermediate image AB happens to be at, the focus of the eye lens. Rays refracted beyond, the eye lens form a parallel beam inclined at an, angle β with the principal axis resulting into, the image also at infinity., ∴Angular magnification or magnifying power,, � BA � � BA �, �, � �, �, � tan � � Pe B � � f e �, M� �, �, �, � tan � � BA � � BA �, �, � �, �, � Po B � � f o �, �M �, , fo, fe, , Length of the telescope for normal adjustment, is L � f o � f e, Under the allowed limit of length objective of, , 183
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maximum possible focal length f o and eye lens L= f0 + fe ∴1.05 = 1 + f0 ∴ fe = 0.05 m = 5 cm, of minimum possible focal length f e can be Under normal adjustments,, chosen for maximum magnifying power., fo, 1, M, = =, = 20, Example 14: Focal length of the objective of, f e 0.05, an astronomical telescope is 1 m. Under normal, adjustment, length of the telescope is 1.05, m. Calculate focal length of the eyepiece and, magnifying power under normal adjustment., Solution: For astronomical telescope,, ises, , erc, , Ex, , Exercises, , 1. Choose the correct option, i., As per recent understanding light consists, of, , (A) rays , , (B) waves , , (C) corpuscles, , (D) photons obeying the rules of waves, ii., Consider optically denser lenses P, Q,, R and S drawn below. According to, Cartesian sign convention which of these, have positive focal length?, , , , , , , iii., , , , iv., , , , , , , , (A) Only P, (B) Only P and Q, (C) Only P and R , (D) Only Q and S, Two plane mirrors are inclined at angle, 400 between them. Number of images, seen of a tiny object kept between them is, (A) Only 8 , (B) Only 9, (C) 8 or 9 , (D) 9 or 10, A concave mirror of curvature 40 cm,, used for shaving purpose produces image, of double size as that of the object. Object, distance must be, (A) 10 cm only, (B) 20 cm only , (C) 30 cm only, (D) 10 cm or 30 cm, , v., , Which of the following aberrations will, NOT occur for spherical mirrors?, , (A) Chromatic aberration , , (B) Coma, , (C) Distortion, , (D) Spherical aberration, vi. There are different fish, monkeys and, water on the habitable planet of the star, Proxima b. A fish swimming underwater, feels that there is a monkey at 2.5 m on the, top of a tree. The same monkey feels that, the fish is 1.6 m below the water surface., Interestingly, height of the tree and the, depth at which the fish is swimming are, exactly same. Refractive index of that, water must be, , (A) 6/5 , (B) 5/4 , , (C) 4/3 , (D) 7/5, vii. Consider, following, phenomena/, applications: P) Mirage, Q) rainbow,, R) Optical fibre and S) glittering of a, diamond. Total internal reflection is, involved in, , (A) Only R and S, (B) Only R, , (C) Only P, R and S (D) all the four, viii. A student uses spectacles of number -2 for, seeing distant objects. Commonly used, lenses for her/his spectacles are, , (A) bi-concave , , (B) double concave, , (C) concavo-convex, , (D) convexo-concave, , 184
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ix., , A spherical marble of refractive index 2. Answer the following questions., 1.5 and curvature 1.5 cm, contains a tiny i), As per recent development, what is the, air bubble at its centre. Where will it, nature of light? Wave optics and particle, appear when seen from outside?, nature of light are used to explain which, , (A) 1 cm inside , (B) at the centre, phenomena of light, respectively?, , (C) 5/3 cm inside, (D) 2 cm inside, ii) Which phenomena can be satisfactorily, explained using ray optics? State the, x., Select the WRONG statement., assumptions on which ray optics is based., (A) Smaller angle of prism is, recommended, for greater angular iii) What is focal power of a spherical mirror, or of a lens? What may be the reason for, dispersion., 1, , (B) Right angled isosceles glass prism is, using P =, as its expression?, f, commonly used for total internal , reflection., iv) At which positions of the objects do, , (C) Angle of deviation is practically, spherical mirrors produce (i) diminished, constant for thin prisms., image, (ii) magnified image?, , (D) For emergent ray to be possible from v), State the restrictions for having images, the second refracting surface, certain, produced by spherical mirrors to be, appreciably clear., minimum angle of incidence is, vi) Explain spherical aberration for spherical, necessary from the first surface., mirrors. How can it be minimized? Can it, xi. Angles of deviation for extreme colours, be eliminated by some curved mirrors?, are given for different prisms. Select the, one having maximum dispersive power vii) Define absolute refractive index and, relative refractive index. Explain in brief,, of its material., with an illustration for each., , (A) 7°, 10°, (B) 8°, 11° , viii) Explain ‘mirage’ as an illustration of, (C) 12°, 16°, (D) 10°, 14°, refraction., xii. Which of the following is not involved in, ix) Under what conditions is total internal, formation of a rainbow?, reflection possible? Explain it with a, , (A) refraction, suitable example. Define critical angle of, , (B) angular dispersion, incidence and obtain an expression for it., , (C) angular deviation, x), Describe construction and working of, , (D) total internal reflection, an optical fibre. What are the advantages, xiii. Consider following statements regarding, of optical fibre communication over, a simple microscope:, electronic communication?, , (P) It allows us to keep the object within xi) Why is a prism binoculars preferred, the least distance of distant vision., over traditional binoculars? Describe its, working in brief., , (Q) Image appears to be biggest if the, object is at the focus., xii) A spherical surface separates two, transparent media. Derive an expression, , (R) It is simply a convex lens., that relates object and image distances, , (A) Only (P) is correct , with the radius of curvature for a point, (B) Only (P) and (Q) are correct, , object. Clearly state the assumptions, if, , (C) Only (Q) and (R) are correct , any., (D) Only (P) and (R) are correct, , 185
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xiii) Derive lens makers’ equation. Why is it, called so? Under which conditions focal, length f and radii of curvature R are, numerically equal for a lens?, 2., Answer the following questions in, detail., i), What are different types of dispersions of, light? Why do they occur?, ii) Define angular dispersion for a prism., Obtain its expression for a thin prism., Relate it with the refractive indices of the, material of the prism for corresponding, colours., iii) Explain and define dispersive power, of a transparent material. Obtain its, expressions in terms of angles of, deviation and refractive indices., iv) (i) State the conditions under which a, rainbow can be seen., , (ii) Explain the formation of a primary, rainbow. For which angular range with, the horizontal is it visible?, , (iii) Explain the formation of a secondary, rainbow. For which angular range with, the horizontal is it visible?, , (iv) Is it possible to see primary and, secondary rainbow simultaneously?, Under what conditions?, v), (i) Explain chromatic aberration for, spherical lenses. State a method to, minimize or eliminate it., , (ii) What is achromatism? Derive a, condition to achieve achromatism for a, lens combination. State the conditions, for it to be converging., vi) Describe spherical aberration for, spherical lenses. What are different ways, to minimize or eliminate it?, vii) Define and describe magnifying power of, an optical instrument. How does it differ, from linear or lateral magnification?, viii) Derive an expression for magnifying, power of a simple microscope. Obtain its, minimum and maximum values in terms, of its focal length., , Derive the expressions for the magnifying, power and the length of a compound, microscope using two convex lenses., x), What is a terrestrial telescope and an, astronomical telescope?, xi) Obtain the expressions for magnifying, power and the length of an astronomical, telescope under normal adjustments., xii) What are the limitations in increasing, the magnifying powers of (i) simple, microscope (ii) compound microscope, (iii) astronomical telescope?, 3. Solve the following numerical examples, i), A monochromatic ray of light strike the, water (n = 4/3) surface in a cylindrical, vessel at angle of incidence 530. Depth of, water is 36 cm. After striking the water, surface, how long will the light take to, reach the bottom of the vessel? [Angles, of the most popular Pythagorean triangle, of sides in the ratio 3:4:5 are nearly 370,, 530 and 900], , [Ans: 2 ns], ii) Estimate the number of images produced, if a tiny object is kept in between two, plane mirrors inclined at 350, 360, 400 and, 450., , [Ans: 10, 9, 9 or 8, 7 respectively], iii) A rectangular sheet of length 30 cm and, breadth 3 cm is kept on the principal axis, of a concave mirror of focal length 30 cm., Draw the image formed by the mirror on, the same ray diagram, as far as possible, on scale., , [Ans: Inverted image starts from 50, cm and ends at 90 cm. Its height in the, beginning is 2 cm and at the end it is, 6 cm. At 60 cm, image height is 3 cm., Thus, outer boundary if the image is a, curve], iv) A car uses a convex mirror of curvature, 1.2 m as its rear-view mirror. A minibus, of cross section 2.4 m × 2.4 m is 6.6 m, away from the mirror. Estimate the image, size., , [Ans: A square of edge 0.2 m], ix), , 186
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v), , A glass slab of thickness 2.5 cm having, refractive index 5/3 is kept on an ink spot., A transparent beaker of very thin bottom,, containing water of refractive index 4/3, up to 8 cm, is kept on the glass block., Calculate apparent depth of the ink spot, when seen from the outside air. , , [Ans: 7.5 cm], vi) A convex lens held some distance above, a 6 cm long pencil produces its image, of SOME size. On shifting the lens by a, distance equal to its focal length, it again, produces the image of the SAME size as, earlier. Determine the image size., , [Ans: 12 cm], vii) Figure below shows the section ABCD of, a transparent slab. There is a tiny green, LED light source at the bottom left corner, B. A certain ray of light from B suffers, total internal reflection at nearest point P, on the surface AD and strikes the surface, CD at point Q. Determine refractive index, of the material of the slab and distance, DQ. At Q, the ray PQ will suffer partial, or total internal reflection? [You may use, the approximation given in Q 1 above]., , [Ans: n = 5/4, DQ = 1.5 cm,, Partial internal reflection at Q], , viii) A point object is kept 10 cm away from, one of the surfaces of a thick double, convex lens of refractive index 1.5 and, radii of curvature 10 cm and 8 cm. Central, thickness of the lens is 2 cm. Determine, location of the final image considering, paraxial rays only., , Hint : Single spherical surface formula, to be used twice., , [Ans: 64 cm away from the other surface], , ix), , A monochromatic ray of light is incident, at 370 on an equilateral prism of refractive, index 3/2. Determine angle of emergence, and angle of deviation. If angle of prism, is adjustable, what should its value be for, emergent ray to be just possible for the, same angle of incidence., , [Ans: e = 63°, δ = 40°, A = 65° 24' for, , e = 90° (just emerges)], x), From the given data set, determine, angular dispersion by the prism and, dispersive power of its material for, extreme colours. nR = 1.62 nV = 1.66,, δR = 3.1°, 1, , [Ans: δVR = 0.2°, ωVR =, = 0.0625], 16, xi) Refractive index of a flint glass varies, from 1.60 to 1.66 for visible range. Radii, of curvature of a thin convex lens are 10, cm and 15 cm. Calculate the chromatic, aberration between extreme colours., , [Ans: 10/11 cm], xii) A person uses spectacles of ‘number’, 2.00 for reading. Determine the, range of magnifying power (angular, magnification) possible. It is a concavoconvex lens (n = 1.5) having curvature of, one of its surfaces to be 10 cm. Estimate, that of the other. , [Ans: Mmin = 0.5, Mmax = 1.5 R2 = 50/3 cm], xiii) Focal power of the eye lens of a compound, microscope is 6 dioptre. The microscope, is to be used for maximum magnifying, power (angular magnification) of at least, 12.5. The packing instructions demand, that length of the microscope should be, 25 cm. Determine minimum focal power, of the objective. How much will its radius, of curvature be if it is a biconvex lens of, n = 1.5., , [Ans: 40 dioptre, 2.5 cm], , 187, , ***
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Electrostatics, , 10., Can you recall?, , 1. Have you experienced a shock while getting up from a plastic chair and shaking hand with your, friend?, 2. Ever heard a crackling sound while taking out your sweater in winter?, 3. Have you seen the lightning striking during pre-monsoon weather?, , 10.1 Introduction:, Electrostatics deals with static electric, charges, the forces between them and the, effects produced in the form of electric fields, and electric potentials. We have already, studied some aspects of electrostatics in earlier, standards. In this Chapter we will review some, of them and then go on to study some aspects, in details., Current electricity, which plays a major role, in our day to day life, is produced by moving, charges. Charges are present everywhere around, us though their presence can only be felt under, special circumstances. For example, when we, remove our sweater in winter on a dry day, we, hear some crackling sound and the sweater, appears to stick to our body. This is because, of the electric charges produced due to friction, between our body and the sweater. Similarly,, the lightening that we see in the sky is also due, to the flow of large amount of electric charges, that develop on the clouds due to friction., 10.2 Electric Charges:, Historically, opposite electric charges, were known to the Greeks in the 600 BC., They realized that equal and opposite charges, develop on amber and fur when rubbed against, each other. Now we know that electric charge, is a basic property of elementary particles of, which matter is made of. These elementary, particles are proton, neutron, and electron., Atoms are made of these particles and matter is, made from atoms. A proton is considered to be, positively charged and electron to be negatively, charged. Neutron is electrically neutral, i.e., it, has no charge. An atomic nucleus is made up, of protons and neutrons and hence is positively, charged. Negatively charged electrons surround, , the nucleus so as to make an atom electrically, neutral. Thus, most matter around us is, electrically neutral., , Fig. 10.1 a, , Fig. 10.1 b, , Fig. 10.1 c, Fig. 10.1 d, Fig. 10.1 (a): Insulated conductor, Fig. 10.1 (b): +ve charge is neutralized by, electron from Earth, Fig. 10.1 (c): Earthing is removed -ve, charge still stays on the conductor due to, +ve charged rod, Fig. 10.1 (d): Rod removed -ve charge is, distributed over the surface of the conductor, When certain dissimilar substances, like, fur and amber or comb and dry hair are rubbed, against each other, electrons get transferred, to the other substance making them charged., The substance receiving electrons develops a, negative charge while the other is left with an, equal amount of positive charge. This can be, called charging by conduction as charges are, transfered from one body to another. Charges, can be separated by other means as well, like, , 188
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chemical reactions (in cells), convection (in, clouds), diffusion (in living cells) etc., If an uncharged conductor is brought near, a charged body, (not in physical contact) the, nearer side of the conductor develops opposite, charge to that on the charged body and the far, side of the conductor develops charge similar, to that on the charged body. This is called, induction. This happens because the electrons, in a conductor are free and can move easily in, presence of a charged body. This can be seen, from Fig. 10.1., A charged body attracts or repels electrons, in a conductor depending on whether the charge, on the body is positive or negative respectively., Positive and negative charges are redistributed, and are accumulated at the ends of the conductor, near and away from the changed body. From, the above discussion it can be inferred that, there are only two types of charges found in, nature, namely, positive and negative charges., In induction, there is no transfer of charges, between the charged body and the conductor., So when the charged body is moved away from, the conductor, the charges in the conductor are, free again., Can you tell?, 1. When a petrol or a diesel tanker is, emptied in a tank, it is grounded., 2. A thick chain hangs from a petrol or a, diesel tanker and it is in contact with, ground when the tanker is moving., 10.3 Basic Properties of Electric Charge:, 10.3.1 Additive Nature of Charge:, Electric charge is additive, similar to mass., The total electric charge on an object is equal, to the algebraic sum of all the electric charges, distributed on different parts of the object., It may be pointed out that while taking the, algebraic sum, the sign (positive or negative) of, the electric charges must be taken into account., Thus if two bodies have equal and opposite, charges, the net charge on the system of the two, bodies is zero. This is similar to that in case of, atoms where the nucleus is positively charged, and this charge is equal to the negative charge, , 189, , Gold Leaf Electroscope:, This is a classic instrument for detecting, presences of electric charge. A metal disc, is connected to one end of a narrow metal, rod and a thin piece of gold leaf is fixed to, the other end. The whole of this part of the, electroscope is insulted from the body of, the instrument. A glass front prevents air, draughts but allows to observe the effect of, charge on the leaf., When a charge is put on the disc at the, top it spreads down to the plate and leaf, moves away from the plate. This happens, because similar charges repel. The more the, charge on the disc, more is the separation of, the leaf from the plate., The leaf can be made to fall again by, touching the disc. This is done by earthing, the electroscope. An earth terminal prevents, the case from accumulating any stray, charge. The electroscope can be charged in, two ways., (a) by contact- a charged rod is brought, in contract with the disc and charge, is transferred to the electroscope. This, method gives the gold leaf the same, charge as that on the conductor. This is, not a very effective method of charging, the electroscope., (b) by induction- a charged rod is brought, close to the disc (not touching it) and, the electroscope is earthed. The rod, is then removed. This method give the, gold leaf opposite charges., The following diagrams show how the, charges spread to the gold leaf and lift it.
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of the electrons making the atoms electrically, neutral ., It is interesting to compare the additive, property of charge with that of mass., 1) The masses of the particles constituting, an object are always positive, whereas the, charges distributed on different parts of the, abject may be positive or negative., 2) The total mass of an object is always, positive whereas, the total charge on the, object may be positive, zero or negative., 10.3.2 Quantization of Charge:, The minimum value of the charge on an, electron as determined by the Milikan's oil drop, experiment is e = 1.6×10-19 C. This is called the, elementary charge. Here, C stands for coulomb, which is the unit of charge in SI system. Unit of, charge is defind in article 10.4.3. Since protons, (+ve) and electrons (-ve) are the charged, particles constituting matter, the charge on, an object must be an integral multiple of ±e., q = ± ne, where n is an integer., Further, charge on an object can be, increased or decreased in multiples of e. It, is because, during the charging process an, integral number of electrons can be transferred, from one body to the other body. This is known, as quantization of charge or discrete nature of, charge., The discrete nature of electric charge is, usually not observable in practice. It is because, the magnitude of the elementary electric charge,, e, is extremely small. Due to this, the number, of elementary charges involved in charging an, object becomes extremely large. Suppose, for, example, when a glass rod is rubbed with silk,, a charge of the order of one µC (10-6 C) appears, on the glass rod or silk. Since elementary charge, e = 1.6×10-19 C, the number of elementary, charges on the glass rod (or silk) is given by, n=, , Example 10.1: How much positive and, negative charge is present in 1gm of water?, How many electrons are present in it? Given,, molecular mass of water is 18.0 g., Solution: Molecular mass of water is 18.0 gm,, that means the number of molecules in 18.0 gm, of water is 6.02×1023., ... Number of molecules in 1gm of water, = 6.02×1023/18. One molecule of water (H2O), contains two hydrogen atoms and one oxygen, atom. Thus the number of electrons in H2O, is sum of the number of electrons in H2 and, oxygen. There are 2 electrons in H2 and 8, electrons oxygen. , ∴Number of electrons in H2O = 2+8 = 10., Total number of protons / electrons in 1.0, 6.02 � 1023, gm of water �, � 10 � 3.34 � 1023, 18, Total positive charge = 3.34×1023 × charge, on a proton, = 3.34×1023 ×1.6×10-19 C = 5.35×104 C, This positive charge is balanced by equal, amount of negative charge so that the water, molecule is electrically neutral., , 10�6 C, � 6.25 � 1012, 1.6 � 10�19 C, , Do you know ?, , According to recent advancement in physics,, it is now believed that protons and neutrons, are themselves built out of more elementary, units called quarks. They are of six types,, having fractional charge (-1/3)e or +(2/3)e. A, proton or a neutron consists of a combination, of three quarks. It may be clearly understood, that even in the quark model, quantization of, charge is not affected. It is only the step size, of the charge that decreases from e to e/3., Quarks are always present in bound states, and no free quarks are known to exist., In modern day experiments it is possible to, observe the discrete nature of charge in very, sensitive divides such as single electron, transistor, , Since it is a tremendously large number, 10.3.3 Conservation of Charge:, the quantization of charge is not observed and, We know that when a glass rod is rubbed, one usually observes a continuous variation of with silk, it becomes positively charged and, charge., silk becomes negatively charged. The amount, , 190
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of positive charge on glass rod is found to be, exactly the same as negative charge on silk., Thus, the systems of glass rod and silk together, possesses zero net charge after rubbing., Result and conclusion of this experiment, can be generalized and we can say that "in, any given physical process, charge may get, transferred from one part of the system to, another, but the total charge in the system, remains constant" or, for an isolated system, total charge cannot be created nor destroyed., In simple words, the total charge of an isolated, system is always conserved., 10.3.4 Forces between Charges:, It was observed in carefully conducted, experiments with charged objects that they, experience force when brought close (not, touching) to each other. This force can be, attractive or repulsive. Like charges repel, each other and unlike charges attract each, other. Figure 10.2 describes this schematically., This is the reason for charging by induction as, described in section 10.2 and Fig. 10.1., , Fig. 10.2: Attractive and repulsive force., 10.4 Coulomb’s Law:, The electric interaction between two, charged bodies can be expressed in terms of the, forces they exert on each other. Coulomb (17361806) made the first quantitative investigation, of the force between electric charges. He used, point charges at rest to study the interaction., A point charge is a charge whose dimensions, are negligibly small compared to its distance, from another bodies. Coulomb’s law is a, fundamental law governing interaction, between charges at rest., 10.4.1 Scalar form of Coulomb’s Law:, Statement : The force of attraction or, repulsion between two point charges at rest, is directly proportional to the product of, the magnitude of the charges and inversely, , proportional to the square of the distance, between them. This force acts along the line, joining the two charges., Let q1 and q2 be two point charges at, rest with respect to each other and separated, by a distance r. The magnitude F of the force, between them is given by,, qq, Fα 122, r, q1q2, F=K 2, r --- (10.1), where K is the constant of proportionality. Its, magnitude depends on the units in which F, q1,, q2 and r are expressed and also on the properties, of the medium around the charges., The force between the two charges will be, attractive if they are unlike (one positive and one, negative). The force will be repulsive if charges, are similar (both positive or both negative)., Figure 10.3 describes this schematically., , Fig. 10.3: Coulomb’s law., 10.4.2 , Relative Permittivity or Dielectric, Constant:, While discussing the coulomb’s law it was, assumed that the charges are held stationery, in vacuum. When the charges are kept in, a material medium, such as water, mica or, parafined paper, the medium affects the force, between the charges. The force between the two, charges placed in a medium may be written as,, , 191, , Fmed =, , 1, 4��, , � q1q 2 �, � r 2 � , �, �, , --- (10.2)
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where ε is called the absolute permittivity of force between charges by a factor of εr, its, the medium. The force between the same two relative permittivity., charges placed in free space or vacuum at, While using Eq. (10.5) we assume that, distance r is given by,, the medium is homogeneous, isotropic and, infinitely large., 1 � q1q 2 � , Fvac =, --- (10.3) 10.4.3 Definition of Unit Charge from the, �, �, 4�� 0 � r �, Coulomb’s Law:, Dividing Eq. (10.3) by (10.2), The force between two point charges q1, 1 � q1q 2 �, and q2, separated by a distance r in free space, is, Fvac 4�� 0 �� r �� �, =, =, written by using Eq. (10.2),, 1 � q1q 2 � � 0, Fmed, qq, qq, 1, 4�� �� r ��, F�, � 1 2 2 � 9 � 109 � 1 2 2, 4�� 0, r, r, ε, -12, 2, -1, -2, ε0 = 8.85 Í10 C N m, The ratio, is the relative permittivity, ε0, If, q1= q2= 1C and r = 1.0 m, or dielectric constant of the medium and is, denoted by εr or K., Then F = 9.0Í109 N, F, �, From this, we define, coulomb (C) the unit, K or � r � � vac, --- (10.4), � 0 Fmed, of, charge, in SI units., , One coulomb is the amount of charge, Thus,, which, when placed at a distance of one, (i) εr is the ratio of absolute permittivity of a metre from another charge of the same, medium to the permittivity of free space., magnitude in vacuum, experiences a force of, (ii) εr is the ratio of the force between two point 9.0 × 109 N. This force is a tremendously large, charges placed a certain distance apart in force realisable in practical situations. It is,, free space or vacuum to the force between therefore, necessary to express the charge in, the same two point charges when placed at smaller units for practical purpose. Subunits, the same distance in the given medium., of coulomb are used in electrostatics. For, example, micro-coulomb (10-6 C, µC), nano εr is a dimensionless quantity., -9, -12, (iii) εr is also called specific inductive capacity. coulomb (10 C, nC) or pico-coulomb. (10 C,, The force between two point charges q pC) are normally used units., 2, , 2, , 2, , 1, , and q2 placed at a distance r in a medium of, relative permittivity εr, is given by, 1 q1q 2, F�, , --- (10.5), 4�� 0� r r 2, For water, εr = 80 then from Eq. (10.4), Fvac, Fwater, , � � r � 80, , Fwater �, , Fvac, 80, , This means that when two point charges, are placed some distance apart in water, the, th, force between them is reduced to �� 1 �� of the, � 80 �, force between the same two charges placed at, the same distance in vacuum., Thus, a material medium reduces the, , Do you know ?, Force between two charges of 1.0 C each,, separated by a distance of 1.0 m is 9.0×109 N, or, about 10 million metric tonne. A normal, truck-load is about 10 metric tonne. So, this, force is equivalent to about one million truckloads. A tremendously large force indeed !, Example 10.2: Charge on an electron is, 1.6×10-19 C. How many electrons are required, to accumulate a charge of one coulomb?, Solution: 1.6Í10-19 C = 1 electron, 1, electrons, 1.6 � 10�19, � 0.625 � 1019 � 6.25 � 1018 electron, ns, , �1C �, , 6.25×1018 electrons are required, accumulate a charge of one coulomb., , 192, , to
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It is now possible to measure a very Here, q1 = q2 = +1.6×10-19 C, r = 10-15m, small amount of current in otto-amperes, (1.6 � 10�19 ) (1.6 � 10�19 ), � Fe � 9 � 109, which measures flow of single electron., (10�15 ) 2, 10.4.4 Coulomb’s Law in Vector Form:, � 9 � 1.6 � 1.66 � 101 N, --- (10.8.a), Fe � 2.3 � 102 N, As shown in Fig 10.4, q1 and q2 are two, similar point charges situated at points A and B., The gravitational force between the, r��12 is the distance of separation between them. protons is given by, mm, F 21 denotes the force exerted on q2 by q1, Fg = G 1 2 2, r, �, q1q 2 �, 1, 6.674 � 10�11 � 1.67 � 10�27 � 1.67 � 10�27, �, � r 21, F21 �, --- (10.6), �, 4�� 0 r� 21 2, (10�15 ) 2, --- (10.8.b), Fg � 1.86 � 10�34 N, Comparing 10.8. (a) and 10.8.(b), Fe, 2.30 � 10�2 N, = 1.23 � 1036, �, Fg 1.86 � 10�34 N, , 1, , Fig. 10.4: Coulomb’s law in vector form, r 21 is the unit vector along AB , away, , from B. Similarly, the force F12 exerted on q1, by q2 is given by, �, qq, 1, � 1 22 � �r12, F12 �, --- (10.7), 4�� 0 r12, , r12, is the unit vector along BA , away from, A. F12 acts on q1at A and is directed along BA,, away from A. The unit vectors r12 and r 21 are, oppositely directed i.e., r12 � � r 21 hence,, , ��, F 21 = - F12, Thus, the two charges experience force, of equal magnitude and opposite in direction., These, form an action- reaction pair., �� two forces, , As F 21 and F12 act along the line joining, the two charges, the electrostatic force is a, central force., Example 10.3: Calculate and compare the, electrostatic and gravitational forces between, two protons which are 10-15 m apart. Value of, G = 6.674×10-11 m3 kg-1 s-2 and mass of the, proton is 1.67×10-27 kg, Solution: The electrostatic force between the, protons is given by Fe �, , 1 q1q 2, 4�� 0 r 2, , Thus, the electrostatic force is about, 36 orders of magnitude stronger than the, gravitational force., Comparison of gravitational and, electrostatic forces:, Similarities, 1. Both forces obey inverse square law :, 1, F∝ 2, r, 2. Both are central forces : act along the, line joining the two objects., Differences, 1. Gravitational force between two objects, is always attractive while electrostatic, force between two charges can be, either attractive or repulsive depending, on the nature of charges., 2. Gravitational force is about 36, orders of magnitude weaker than the, electrostatic force., 10.5 Principle of Superposition:, The principle of superposition states that, when a number of charges are interacting,, the resultant force on a particular charge is, given by the vector sum of the forces exerted by, individual charges., Consider a number of point charges q1, q2,, q3 ------- kept at points A1, A2, A3--- as shown, in Fig. 10.5. The force exerted, on the charge, , q1 by q2 is F12 . The value of F12 is calculated, , 193
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by ignoring the presence, , of other charges., Similarly, we find F13 , F14 etc, one at a time,, using the coulomb’s law., , ��, F AC, ��, F AB, , F14, , 2µ C, A, , 4 cm, , 3µ C B, , θ, 3 cm, , F15, , F13, , Fig. a: Position of charges., q2, A2, , C, , q1, A1, q3, A3, , F12, , Solution : Given,, AB = 4.0 cm, BC = 3.0 cm, , q5, q4, , � AC = 4 2 � 32 � 5.0 cm, ��, Magnitude of force F AB on A due to B is,, , A5, A4, , Fig. 10.5: Principle, of superposition., ��, Total force F 1 on charge q1 is the vector, sum of all such forces., � �, �, �, F1 � F12 � F13 � F14 � ..., 1, �, 4�� 0, , 4µC, , �, �, � q1q 2 �r12 � q1q 3 �r13 � ...� ,, � 2, �, �� 2, r13, ��, �� r12, , ��, � 1 � 2 � 10�6 � 3 � 10�6, F AB � �, �, �2 2, � 4�� 0 � (4 � 10 ), 9 � 109 � 6, �, � 10�12, �4, 16 � 10, = 3.37 � 10, = 33.7 N, , This, ����force acts at point A and is directed, along BA (Fig. (b))., ��, , , F, where r12 , r13 etc., are unit vectors directed to, ��, F AC, q1 from q2, q3 etc., and r12, r13, r14,etc., are the, distances from q1 to q2, q3 etc respectively., ��, A, Let there be ��N point charges q1, q2,q3, F AB, etc., qN. The force F exerted by these charges, Fig. b: Forces acting at point A., on a test charge q0 can be written using the, ��, summation, notation, Σ, as, follows,, F AC on A due to C is,, Magnitude, of, force, , , , F test � F1 � F2 � F3 � � � � � F N --- (10.9), ��, � 1 � 2 � 10�6 � 4 � 10�6, N, N, F, �, AC, q 0q n , 1, �, �, --- (10.10), � � Fn =, r 0n, 4�� 0 �, (5 � 10�2 ) 2, �, 2, �, 4�� 0 n=1 r0 n, n=1, 9 � 109 � 8.0 � 10�12, �, Where r 0n is a unit vector directed from the, 25 � 10�4, nth charge to the test charge qo and r0n is the, �, 72, separation between them, r 0 n = r0 n r�, � � 10 � 28.8 N, 0n, 25, Can you tell?, This, ����force acts at point A and is directed, Three charges, q each, are placed at the along CA . (Fig. 10.6.(b)), �� ��, ��, vertices of an equilateral triangle. What will, F, =, F, AB + F AC, be the resultant force on charge q placed at, Magnitude of resultant force is,, the centroid of the triangle?, 2, 2, Example 10.4: Three charges of 2µC, 3µC, F = �� FAC, � FAB, � 2 FAC � FAB � cos � �� 1/ 2, and 4µC are placed at points A, B and C, � 59.3 N, respectively, as shown in Fig. a. Determine the, force on A due to other charges., , 194
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Direction of the resultant force is 16.9° electric field of a charge is also a vector and, north of west. (Fig. c), is directed along the direction of the coulomb, N, force, experienced by a test charge., The magnitude of electric field at a distance, ��, r from a point charge Q is same at all points on, F, ��, the surface of a sphere of radius r as shown in, F AC, Fig. 10.6. Its direction is along the radius of, 16.9°, the sphere, pointing away from its centre if the, W ��, A, charge is positive., F AB, , ��, E, , Fig. c: Direction of the resultant force., 10.6 Electric Field:, Space around a charge Q gets modified so, Q, E�, that when a test charge is brought in this region,, 4�� 0 r 2, +, it experiences a coulomb force. This region, around a charged object in which coulomb, force is experienced by another charge is called, electric field., Fig. 10.6: Electric field due to a point charge, Mathematically, electric field is defined as, (+Q)., the force experienced per unit charge. Let Q and, SI unit of electric intensity is newton per, q be two charges separated by a distance r., coulomb (NC-1). Practically, electric field, The coulomb force between them is given, is expressed in volt per metre(Vm-1). This is, ��, 1 Qq �, , r , where, r is the unit vector discussed in article 10.6.2., by F �, 4�� 0 r 2, Dimensional formula of E is,, along the line joining Q to q., F [LMT � 2 ], �, E, =, Therefore, electric field due to charge Q is, q0, [IT], given by,, �, 3, ��, E = [LMT I �1 ], �� F, Q �, E� �, r, --- (10.11) 10.6.1 Electric Field Intensity due to a Point, q 4�� 0 r 2, Charge in a Material Medium:, The coulomb force acts across an empty, Consider a point charge q placed at point O, space (vacuum) and does not need any, in a medium of dielectric constant K as shown, intervening medium for its transmission., in Fig. 10. 7., The electric field exists around a charge, irrespective of the presence of other charges., Since the coulomb force is a vector, the, q, 0, , A precise definition of electric field is:, Electric field is the force experienced by a, test charge in presence of the given charge at, the given distance from it., ��, F, E � lim, q �0 q, Test charge is a positive charge so, small in magnitude that it dose not affect the, surroundings of the given charge., , k, q, Fig. 10.7: Field in a material medium., Consider the point P in the electric field of, point charge q at distance r from it. A test charge, q0 placed at the point P will experience a force, which is given by the Coulomb’s law,, , 195
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F�, , 1 q q0 �, r, 4�� 0 K r 2, , where r is the unit vector in the direction of, force i.e., along OP., By the definition of electric field intensity, ��, �� F, 1, q �, E� �, r, q0 4�� 0 K r 2, , Fig. 10.9 (a):, uniform electric, field., , ��, , The direction of E will be along OP when, q is positive and along PO when q is negative., The magnitude of electric field intensity in, a medium is given by, E�, , 1, q, 4�� 0 K r 2, , --- (10.12 ), , , For air or vacuum K = 1 then, 1 q, E=, 4�� 0 r 2, The coulomb force between two charges, and electric field E of a charge both follow the, inverse square law, (F∝1/r2, E∝1/r2) Fig. 10.8., , Fig. 10.9 (b):, non, uniform, electric field., 10.6.2 Practical Way of Calculating Electric, Field, A pair of charged parallel plates is, arranged as shown in Fig. 10.10. The electric, field between them is uniform. A potential, difference V is applied between two parallel, plates separated by a distance ‘d’. The electric, field between them is directed from plate A to, plate B as shown., , F∝1/r2, E∝1/r2, , A, , E, or, F, r, Fig. 10.8: Variation of Coulomb force/, Electric field due to a point charge., 1. Uniform electric field: A uniform electric, field is a field whose magnitude and, direction is same at all points. For example,, field between two parallel plates. Fig 10.9.a, 2. Non uniform electric field: A field whose, magnitude and direction is not the same at, all points. For example, field due to a point, charge. In this case, the magnitude of field, is same at distance r from the point charge, in any direction but the direction of the, field is not same. Fig 10.9.b, , B, , Fig 10.10: Electric field, between two parallel, plates., , A charge +q placed between the plates, experiences a force F due to the electric field. If, we have to move the charge against the direction, of field, i.e., towards the positive plate, we have, to do some work on it. If we move the charge, +q from the negative plate B to the positive, plate A, the work done against the field is, W = Fd; where ‘d’ is the separation between the, plates. The potential difference V between the, two plates is given by, W = Vq, but W = Fd, ∴Vq = Fd ∴ F/q = V/d = E, ∴ Electric field can be defined as, E = V/d , --- (10.13), This is the commonly used definition of, electric field., , 196
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Example 10.5: Gap between two electrodes of magnitudes, and are opposite in direction,, ��, ��, ��, ��, the spark-plug used in an automobile engine E A = - EC . E A + EC = 0 . Thus, the field at P is, is 1.25 mm. If the potential of 20 V is applied only to the charge at B and can be written as, ��, ��, 2 � 10�6, across the gap, what will be the magnitude of, Ep � EB �, 4�� 0 (BP) 2, electric field between the electrodes?, ��, 2 � 10�6 � 9 � 109, Solution:, Ep �, (5 / 2 ) 2, V, E�, 2 � 9 � 103 � 2, �, d, 25, 20V, V, 36, E�, � 16 � 10�3 � 1.6 � 104, �, � 103, 25, 1.25 � 10�3 m, m, ����, � 1.44 � 1015 NC-1 along BP, This electric field is sufficient to ionize, To calculate BP, the gaseous mixture of fuel compressed in the, ����, 5, cylinder and ignite it., BP � (BA) cos (45)� �, 2, , Can you tell?, , Example 10.7: A simplified model of hydrogen, atom consists of an electron revolving about a, Why a small voltage can produce a, proton at a distance of 5.3×10-11m. The charge, reasonably large electric field?, on a proton is +1.6×10-19 C. Calculate the, Example 10.6: Three point charges are placed intensity of the electric field due to proton at, at the vertices of a right isosceles triangle as this distance., shown in the Fig. a. What is the magnitude and Solution:, direction of the resultant electric field at point P, q, E�, which is the mid point of its hypotenuse?, 4�� o r 2, +10 µC, , C, , P, , 5cm, , +2 µC, , ��, EB, , ��, EA, , B, , r � 5.3 � 10�11 m, 1, � 9.0 � 109 Nm2C �1, 4�� o, , ��, EC, , +10 µC, A, , , 5cm, , Fig (a): Position of charges., ��, EB, , ��, EA, , P, ��, EC, , q � �1.6 � 10�19 C, , E�, , 1.6 � 10�19, � 9.0 � 109 � 5.1� 1011 NC �1, (5.3 � 10�11 ) 2, , The force between electron and proton in, hydrogen atom can be calculated by using the, F, , electric field. We have, E � � F � qE, q, F = -1.6×10-19 C× 5.1×1011 NC-1, = -8.16×108 N., This force is attractive., Using the Coulomb's law,, F�, , 1 q1q2, 4�� 0 r 2, , Fig (b): Electric field at point P., �19, �19, Solution: Electric field is the force an a unit � 9.0 � 109 Nm2C �1 � (�1.6 � 10 C ) � (�1.6 � 10 C ), (5.33 � 10�11 m) 2, positive charge, the fields at P due to the��charges, 8, at A, B and C are shown in the Fig., b. E A is the � �8.6 � 10 N, ��, Knowing electric field at a point is useful, field at P due to charge at A and EC is the field, at P due to charge at C. Since P is the midpoint to estimate the force experienced by a charge, of AC and the fields at A and C are equal in at that point., , 197
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(6) Electric lines of force are crowded in a, 10.6.3 Electric Lines of Force:, region where electric intensity is large., Michael Faraday (1791-1867) introduced, lines of force are widely separated, (7), Electric, the concept of lines of force for visualising, from each other in a region where electric, electric and magnetic fields. An electric line of, intensity is small, force is an imaginary curve drawn in such a, (8), The, lines of force of an uniform electric, way that the tangent at any given point on this, field are parallel to each other and are, curve gives the direction of the electric field, equally spaced., at that point. See Fig.10.11. If a test charge is, The lines of force are purely a geometric, placed in an electric field it would be acted upon, by a force at every point in the field and will construction which help us visualise the nature, move along a path. The path along which the of electric field in a region. The lines of force, unit positive charge moves is called a line of have no physical existence., force., Fig. 10.13 (a): Lines, of force due to positive, charge., Fig. 10.11: Electric line of force., A line of force is defined as a curve such, that the tangent at any point to this curve gives, the direction of the electric field at that point., The density of field lines indicates the, strength of electric fields at the given point in, space. Figure 10.12., , Fig. 10.13 (b): Lines of, force due to negative, charge., Fig. 10.13 (c): Lines, of force due to, opposite charge., , (High field), , Fig. 10.12: density, of field lines and, strength of electric, field., , Fig. 10.13; (d):, Lines of force, due to similar, charge., , Characteristics of electric lines of force, (1) The lines of force originate from a, positively charged object and terminate on, a negatively charged object., (2) The lines of force neither intersect nor meet, each other, as it will mean that electric field, has two directions at a single point., (3) The lines of force leave or terminate on a, conductor normally., (4) The lines of force do not pass through, conductor i.e. electric field inside a, conductor is always zero, but they pass, through insulators., (5) Magnitude of the electric field intensity, is proportional to the number of lines, of force per unit area of the surface held, perpendicular to the field., , Fig. 10.13 (e): Lines, of force terminate, on a conductor., , (Low field), , Fig. 10.13 (f): Intensity, of a electric field is more, at point A and less at B., More lines cross the area, at A and less at the same, area at B., Fig. 10.13: The lines of force due to various, geometrical arrangement of electrical charges., , 198, , Can you tell?, Lines of force are imaginary, can they, have any practical use?
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imagine a small charge +q present at a point O, 10.7 Electric Flux:, As discussed previously, the number of inside closed surface. Imagine an infinitesimal, lines of force��per unit area is the intensity of the area dA of the given irregular closed surface., electric field E ., Number of lines of force, ... E =Area enclosing the lines of force - (10.14), , Fig. 10.15: Gauss' law., The magnitude of electric field intensity at, point P on dS due to charge +q at point O is,, 1 �q�, Fig. 10.14: Flux through area S., E=, 4�� 0 �� r 2 ��, Number of lines of force = (E).(Area), When the area is inclined at an angle θ with the, The direction of E is away from point O., direction of electric field, Fig. 10.14, the electric, Let θ be the angle subtended by normal drawn, flux can be calculated as follows., �� to area dS and the direction of E. Electric flux,, Let the angle between electric field E dφ, passing through area dS, = Ecosθ dS, and area vector d S be θ, then the electric flux, q, �, cos � dS, passing through area dS is given by, 4�� 0 r 2, , ��, dφ = (component of dS along E ).(area of d S ), � q � � dS cos� �, ��, dφ = E (dS cos θ), ��, �, 2, �, � 4�� 0 � � r, dφ = EdS cos θ , �� , � q �, --- (10.17), d� � �, dφ = E .d S , --- (10.15), � d�, 4, ��, 0 �, �, Total flux through the entire surface, �� �� �� ��, � � � d� � � E.d S � E.S, --- (10.16) where, d� = dS cos� is the solid angle, s, r2, The SI unit of electric flux can be calculated subtended by area dS at point O., using, �� ��, Total electric flux, φE, crossing the given, � � E � S =(V/m) m2 =Vm, closed surface can be obtained by integrating, 10.8 Gauss' Law:, Eq. (10.17) over its area. Thus,, �� ��, �, Karl Friedrich Gauss (1777-1855) one, q, q, � E � � d� � � E .ds � �, d� �, d�, of the greatest mathematician of all times,, 4�� 0, 4�� 0 �, s, formulated a law expressing the relationship, between the electric charge and its electric field, But � d� � 4� � solid angle subtended by, which is called the Gauss’ law. Gauss' law is entire closed surface at point O, analongous to Coulomb’s law in the sense that it, q, too expresses the relationship between electric, Total flux �, ( 4� ), 4�� 0, field and electric charge. Gauss' law provides, �� ��, �, equivalent method for finding electric intensity., � E � � E �ds � � q / � 0 --- (10.18), It relates values of field at a closed surface and, s, This is true for every electric charge, the total charges enclosed by that surface., Consider a closed surface of any shape enclosed by a given closed surface., Total flux due to charge q1, over the given, which encloses number of positive electric, charges (Fig. 10.15). To prove Gauss’ theorem, closed surface = + q1/ε0, , 199
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Total flux due to charge q2, over the given, closed surface = + q2/ε0, Total flux due to charge qn, over the given, closed surface = + qn/ε0, Positive sign in Eq. (10.18) indicates that, the flux is directed outwards, away form the, charge. If the charge is negative, the flux will, be is directed inwards as shown in Fig 10.16, (b). If a charge is outside the closed surface the, net flux through it will be zero Fig 10.16 (c)., , Example 10.8: A charge of 5.0 C is kept at the, centre of a sphere of radius 1 m. What is the flux, passing through the sphere? How will this value, change if the radius of the sphere is doubled?, Solution: Flux per unit area is given by Eq., 10.16., According to Gauss law,, �� ��, � the total flux, through the sphere � � � E .ds , where the, integration is over the surface of the sphere. As, the electric field is same all over the sphere i.e., | E | = constant and the direction of E as well as, that of ds is along the radius, we get , flux = � = | E | 4� R 2, q, 5.0 C, E�, � 9 � 109 �, 2, 4�� 0 r, (1.0 m)2, E � 9 � 109 � 5 � 4.55 � 1010 NC-1, ��, � ��, , Fig. 10.16 (a): Flux due to positive charge., , � � E�S, � flux = 4.5 �1010 � 4� (1)2, � 5.65 � 1011 Vm, , Thus the total flux is independent of radius., E ∝ 1/r2, and area ∝ r2. This can also be seen, from Gauss' law, where the net flux crossing a, Fig. 10.16 (b): Flux due to negative charge., closed surface is equal to q/ε0 where q is the net, charge inside the closed surface. As the charge, inside the sphere is unchanged, the flux passing, through a sphere of any radius is the same., Thus, if the radius of the sphere is increased, by a factor of 2, the net flux passing through, Fig. 10.16 (c): Flux due to charge outside a, its surface remains unchanged. As shown in, closed surface is zero., Fig. 10.17, same number of lines of force cross, According to the superposition principle, both the surfaces. The total flux is independent, the total flux φ due to all charges enclosed of shape of the closed surface because Eq. 10.18, within the given closed surface is, does not involve any radius., q3, q1, q2, qn i=n qi Q, +, +, + ---- +, =� �, �E =, �0, �0, �0, � 0 i=1 � 0 � 0, Statement of Gauss' law, The flux of the net electric field through a, closed surface equals the net charge enclosed by, the surface divided by ε0, , where Q is the total charge within the surface., Gauss' law is applicable to any closed, surface of regular or irregular shape., , 200, , Fig. 10.17: Flux is independent of the shape, and size of closed surface.
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dipole moment p ., Dipole moment, is defined as, ��, , p = q( 2l ) , --- (10.19), A dipole moment is a vector whose, magnitude is q (2l) and the direction is from, the negative to the positive charge. The unit of, dipole moment is Columb-meter (Cm) or Debye, (D). 1D = 3.33×10-30 Cm. If two charges +e and, -e are separated by 1.0A0, the dipole moment is, 1.6×10-29 Cm or 4.8 D. For example, a water, molecule has a permanent dipole moment of, , Do you know ?, Gaussian surface, All the lines of force originating from, a point charge penetrate an imaginary, three dimensional surface. The total flux, ΦE = q/ε0. The same number of lines of force, will cross the surface of any shape. The, total flux through both the surfaces is the, same., �� ��, �Calculating flux involves calculating, � E � ds , hence it is convenient to consider a, regular surface surrounding the given charge, distribution. A surface enclosing the given, charge distribution and symmetric about it is, a Gaussian surface., For example. if we have a point charge, the Gaussian surface will be a sphere. If the, charge distribution is linear, the Gaussian, surface would be a cylinder with the charges, distributed along its axis. Gaussian surface, offers convenience, of calculating, the, �� ��, �, integral � E � ds ., Remember that a Gaussian surface, is purely imaginary and does not exist, physically., 10.9 Electric Dipole:, A pair of equal and opposite charges, separated by a finite distance is called an electric, dipole. It is shown in Fig. (10.18)., , Fig. 10.18: Electric dipole. x-y axial line,, P-Q equatorial line., Line joining the two charges is called the, dipole axis. A line passing through the dipole, axis is called axial line. A line passing through, the centre of the dipole and perpendicular to the, axial line is called the equatorial line as shown, in Fig. 10.18., Strength of a dipole is measured in terms, of a quantity called the dipole moment. Let, , q be the magnitude of each charge and 2l be, the distance from negative charge, to positive, , charge. Then the product q ( 2l ) is called the, , 201, , Natural dipole:, The water molecule is non-linear, i.e.,, the two hydrogen atoms and one oxygen atom, are not in a straight line. The two hydrogenoxygen bonds in water molecule are at an, angle of 105°. The positive charge of a water, molecule is effectively concentrated on the, hydrogen side and the negative charge on, the oxygen side of the molecule. Thus, the, positive and negative charges of the water, molecule are inherently separated by a small, distance. This separation of positive and, negative charges gives rise to the permanent, dipole moment of a water molecule., Molecules of water,, ammonia, sulphur dioxide, sodium chloride, etc. have an inherent, separation of centers of positive and, negative charges. Such molecules are called, polar molecules., Polar molecules are the molecules in, which the center of positive charge and, the negative charge is naturally separated., Molecules such as H2, Cl2, CO2 CH4 and, many others have their positive and negative, charges effectively centered at the same, point and are called non-polar molecules., Non-polar, molecules, are, the, molecules in which the center of positive, charge and the negative charge is one and, the same. They do not have a permanent, electric dipole. When an external electric, field is applied to such molecules the centers, of positive and negative charge are displaced, and a dipole is induced.
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6.172×10-30 Cm or 1.85 D. Its direction is from, oxygen to hydrogen. See box on Natural dipole., 10.9.1 Couple Acting on an Electric Dipole in, a Uniform Electric Field:, Consider an electric dipole placed in a, uniform electric field E. The axis of electric, dipole makes an angle θ with the direction of, electric field as shown in Fig. 10.19 a., , Example 10.9: An electric dipole of length 2.0, cm is placed with its axis making an angle of, 30° with a uniform electric field of 105 N/C. as, shown in figure. If it experiences a torque of, 10 3 Nm, calculate the magnitude of charge on, the dipole., , P, Solution: Given, � � 10 3, Nm, E � 105 N / C ,, 2l � 2.0 � 10�2 m, � � 300, � � qE 2l sin �, , Fig. 10.19 (a): Dipole in uniform electric field., , �1�, 10 3Nm � q105 N / C 2.0 � 10�2 m � �, �2�, 10 3, � 3 � 10�2 C, 103, = 1.73 � 10�2 C, , �q =, , Fig. 10.19 (b): Couple acting on a dipole., Figure 10.19. b shows the couple acting on, an electric dipole in uniform electric field., The force acting on charge - q at A is, ��, ��, F, A = - qE in the direction opposite to that, ��, of ��E and �the, +q at B, � force acting on charge, ��, ��, is F��B = + qE in the direction of E . Since F A, = - F B , the two equal and opposite forces, separated by a distance form a couple. Moment, of, is called torque and is defined by, � the, �� couple, ��, � � d � F where, d is the perpendicular distance, between the two equal and opposite forces., ...Magnitude of Torque =, Magnitude of force × Perpendicular distance, � ���� ��, ... Torque on the dipole = � � BP � qE, ... τ =, --- (10.20), �� qE2lsinθ, � , but p � q � 2l, ... τ = pEsinθ , --- (10.21), � �� ��, In vector form � � p � E, --- (10.22), If θ =90° sin θ =1, then τ = pE, When the axis of electric dipole is, perpendicular to uniform electric field, torque, of the couple acting on the electric dipole is, maximum, i.e., τ = pE. It θ = 0 then τ = 0, this is, the minimum torque on the dipole. Torque tends, to align the dipole axis along the direction of, electric field., , 10.9.2 Electric Intensity at a Point due to an, Electric Dipole:, Case 1 : At a point on the axis of a dipole., Consider an electric dipole consisting of, two charges -q and +q separated by a distance, 2l as shown in Fig. 10.20. Let P be a point at a, distance r from the, �� centre C of the dipole. The, electric intensity E a at P due to the dipole is the, vector sum of the field due to the charge - q at, A and + q at B., , Fig. 10.20: Electric field of a dipole along, its axis., Electric field intensity at P due to the, charge -q at A, ��, �����, 1, ( �q ) ���, �, PD, PD, = EA �, 2PQ, 4�� 0 ( r + l ), ����, is unit vector directed along PD, where PD, Electric intensity at P due to charge +q at B, ��, �����, q ���, 1, �, PQ, = EB �, PQ, 2PQ, 4�� 0 ( r - l ), ����, is a unit vector directed along PQ, ., where PQ, , 202
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is the unit vector directed along PQ, where, PQ, ���, or BP, ��, ��, ��, ��, ��, Resultant field E a at P on the axis, due to Electric field at PE Aisand, the,Esum, of E A and E B, B, ��, �� ��, the dipole is, ∴, E, =, EA + EB, eq, �� �� ��, Ea = E B + E A, Consider ∆ ACP, ��, The magnitude of E a is given by, (AP)2 = (PC)2 + (AC)2 = r2 + l2 = (BP)2, ��, ��, 1 � q, q �, 1, q, | Ea | �, �, � EA �, �, 2, 2�, 2, --- (10.25), 4�� 0 � (r � l ) (r � l ) �, 4�� 0 ( r � l 2 ), ��, ��, q � r 2 + l 2 � 2lr - r 2 � 2lr � l 2 �, q, 1, | Ea | =, --- (10.26), EB �, �, �, 2, 2 2, 2, 4�� 0 �, (r � l ), 4�� 0 (r � l 2 ), �, ��, ��, ��, 2(2lq )r, EA = EB, | Ea | =, ��, ��, 4�� 0 (r 2 � l 2 ) 2, The resultant of fields E A and E B acting, But 2lq = p, the dipole moment, at point P�� can be calculated by resolving these, ��, ��, 1, 2 pr, vectors E A and E B along the equatorial line, | Ea | =, and along a direction perpendicular to it., 4�� 0 (r 2 � l 2 ) 2, --- (10.23), �� The magnitude of E B is greater than that of, E A . (Because BP < AB), , ��, E a , is directed along PQ, which is the, ��, direction of the dipole moment p i.e. from the, , negative to the positive charge, parallel to the, axis. If r>> l, l2 can be neglected compared to r2,, ��, 1 2p, Ea =, --- (10.24), 4�� 0 r 3 , The field will, �� be along the direction of the, , Fig. 10.21 (b):, Components of, the field at point, P., , Consider Fig. 10.21 (b). Let the y-axis, coincide with the equator of the dipole x-axis, dipole moment p ., will be parallel to dipole axis, as shown. The, Case 2: At a point on the equatorial line. As origin is at point P., shown in Fig. 10.21 (a), The y-components of EA and EB are EAsinθ, and EBsinθ respectively. They are equal in, magnitude but opposite in direction and cancel, Fig., 10.21, (a):, each other. There is no contribution from them, Electric field of a, towards the resultant., r, dipole at a point on, The x-components of EA and EB are EAcosθ, the equatorial line., and EBcosθ respectively. They are of equal, magnitude and are in the same direction, ��, Electric field at point P due to charge -q at, --- (10.27), Eeq |� E A cos � � E B cos �, ∴|, ��, 1 ( �q ) ����, A is: E A �, PA, By using Eq. 10.25 and 10.26, 4�� 0 ( A P) 2, ��, ����, Eeq = 2E A cos�, , where PA is the unit vector direction along PA ., �, �, q, l, � 2�, 2, 2 �, Similarly, Electric field at P due to charge + q at, 2, 2, � 4�� 0 (r � l ) � r � l, ��, �, ��, �, 1 (�q), PQ, B is: E B �, 2ql, �, 4�� 0 (BP) 2, 4�� 0 (r 2 � l 2 )3/ 2, , 203
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2, , If r>>l then l is very small compared to r2 (b) Surface charge density (σ), ��, 1, p, 1 p, Suppose a charge q is uniformly distributed, �, Eeq �, --- (10.28), 2 3/ 2, 3, over, a surface of area A . As shown in Fig. 10.23,, 4�� 0 (r ), 4�� 0 r, then the surface charge density σ is defined as, ��, p (antiThe direction, of, this, field, is, along, q, ��, --- (10.30), ��, parallel to p ) as shown in Fig. 10.21 (c)., A , SI unit of σ is (C/m2), Fig. 10.21 (c):, For example, charge distributed uniformly, Electric field at, on a thin disc or a synthetic cloth. If the charge, point P is ��antiis not distributed uniformally over the surface, parallel to p ., Comparing Eq. 10.28 and 10.24 we find of a conductor, then charge dq on small area, that the electric intensity at an axial point is element dA can be written as dq = σ dA., twice that at a point on the equatorial position,, lying at the same distance from the centre of, the dipole., 10.10 Continuous Charge Distribution:, A system of charges can be considered as, a continuous charge distribution, if the charges, are located very close together, compared, to their distances from the point where the, intensity of electric field is to be found out., The charge distribution is continuous, in the sense that, a system of closely spaced, charges is equivalent to a total charge which, is continuously distributed along a line or a, surface or a volume. To find the electric field, due to continuous charge distribution, we define, following terms for different types of charge, distribution., (a) Linear charge density (λ)., As shown in Fig. 10.22 charge q is, uniformly distributed along a liner conductor of, length l. The linear charge density λ is defined, as,, q, ��, , --- (10.29), l, SI unit of λ is (C/m)., For example, charge distributed uniformly, on a straight thin rod or a thin nylon thread. If, the charge is not distributed uniformly over the, length of thin conductor then charge dq on small, element of length dl can be written as dq = λdl, , Fig. 10.23: Surface charge., (c) Volume charge density (ρ), Suppose a charge q is uniformly distributed, throughout a volume V, then the volume charge, density ρ is defined as the charge per unit, volume., ��, , q, V , , --- (10.31), , S.I. unit of ρ is (C/m3), For example, charge on a solid plastic, sphere or a solid plastic cube., If the charge is not distributed uniformaly, over the volume of a material, then charge dq, over small volume element dV can be written, as dq = ρ dV., , Fig. 10.24:Volume charge., Electric field due to a continuous charge, distribution can be calculated by adding electric, fields due to all these small charges., Can you tell?, The surface charge density of Earth is, σ = -1.33 nC/m2. That is about 8.3×109, electrons per square meter. If that is the, case why don't we feel it?, , Fig. 10.22: Linear charge., , 204
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Do you know ?, , iii. One can get static shock if charge, transferred is large., iv. Dust or dirt particles gathered on, computer or TV screens can catch static, charges and can be troublesome., Precautions against static charge, i. Home appliances should be grounded., ii. Avoid using rubber soled footwear., iii. Keep your surroundings humid. (dry air, can retain static charges)., , Static charge can be useful, Static charges can be created whenever, there is a friction between an insulator and, other object. For example, when an insulator, like rubber or ebonite is rubbed against, a cloth, the friction between them causes, electrons to be transferred from one to the, other. This property of insulators is used, in many applications such as Photocopier,, Inkjet printer, Panting metal panels,, Electrostatic precipitation/separators etc., Static charge can be harmful, i. When charge transferred from one body, to other is very large sparking can take, place. For example lightning in sky., ii. Sparking can be dangerous while, refuelling your vehicle., ises, , erc, , Ex, , Internet my friend, 1. h t t p s : / / w w w. p h y s i c s c l a s s r o o m ., com>class, 2. https://courses.lumenlearing.com>elect, 3. https://www.khanacademy.org>science., 4. https://www.topper.com>guides>physics, , Exercises, , 1. Choose the correct option., i., A positively charged glass rod is brought, close to a metallic rod isolated from, ground. The charge on the side of the, metallic rod away from the glass rod will, be, , (A) same as that on the glass rod and equal, in quantity, , (B) opposite to that on the glass of and, equal in quantity, , (C) same as that on the glass rod but lesser, in quantity, , (D) same as that on the glass rod but more, in quantity, ii., An electron is placed between two, parallel plates connected to a battery. If, the battery is switched on, the electron, will, , (A) be attracted to the +ve plate, , (B) be attracted to the -ve plate, (C) remain stationary, , (D) will move parallel to the plates, iii. A charge of + 7 µC is placed at the centre, of two concentric spheres with radius 2.0, cm and 4.0 cm respectively. The ratio of, the flux through them will be, , , , iv., , , v., , , , , , vi., , , , vii., , 205, , (A) 1:4 , (B) 1:2, (C) 1:1 , (D) 1:16, Two charges of 1.0 C each are placed, one meter apart in free space. The force, between them will be, (A) 1.0 N, (B) 9×109 N, (C) 9×10-9 N (D) 10 N, Two point charges of +5 µC are so, placed that they experience a force of, 80×10-3 N. They are then moved apart,, so that the force is now 2.0×10-3 N. The, distance between them is now, (A) 1/4 the previous distance, (B) double the previous distance, (C) four times the previous distance, (D) half the previous distance, A metallic sphere A isolated from ground, is charged to +50 µC. This sphere is, brought in contact with other isolated, metallic sphere B of half the radius of, sphere A. The charge on the two sphere, will be now in the ratio, (A) 1:2 , (B) 2:1, (C) 4:1 , (D) 1:1, Which of the following produces uniform, electric field?
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(A) point charge, (B) linear charge, (C) two parallel plates, (D) charge distributed an circular any, , Four charges of + 6×10-8 C each are, placed at the corners of a square whose, sides a are 3 cm each. Calculate the, resultant force on each charge and show, its direction on a digram drawn to scale., , [Ans: 6.89×10-2 N], iv. The, �� electric field in a region is given by, E = 5.0 kN/C. Calculate the electric flux, Through a square of side 10.0 cm in the, following cases, , (a) the square is along the XY plane , , [Ans: = 5.0×10-2 Vm], , (b) The square is along XZ plane , , [Ans: Zero], , (c) The normal to the square makes an, angle of 450 with the Z axis., , [Ans: 3.5×10-2 Vm], v., Three equal charges of 10×10-8 C, respectively, each located at the corners, of a right triangle whose sides are 15 cm,, 20 cm and 25 cm respectively. Find the, force exerted on the charge located at the, 90° angle., , [Ans: 4.59.×10-3 N], vi. A potential difference of 5000 volt is, applied between two parallel plates 5 cm, a part a small oil drop having a charge of, 9.6 ×10-19 C falls between the plates. Find, (a) electric field intensity between the, plates and (b) the force on the oil drop., , [Ans: (a) 1.0.×105 N/C, , (b) 9.6.×10-14 N], vii. Calculate the electric field due to a charge, of -8.0×10-8 C at a distance of 5.0 cm, from it., [Ans: -2.88×10-2 N/C], , iii., , viii. Two point charges of A = +5.0 µC and, B = -5.0 µC are separated by 5.0 cm., A point charge C = 1.0 µC is placed, at 3.0 cm away from the centre on the, perpendicular bisector of the line joining, the two point charges. The charge at C, will experience a force directed towards, , (A) point A , , (B) point B, , (C) a direction parallel to line AB, , (D) a direction along the perpendicular, bisector, 2. Answer the following questions., i., What is the magnitude of charge on an, electron?, ii., State the law of conservation of charge., iii. Define a unit charge., iv. Two parallel plates have a potential, difference of 10V between them. If the, plates are 0.5 mm apart, what will be the, strength of electric charge., v., What is uniform electric field?, vi. If two lines of force intersect of one, point. What does it mean?, vii. State the units of linear charge density., viii. What is the unit of dipole moment?, ix. What is relative permittivity?, 3. Solve numerical examples., i., Two small spheres 18 cm apart have, equal negative charges and repel each, other with the force of 6×10-3 N. Find the, total charge on both spheres., , [Ans: q = 2.938×10-7 C], ii., A charge +q exerts a force of magnitude, -0.2 N on another charge -2q. If they, are separated by 25.0 cm, determine the, value of q., , [Ans: q = 0.8333 µC], , 206, , ***
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11., , Electric Current Through Conductors, , Can you recall?, 1. Do you recall that the flow of charged particles in a conductor constitutes a current?, 2. An electric current in a metallic conductor such as a wire is due to flow of electrons, the, negatively charged particles in the wire., 3. What is the role of the valence electrons which are the outermost electrons of an atom?, 11.1 Introduction:, The valence electrons become de-localized, when a large number of atoms come together, in a metal. These are the conduction electrons, or free electrons constituting an electric current, when a potential difference is applied across the, conductor., 11.2 Electric current :, Consider an imaginary gas of both, negatively and positively charged particles., Fig. 11.1 shows the negatively and positively, charged particles flowing randomly in various, directions across a plane P. In a time interval, t, let the amount of positive charge flowing in, the forward direction be q+ and the amount of, negative charge flowing in the forward direction, be q-., , the plane P from time t to t + ∆t, i.e. during the, time interval ∆t. Then the current is given by, �q, I (l) = lim, --- (11.2), �t � o �t, Here, the current is expressed as the limit, of the ratio ∆q/ ∆t as ∆t tends to zero., The current during lightening could be, as high as 10,000 A, while the current in the, house hold circuit could be of the order of a few, amperes. Currents of the order of a milliampere, (mA), a microampere (µA) or a nanoampere, (nA) are common in semiconductor devices., 11.3 Flow of current through a conductor :, A current can be generated by positively, or negatively charged particles. In an, electrolyte, both positively and negatively, charged particles take part in the conduction., In a metal, the free electrons are responsible, for conduction. These electrons flow and, generate a net current under the action of an, applied electric field. As long as a steady, field exists, the electrons continue to flow, in the form of a steady current. Such steady, electric fields are generated by cells and, batteries., , Do you know ?, Fig. 11.1: Flow of charged particles., Thus the net charge flowing in the forward, Sign convention : The direction of the, direction is q = q+- q-. For a steady flow, this, current in a circuit is drawn in the direction, quantity is proportional to the time t. The ratio, in which positively charged particles would, q, move, even if the current is constituted by, is defined as the current I., the negatively charged particles, electrons,, t, q, which move in the direction opposite to that, I = --- (11.1), t, the electric field. We use this as a convention., SI unit of the current is ampere (A), that of the, charge and time is coulomb (C) and second (s) 11.4 Drift speed :, respectivly., Imagine a copper rod with no current, Let I be the current varying with time. Let flowing through it. Fig 11.2 shows the, ∆q be the amount of net charge flowing across schematic of a conductor with the free electrons, , 207
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in random motion. There is no net motion of, L, , t=, --- (11.4), these electrons in any direction. If electric field, V, d, is applied along the length of the copper rod, , and a current is set up in the rod, these electrons From the Eq. (11.1), and Eq. (11.3), the current, still move randomly, but tend to 'drift' in a, q, n ALe, I= =, = n AVd e --- (11.5), particular direction. Their direction is opposite, t, L / Vd, Hence, to that of the applied electric field., I, J, V, =, =, d, --- (11.6), Direction of electric field : Direction of an, nAe ne, electric field at a point is the direction of the, where J = I/A is current density. J is uniform, over the cross sectional area A of the wire. Its, force on the test charge placed at that point., 2, The electrons under the action of the unit is A/m, I, applied electric field drift with a drift speed Vd., Here, J = --- (11.7), The drift speed in a copper conductor is of the, A, order of 10-4 m/s-10-5 m/s, whereas the electron From Eq. (11.6),, ��, ��, random speed is of the order of 106 m/s., J =(ne) V d --- (11.8), ��, , Fig. 11.2: Free electrons in random motion, inside the conductor., How is the current through a conductor, related to the drift speed of electrons? Figure, 11.3 shows a part of conducting wire with its, free electrons having the drift speed V, ��d in the, direction opposite to the electric field E ., , Fig. 11.3: Conducting wire with the applied, electric field., It is assumed that all the electron move with, the same drift speed Vd and that, the current I is, the same throughout the cross section (A) of the, wire. Consider the length L of the wire. Let n be, the number of free electrons per unit volume of, the wire. Then the total number of electrons in, the length L of the conducting wire is nAL. The, total charge in the length L is,, q = n A L e --- (11.3), where e is the electron charge., This is total charge that moves through, any cross section of the wire in a certain time, interval t,, , ��, , For electrons, ne is negative, and J and V d, ��, have opposite directions, V d is the drift velocity., Example 11.1: A metallic wire of diameter, 0.02m contains 1028 free electrons per cubic, meter. Find the drift velocity for free electrons,, having an electric current of 100 amperes, flowing through the wire., (Given : charge on electron = 1.6 × 10-19C), Solution: Given, e = 1.6 × 10-19 C, n = 1028 electrons/m3, D = 0.02m, r = D/2 = 0.01m, I = 100 A, J, I, Vd =, =, ne n Ae, where A is the cross sectional area of the wire., A = πr2 = 3.142 × (0.01)2, = 3.142 × 10-4m2, 100, Vd =, -4, 3.142 � 10 � 10281.6 � 10-19, 102 �4 �9, �, 5.027, Vd = 10-3 × 0.1989 = 1.9 × 10-4 m/s, Example 11.2: A copper wire of radius 0.6 mm, carries a current of 1A. Assuming the current to, be uniformly distributed over a cross sectional, area, find the magnitude of current density., , 208
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Solution: Given, r = 0.6 mm = 0.6 ×10-3 m, I = 1A, J=?, Area of copper wire = πr2, = 3.142 × (0.6)2 × 10-6, , = 3.142 × 0.36 × 10-6, = 1.1311 × 10-6 m2, 1, I, J= �, A 1.1311� 10�6, J = 0.884 × 106 A/m2, 11.5 Ohm’s law :, The relationship between the current, through a conductor and applied potential, difference was first discovered by German, scientist George Simon Ohm in 1828 AD. This, relationship is known as Ohm’s law., It states that “The current I through, a conductor is directly proportional to the, potential difference V applied across its two, ends provided the physical state of the conductor, is unchanged”., The graph of current versus potential, difference across the conductor is a straight line, as shown in Fig. 11.4, Ideal Ohm's law, , Fig. 11.4: I-V curve for a conductor., In general, I ∝ V, or R =, , V, , , I, , --- (11.9), or V= I R, where R is a proportionality constant and is, called the resistance of the conductor. The unit, of resistance is ohm (Ω),, 1volt, 1Ω =, 1ampere, If potential difference of 1volt across, a conductor produces a current of 1ampere, through it, then the resistance of the conductor, is 1Ω., , Reciprocal of resistance is called, conductance., 1, C=, --- (11.10), R , The unit of conductance is siemens or (Ω)-1, Example 11.3: A Flashlight uses two 1.5V, batteries to provide a steady current of 0.5A in, the filament. Determine the resistance of the, glowing filament., Solution:, R=, , V, 3, �, � 6.0�, I 0.5, , ∴ Resistance of the glowing filament is 6.0 Ω., Physical origin of Ohm’s law :, We know that electrical conduction in a, conductor is due to mobile charge carriers, the, electrons. It is assumed that these conduction, electrons are free to move inside the volume, of the conductor. During their random motion,, electrons collide with the ion cores within the, conductor. It is assumed that electrons do not, collide with each other. These random motions, average to zero., On the application of an, ��, electric field E , the motion of the electrons is a, combination of the random motion of electrons, due, �� to collisions and that due to the electric field, E . The electrons drift under the action of the, ��, field E and move in a�� direction opposite to the, direction of the field E ., Consider an electron, of mass m subjected, ��, . The force, experienced by, to an electric field E ��, ��, the electron will be F = e E . The acceleration, experienced by the electron will then be, ��, � eE, a=, m , , --- (11.11), , The type of collision the conduction, electrons undergo is such that the drift velocity, attained before the collision has nothing to do, with the drift velocity after the collision. After, the collision, the electron will move in random, direction, but, �� will still drift in the direction, opposite to E ., Let τ be the average time between two, successive collisions. Thus on an average, the, , 209
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electrons will acquire a drift speed Vd = aτ ,, where a is the acceleration given by Eq (11.11)., Also, at any given instant of time, the average, drift speed of the electron will also be Vd = aτ ., From Eq. (11.11),, eE�, Vd = a� �, --- (11.12), m , From the Eq. (11.6) and Eq. (11.12), , J eEτ, Vd = =, --- (11.13), ne, m, which gives , , vacuum tubes, junction diodes, thermistors etc., Resistance R for such non-linear devices at a, particular value of the potential difference V is, given by,, �V dV, R = lim, =, --- (11.16), �I �0 �I, dI, , where ∆V is the potential difference between, the two values of potential, �V, �V, V�, to V +, ,, 2, 2, and ∆I is the corresponding change in the, current., � m �, E =� 2 � J, --- (11.14) 11.7 Electrical Energy and Power:, � e n� � , Consider a resistor AB connected to a, or, E = ρJ, where ρ is the resistivity of the cell in a circuit shown in Fig. 11.6 with current, material and , flowing from A to B. The cell maintains a, m, �� 2, --- (11.15) potential difference V between the two terminals, ne � , of the resistor, higher potential at A and lower, 2, For a given material, m, n, e and τ will at B. Let Q be the charge flowing in time ∆t, be constant and ρ ��will also be constant, ρ through the resistor from A to B. The potential, is independent of E , the externally applied difference V between the two points A and B, is, equal to the amount of work W, done to carry a, electric field., unit positive charge from A to B. It is given by, 11.6 Limitations of the Ohm’s law:, W, W = VQ , --- (11.17), Ohm’s law is obeyed by various materials V = Q ,, and devices. The devices for which potential, difference (V) versus current (I) curve is a, straight line passing through origin, inclined, to V-axis, are called linear devices or ohmic, devices (Fig. 11.4). Resistance of these devices, is constant. Several conductors obey the Ohms, law. They follow the linear I-V characteristic., , Fig. 11.5: I-V curve for non-Ohmic, devices., The devices for which the I-V curve is not, a straight line as shown in Fig. 11.5 are called, non-ohmic devices. They do not obey the, Ohm’s law and the resistance of these devices, is a function of V or I; e.g. liquid electrolytes,, , Fig. 11.6: A simple circuit with a cell and a, resistor., The cell provides this energy through the, charge Q, to the resistor AB where the work is, performed. When the charge Q flows from the, higher potential point A to the lower potential, point B, i.e. through a decrease in potential of, value V, its potential energy decreases by an, amount, ∆U = QV = I ∆tV, --- (11.18), where I is current due to the charge Q flowing, in time ∆t. Where will this energy go? By, the principle of conservation of energy, it is, , 210
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converted into some other form of energy., In the limit as ∆t, 0,, , 11.8 Resistors:, Resistors are used to limit the current, dU, following through a particular path of a circuit., --- (11.19) Commercially available resistors are mainly of, dt = I.V , two types :, dU, Carbon resistors and Wire wound, Here,, dt is power, the time rate of transfer of resistors. High value resistors are mostly carbon, energy and is given by,, resistors. They are small and inexpensive. The, dU, --- (11.20) values of these resistors are colour coded to, P=, dt = I.V, We can also say that this power is mark their values in ohms. The colour coding, transferred by the cell to the resistor or any is standardized by Electronic Industries, other device in place of the resistor, such as a Association (EIA). One such resistor is shown, in Fig. 11.7., motor, a rechargeable battery etc., Because of the presence of an electric, field, the free electrons move across a resistor, and there would be an increase in their kinetic, energy as they move. When the electrons collide, with the ion cores the energy gained by them, Fig. 11.7: Carbon composition resistor., is shared among the ion cores. Consequently,, Colour code:, vibrations of the ions increase, resulting in, heating up of the resistor. Thus, some amount, Colours, 1st, 2nd Multiplier Tolerance, of energy is dissipated in the form of heat in a, digit digit, resistor. The energy dissipated in time interval, Black, 0, 0, ×100, ∆t is given by Eq. (11.18). The energy dissipated, Brown, 1, 1, ×101, ±1%, per unit time is actually the power dissipated, Red, 2, 2, ×102, ±2%, and is given by Eq. (11.20)., 3, Orange, 3, 3, ×10, Using Eq. (11.20), and using Ohm’s law, V=IR,, ∴P =, , V2, = I 2R, R, , --- (11.21), , , It is the power dissipation across a resistor, which is responsible for heating it up. For, example, the filament of an electric bulb heats, up to incandescence, radiating out heat and, light., Example 11.4 : An electric heater takes 6A, current from a 230V supply line, calculate, the power of the heater and electric energy, consumed by it in 5 hours., Solution : Given, I = 6A, V = 230V, We know that,, P = I × V = (6A) (230V) = 1380 W, P = 1.38 kW, Energy consumed = Power × time, = (1.38 kW) × (5 h), = 6.90kWh (1.0 Kwh = 1 unit of power), = 6.9 units of electrical energy., , Yellow, , 4, , 4, , ×104, , Green, , 5, , 5, , ×105, , Blue, , 6, , 6, , ×106, , Violet, , 7, , 7, , ×107, , Gray, , 8, , 8, , ×108, , White, , 9, , 9, , ×109, , For Gold, , ×10-1, , ±5%, , For Silver, , × 10, , ±10%, , No colour, , -, , -2, , ±20%, , Easy Bytes:, Finding it difficult to memorize the colour, code sequence? No need to worry, we have a, one liner which will help you out “B. B. Roy in, Great Britain has Very Good Wife”, B B R O Y G B V G W, This funny one liner makes it easy to recall, the sequence of digits and multipliers., , 211
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In the four band resistor colour code, illustrated in the above table, the first three, bands (closest together) indicate the value in, ohms. The first two bands indicate two numbers, and third band often called decimal multiplier., The fourth band separated by a space from the, three value bands, (so that you know which end, to start reading from), indicates tolerance of the, resistor., Example, i. Colour code of resistor is, Yellow Violet Orange Gold, Value : 4, 7, 103, ±5%, 3, i.e. 47×10 = 47000Ω = 47kΩ±5%, The value of the resistor is 47kΩ ±5%, ii. From given values of resistor; find the colour, bands of this resistor, 330Ω = 33×10, 3, 101, 3, Orange Orange Brown tolerance band, 11.8.1 Rheostat:, A rheostat shown in Fig. 11.8 is an, adjustable resistor used in applications that, require adjustment of current or resistance in, an electric circuit. The rheostat can be used to, adjust potential difference between two points, in a circuit, change the intensity of lights and, control the speed of motors, etc. Its resistive, element can be a metal wire or a ribbon, carbon, films or a conducting liquid, depending upon, the application. In hi-fi equipment, rheostats are, used for volume control., , Because of series combination, the supply, voltage between two resistors R1 and R2 is V1, and V2, respectively and the same current I, flows through the resistor R1 and the resistor, R2. i.e. in series combination, supply voltage is, divided and the current remains the same in all, the resistors., , Fig. 11.9: Series combination of two, resistors R1 and R2., According to Ohm’s law,, V, V, --- (11.22), R 1 = 1 , R2 = 2, I, I, Total voltage V=V1+V2, --- (11.23), From equation .... (11.22) and (11.23), we write, V = I(R1+R2) , --- (11.24), ∴V = I Rs , --- (11.25), Thus the equivalent resistance of the series, circuit Rs = R1+R2, When a number of resistors are connected, in series, the equivalent resistance is equal to, the sum of individual resistances., For n number of resistors,, i=n, , Rs = R1+ R2 + R2+...........+Rn=, , Fig . 11.8: Rheostat., 11.8.2 Combination of Resistors:, I. Series combination of Resistors:, In series combination of resistors, these are, connected in single electrical path as shown in, Fig 11.9. Hence the same electric current flows, through each resistor in a series combination., , ∑R, , i, , -- (11.26), , i=1, , II. Parallel Combination of Resistors:, In the parallel combination, the resistors, are connected in such a way that the same, voltage is applied across each resistor., A number of resistors are said to be, connected in parallel if all of them are connected, between the same two electrical points each, having individual path as shown in Fig. 11.10., In parallel combination the total current I, is divided into I1 and I2 as shown in the circuit, , 212
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diagram Fig.11.10, whereas voltage V across Example 11.5: Calculate i) total resistance and, ii) total current in the following circuit., them remains the same,, R1 = 3Ω, R2 = 6Ω, R3 = 5Ω, V = 14V, , Fig. 11.10 : Two resistors in parallel, , Circuit diagram, combination., Solution:, I = I1+ I2, -- (11.27), i) Total resistance = RT = RP+R3, RR, 3� 6, where I1 is current flowing through R1 and I2 is, RP = 1 2 �, � 2�, current flowing through R2., R1 + R2, 9, When Ohm’s law is applied to R1, RT= 2 + 5 = 7Ω, Total Resistance = 7Ω, V, V = I1R1, i.e. I 1 = R, --- (11.28a), ii) Total current :, 1, Ohm’s law applied to R2, V 14 V, I=, �, V, V =I2R2, i.e. I 2 =, --- (11.28b), RT, 7�, R2, , From Eq. (11.27) and Eq. (11.28),, ∴, If,, , I=, , V V, +, ,, R1 R2, , I=, , V, ,, Rp, , V, V V, = +, ,, Rp R1 R2, , 1, 1, 1, ,, --- (11.29), = +, R p R1 R2, where Rp is the equivalent resistance in parallel, combination., If n resistors R1, R2, R3........., Rn are, connected in parallel, the equivalent resistance, of the combination is given by, n, 1, 1, 1, 1, 1, 1, = + + +............ = ∑ --(11.30), R p R1 R2 R3, Rn i=1 R, Thus when a number of resistors are, connected in parallel, the reciprocal of the, equivalent resistance is equal to the sum of the, reciprocals of individual resistances., ∴, , I = 2A, 11.9 Specific Resistance (Resistivity):, At a particular temperature, the resistance, of a given conductor is observed to depend on, the nature of material of conductor, the area of, its cross-section, and its length., It is found that resistance R of a conductor, of uniform cross section is, i. directly proportional to its length l,, i.e. R∝ l, ii. inversely proportional to its area of, cross section A,, l, i.e. R∝, A, From i and ii, l, R = ρ , --- (11.31), A, where ρ is a constant of proportionality and, it is called specific resistance or resistivity, of the material of the conductor at a given, temperature., From Eq. (11.31), we write, , 213, , ��, , RA, l, , --- (11.32)
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SI unit of resistivity is ohm-meter. Conductivity : Reciprocal of resistivity is, Resistivity of a conductor is numerically the called conductivity of a material, σ = (ρ)-1., resistance per unit length, and per unit area of SI unit of σ is: (Ωm)-1 i.e. siemens/meter (Sm-1), cross-section of material of the conductor., i.e. when, R = 1Ω, A =1m2 and l = 1m,, then, ρ =1Ωm, Table 11.1 : Resistivity of various materials, Material, Conductors, Silver, Copper, Gold, Aluminium, Tungsten, Iron, Mercury, Nichrome (alloy), , Resistivity ρ, (Ω.m), 1.59 × 10-8, 1.72 × 10-8, 2.44 × 10-8, 2.82 × 10-8, 5.6 × 10-8, 9.7 × 10-8, 95.8 × 10-8, 100 × 10-8, , Material, Semiconductors, Carbon, Germanium, Silicon, Insulators, Glass, Mica, Rubber (hard), Teflon, Wood (maple), , Resistivity ρ, (Ω.m), 3.5 × 10-5, 0.5, 3 × 104, 1011-1013, 1011-1015, 1013-1016, 1016, 3 × 108, , Example 11.6: Calculate the resistance per Again, the SI unit of ρ is, metre, at room temperature, of a constantan unit(E ) V/m V, (alloy) wire of diameter 1.25mm. The resistivity unit(J ) = A/m 2 = A m=Ω.m, of constantan at room temperature is 5.0 × 10-7, In terms of conductivity σ of a material, from, Ωm., (11.33),, Solution: ρ = 5.0 × 10-7 Ωm, �� 1 ��, ��, d = 1.25 × 10-3 m, J � E �� E, --- (11.34), �, r = .625 × 10-3 m , Cross-sectional Area = πr2, For a particular resistor, we had (Eq. 11.9), RA, Resistivity � �, the resistance R given by, l, V, R, R=, Resistance per meter =, I, l, Compare this with the above Eq (11.33)., 5 � 10�7, R �, � �, i.e., l A (0.625 � 10�3 ) 2 � 3.142 11.10 , Variation, of, Resistance, with, R, Temperature:, � 0.41 �m�1, Resistivity of a material varies with, l, -1, temperature., It is a property of material. Fig., ∴ Resistance per metre= 0.41 Ωm, Resistivity ρ is a property of a material, 11.11 shows the variation of resistivity of, while the resistance R refers to ��, a particular copper as a function of temperature (K). It can, be seen that the variation is linear over a certain, object. Similarly, the electric field E at a point, range of temperatures. Such a linear relation, is specified in a material with the potential, can be expressed as,, difference across the resistance, and the current, ��, ρ = ρ0[1+ α(T - T0)],, --- (11.35), density J in a material instead of the current I, where T0 is the chosen reference temperature and, in the resistor. Then for an isotropic material,, ��, �, �, ρ0 in the resistivity at the chosen temperature,, E, ��, or E � � J, ---- (11.33), for example, To can be 0 oC., J, , 214
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RT = 2.5 × 1.32, RT = 3.3Ω, , Fig. 11.11: Resistivity as a function of, temperature (K)., In the above Eq. (11.35),, � � �0, R - R0, ��, �, �0 (T -T0 ) R0 (T -T0 ) --- (11.36), Here, α is called the temperature coefficient, of resistivity. Table (11.1) shows the resistivity of, some of the metals. The temperature coefficient, of resistance is defined as the increase in, resistance per unit original resistance at the, chosen reference temperature, per degree rise in, temperature. The unit of α is oC-1 or oK-1 (per, degree celcius or per degree kelvin)., From Eq. (11.36), --- (11.37), R = R0 [1+ α (T - T0)], For small difference in temperatures,, 1 dR, �� �, --- (11.38), R0 dT, , Superconductivity :, We know that the resistivity of a, metal decreases as the temperature decreases., In case of some metals and metal alloys,, the resistivity suddenly drops to zero at a, particular temperature (Tc). This temperature, is called critical temperature, for example,, mercury loses its resistance completely to, zero at 4.2K., Superconductivity can be harnessed so as to, be useful for mankind. It is already in use in, obtaining very high magnetic field (a few, Tesla) in superconducting magnet. These, magnets are used in research quality NMR, spectrometers. For its operation, the current, carrying coils are required to be kept at a, temperature less than the critical temperature, of the coil material., , 11.11 Electromotive Force (emf):, When charges flow through a conductor,, a potential difference has to be established, between the two ends of the conductor. For a, steady flow of charges, this potential difference, is required to be maintained across the two ends, of the conductor, the terminals. There is a device, that does so by doing work on the charges,, thereby maintaining the potential difference., Do you know ?, Such a device is called an emf device and it, provides the emf ε. The charges move in the, Here, the temperature difference is more, conductor owing to the energy provided by the, important than the temperature alone., emf device. The device supplies this energy, Therefore, as the sizes of degrees on the, through the work it does., Celsius scale and the Absolute scale are, identical, any scale can be used., You must have used some of these emf, devices., Power cells, batteries,Solar cells, fuel, Example 11.7: A piece of platinum wire has, o, resistance of 2.5 Ω at 0 C. If its temperature cells, and even generators, are some examples, coefficient of resistance is 4 ×10-3/oC. Find the of emf devices familiar to you., resistance of the wire at 80o C., Solution:, R0= 2.5 Ω, α = 0.004/oC, T - 0 = T = 80o C, RT = R0(1+ αT ), RT = 2.5 (1+ 0.004 × 80) = 2.5 (1 + 0.32), Fig. 11.12: Circuit with emf device., , 215
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Fig. 11.12 shows a circuit with an emf, device and a resistor R. Here, the emf device, keeps the positive terminal (+) at a higher, electric potential than the negative terminal (-)., The emf is represented by an arrow from, the negative terminal to the positive terminal of, a device such as a Voltaic cell. When the circuit, is open, there is no net flow of charge carriers, within the device. When connected in a circuit,, there is a flow of carriers from one terminal, to the other terminal inside the emf device., The positive charge carriers move towards the, positive terminal which acts as cathode inside, the emf device. Thus the positive charge carriers, move from the region of lower potential energy,, to the region of higher potential energy which is, cathode inside the emf device. Here, the energy, source is chemical in nature. In a Solar cell, it is, the photon energy in the Solar radiation., Now suppose that a charge dq flows, through the cross section of the circuit (Fig., 11.12), in time dt., It is clear that the same amount of charge, dq flows throughout the circuit, including the, emf device. It enters the negative terminal (low, potential terminal) and leaves the positive, terminal (higher potential terminal). Hence,, the device must do work dw on the charge dq,, so that it moves in the above manner. Thus we, define the emf of the emf device., dw, --- (11.39), ε=, dq, , The SI unit of emf is joule/coulomb, (J/C)., In an ideal device, there is no internal, resistance to the motion of charge carriers. The, emf of the device is then equal to the potential, difference across the two terminals of the, device. In a real emf device, there is an internal, resistance to the motion of charge carriers., If such a device is not connected in a circuit,, there is no current through it. In that case the, emf is equal to the potential difference across, the two terminals of the emf device connected, in a circuit, there is no current through it. If a, current (I) flows through an emf device, there is, an internal resistance (r) and the emf (ε) differs, , from the potential difference across its two, terminals (V)., V= ε - (I) (r) , --- (11.40), The negative sign is due to the fact that the, current I flows through the emf device from the, negative terminal to the positive terminal., By the application of Ohm’s law Eq. (11.9),, V = IR , Hence IR = ε - Ir, --- (11.41), Or, ε, I=, --- (11.42), R + r , Thus, the maximum current that can be, drawn from the emf device is when R = 0, i.e., ε, --- (11.43), I max =, r , This is the maximum allowed current, from an emf device (or a cell). This decides the, maximum current rating of a cell or a battery., 11.12 Cells in Series:, In a series combination, cells are connected, in single electrical path, such that the positive, terminal of one cell is connected to the negative, terminal of the next cell, and so on. The terminal, voltage of battery/cell is equal to the sum of, voltages of individual cells in series, as shown, in Fig 11.13 a., Figure shows two 1.5V cells in series. This, combination provides total voltage of 3.0V, (1.5×2)., , Fig. 11.13 (a): Cells in parallel., , Fig. 11.13 (b): Cells in parallel., The equivalent emf of n number of cells, in series combination is the algebraic sum of, their individual emf. The equivalent internal, resistance of n cells in a series combination is, the sum of their individual internal resistance., V = � � i � I. � ri, --- (11.44), , 216, , i, , i
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•, , Advantages of cells in series., (i) The cells connected in series produce a, larger resultant voltage., (ii) Cells which are damaged can be easily, identified, hence can be easily replaced., 11.13 Cells in parallel:, Consider two cells which are connected, in parallel. Here, positive terminals of all the, cells are connected together and the negative, terminals of all the cells are connected together., In parallel connection, the current is divided, among the branches i.e. I1 and I2 as shown in, Fig. 11.13b. Consider points B1 and B2 having, potentials VB and VB , respectively., 1, 2, For the first cell the potential difference, across its terminals is,, --- (11.45), V = VB - VB = ε1 - I1r1, 1, , 2, , � -V, --- (11.46), � I1 = 1, r1, Point B1 and B2 are connected exactly similarly, to the second cell., Hence, considering the second cell we write,, , Considering Eq. (11.49) and Eq. (11.50) we can, write,, � r �� r, � eq = 1 2 2 1, r1 +r2, req �, i.e., , r1r2, r1 +r2, , 1 1 1, � �, req r1 r2, , � eq, req, , �, , �1 � 2, �, r1 r2, , --- (11.51), , For n number of cells connected in parallel with, emf ε1, ε2, ε3, ......, εn and internal resistance r1,, r2, r3, ......, rn, 1 1 1 1, 1, � � � � ........... � --- (11.52), req r1 r2 r3, rn, and, , � eq, req, , �, , �, �1 � 2, � � ............. � n, r1 r2, rn, , , --- (11.53), � �V, Substitution of emfs should be done, --- (11.47), V = VB - VB = ε2 - I2r2 ; I 2 � 2, algebraically by considering proper ± signs, 1, 2, r2, We know that I = I1+ I2, according to polarity., Combining the last three equations,, • Advantages of cells in parallel : For cells, �1 V � 2 V, connected in parallel in a circuit, the circuit, --- (11.48), �, I = � � �, will not break open even if a cell gets, r1 r1 r2 r2, damaged or open., � �1 � 2 �, �1 1�, � � � � �V � � �, • Disadvantages of cells in parallel : The, � r1 r2 �, � r1 r2 �, voltage developed by the cells in parallel, connection cannot be increased by, � 1 1 � �� � �, Thus, V � � � � � 1 � 2 � � I, increasing number of cells present in circuit., � r1 r2 � � r1 r2 �, 11.14 Types of Cells:, � r1 +r2 � �1r2 � � 2 r1, Electrical cells can be divided into several, � V�, �I, ��, r1r2, categories like primary cell, secondary cell,, � r1r2 �, fuel cell, etc., �1r2 � � 2 r1, r1r2, A primary cell cannot be charged again. It, V=, �I, ---(11.49), r1 +r2, r1 +r2, can be used only once. Dry cells, alkaline cells, If we replace the cells by a single cell are different examples of primary cells. Primary, connected between points B1 and B2 with the cells are low cost and can be used easily., emf εeq and the internal resistance req as in Fig. But these are not suitable for heavy loads., (11.13b),, Secondary cells are used for such applications., The secondary cell are rechargeable and can be, then,, V = εeq - Ireq, --- (11.50) reused. The chemical reaction in a secondary, cells is reversible. Lead acid cell, and fuel cell, , 217
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are some examples of secondary cells. Lead, acid battery is used widely in vehicles and other, applications which require high load currents., Solar cells are secondary cells that convert, Solar energy into electrical energy., Fuel cells vehicles (FCVs) are electric, vehicles that use fuel cells instead of lead acid, batteries to power the vehicles. Hydrogen is, used as a fuel in fuel cells. The by- product, after its burning is water. This is important, in terms of reducing emission of greenhouse, gases produced by traditional gasoline fueled, vehicles. The hydrogen fuel cell vehicles are, thus more environment friendly., Example 11.8: A network of resistors is, connected to a 15 V battery with internal, resistance 1 Ω as shown in the circuit, diagram., Calculate, (i) The equivalent resistance,, (ii) Current in each resistor,, (iii) Voltage drops VAB, VBC and VDC., 1Ω, , D, , r =1 Ω, 15 V, , Solution :, i) Equivalent Resistance (Req) =RAB+RBC+RDC, 4×4, 6×6, RAB =, RCD =, � 2�,, � 3�, 4+4, 6+6, RBC = 1Ω, RT= Req = 2 + 1 + 3 = 6 Ω, ∴ Equivalent Resistance is 6 Ω, , ii. Current in each resistor :, Total current I in the circuit is,, I=, , ε, 15, =, = 2.1A, RT +r 6 +1, , , Consider resistors between A and B., Let I1 be the current through one of the, 4Ω resistors and I2 be the current in the other, resistor, I1 × 4 = I2 × 4, that is, I1 = I2 from symmetry of the two arms., But I1 + I2 = I = 2.1A, ∴ I1 = I2 =1.05A, that is, the current in each 4Ω resistor is 1.05A,, the current in 1Ω resistor between B and C, would be 2.1A., Now, consider the resistances between C, and D, Let I3 be the current through one of the 6, Ω resistors and I4 be the current in the other, resistor., I3 × 6 = I4 × 6, ∴, I3 = I4 = 1.05A, That is, current in each 6 Ω resistor is 1.05A, iii. Voltage drop across BC is VBC, VBC = I × 1 = 2.1 × 2.1 = 2 V, Voltage drop across CD is VCD, VCD = I × RCD = 2.1 × 3 =6.3V, [Note : Total voltage drop across AD is, (4.2 V+2.1V+6.3 V) =12.6 V, while its emf is, 15 V. The loss of the voltage is 2.4 V]., Internet my friend, https://www.britannica.com/science/, superconductivityphysics, , 218
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ises, , erc, , Ex, , Exercises, , 1. Choose correct alternative, i) You are given four bulbs of 25 W, 40 W,, 60 W and 100 W of power, all operating, at 230 V. Which of them has the lowest, resistance?, , (A) 25 W, (C) 40 W, , (C) 60 W, (D) 100 W, ii) Which of the following is an ohmic, conductor?, , (A) transistor (B)vacuum tube, , (C) electrolyte (D) nichrome wire, iii) A rheostat is used, (A) to bring on a known change of, resistance in the circuit to alter the current, , (B) to continuously change the resistance, in any arbitrary manner and there by alter, the current, , (C) to make and break the circuit at any, instant, , (D) neither to alter the resistance nor the, current, iv) The wire of length L and resistance R is, stretched so that its radius of cross-section, is halved. What is its new resistance?, , (A) 5R , (B) 8R, , (C)4R , (D) 16R, v) Masses of three pieces of wires made of, the same metal are in the ratio 1:3:5 and, their lengths are in the ratio 5:3:1. The, ratios of their resistances are, , (A) 1:3:5, (B) 5:3:1, (C) 1:15:125 (D) 125:15:1, , vi) The internal resistance of a cell of emf, 2V is 0.1Ω it is connected to a resistance, of 0.9Ω. The voltage across the cell will, be, , (A) 0.5 V, (B) 1.8 V, (C) 1.95 V, (D) 3V, , vii) 100 cells each of emf 5V and internal, resistance 1Ω are to be arranged so as, to produce maximum current in a 25Ω, resistance. Each row contains equal, , number of cells. The number of rows, should be, , (A) 2 , (B) 4, , (C) 5 , (D) 100, viii) Five dry cells each of voltage 1.5 V are, connected as shown in diagram, , , What is the overall voltage with this, arrangement?, , (A) 0V , (B) 4.5V , , (C) 6.0V , (D) 7.5V, 2. Give reasons / short answers, i) In given circuit diagram two resistors are, connected to a 5V supply., , , , , a] Calculate potential difference across, the 8Ω resistor., b] A third resistor is now connected, in parallel with 6Ω resistor. Will the, potential difference across the 8Ω resistor, the larger, smaller or the same as before?, Explain the reason for your answer., ii) Prove that the current density of a metallic, conductor is directly proportional to the, drift speed of electrons., 3. Answer the following questions., i) Distinguish between Ohmic and nonohmic substances; explain with the help, of example., ii) DC current flows in a metal piece of nonuniform cross-section. Which of these, quantities remains constant along the, conductor: current, current density or, drift speed?, , 219
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4. Solve the following problems., vii) A silver wire has a resistance of 4.2 Ω, at 27° C and resistance 5.4 Ω at 100° C., i) What is the resistance of one of the rails of, Determine the temperature coefficient of, a railway track 20 km long at 20° C? The, 2, resistance., cross section area of rail is 25 cm and the, rail is made of steel having resistivity at , [Ans: 3.91×10-3/°C], -8, 20° C as 6×10 Ω m. , viii) A 6m long wire has diameter 0.5 mm. Its, , [Ans: 0.48 Ω], resistance is 50 Ω. Find the resistivity and, ii) A battery after a long use has an emf, conductivity., 24 V and an internal resistance 380 Ω. [Ans: 1.636×10-6Ω/m, 6.112×105m/Ω], Calculate the maximum current drawn, ix) Find the value of resistances for the, from the battery? Can this battery drive, following colour code., starting motor of car?, , 1. Blue Green Red Gold, , [Ans: 0.063 A], , [Ans: 6.5 kΩ ± 5%], iii) A battery of emf 12 V and internal, 2. Brown Black Red Silver, resistance 3 Ω is connected to a resistor. , , [Ans: 1.0 kΩ ± 10%], If the current in the circuit is 0.5 A, , a] Calculate resistance of resistor., , 3. Red Red Orange Gold, b] Calculate terminal voltage of the , [Ans: 2.2 kΩ ± 5%], battery when the circuit is closed., , 4. Orange White Red Gold, , [Ans: a) 21 Ω, b) 10.5 V] , [Ans: 3.9 kΩ ± 5%], iv) The magnitude of current density in a , 5. Yellow Violet Brown Silver, copper wire is 500 A/cm2. If the number, , [Ans: 4.70 kΩ ± 10%], of free electrons per cm3 of copper is, 8.47×1022 calculate the drift velocity of x) Find the colour code for the following, value of resistor having tolerance ± 10%, the electrons through the copper wire, , a) 330Ω , b) 100Ω, c) 47kΩ, (charge on an e = 1.6×10-19 C), d), 160Ω, e), 1kΩ, , [Ans: 3.69×10-4 m/s], v) Three resistors 10 Ω, 20 Ω and 30 Ω are xi) A current 4A flows through an automobile, headlight. How many electrons flow, connected in series combination., through the headlight in a time 2hrs., i] Find equivalent resistance of series, , [Ans : 1.8 ×1023], combination., ii] When this series combination is xii) The heating element connected to 230V, draws a current of 5A. Determine the, connected to 12V supply, by neglecting, amount of heat dissipated in 1 hour, the value of internal resistance, obtain, (J = 4.2 J/cal.)., potential difference across each resistor., , [Ans : 985.7 kcal], , [Ans: i) 60 Ω, ii) 2 V, 4 V, 6 V], , vi) Two resistors 1k Ω and 2k Ω are connected, in parallel combination., ***, , i] Find equivalent resistance of parallel, combination, ii] When this parallel combination is, connected to 9 V supply, by neglecting, internal resistance calculate current, through each resistor., , [Ans: i) 0.66 kΩ, ii) 9 mA, 4.5 mA], , 220
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12., , Magnetism, , Can you recall?, 1., 2., 3., , What is a bar magnet?, What are the magnetic lines of force?, What are the rules concerning the lines of, , 12.1 Introduction:, The history of magnetism dates back, to earlier than 600 B.C., but it is only in the, twentieth century that scientists began to, understand it and developed technologies based, on this understanding. William Gilbert (15441603) was the first to systematically investigate, the phenomenon of magnetism using scientific, method. He also discovered that Earth is a weak, magnet. Danish physicist Hans Oersted (17771851) suggested a link between electricity and, magnetism. James Clerk Maxwell (1831-1879), proved that electricity and magnetism represent, different aspects of the same fundamental force, field., In electrostatics you have learnt about the, relationship between the electric field and force, due to electric charges and electric dipoles., Analogous concepts exist in magnetism except, that magnetic poles do not exist in isolation,, and we always have a magnetic dipole or a, Do you know ?, Some commonly known facts about, magnetism., (i) Every magnet regardless of its size and, shape has two poles called north pole, and south pole., (ii) If a magnet is broken into two or more, pieces then each piece behaves like an, independent magnet with somewhat, weaker magnetic field., Thus isolated magnetic monopoles, do not exist. The search for magnetic, monopoles is still going on., (iii) Like magnetic poles repel each other,, whereas unlike poles attract each other., (iv) When a bar magnet/ magnetic needle is, suspended freely or is pivoted, it aligns, itself in geographically North-South, direction., , 4., , force?, If you freely hang a bar magnetic horizontally,, in which direction will it become stable?, , quadrupole. In this Chapter the main focus, will be on elementary aspects of magnetism and, terrestrial magnetism., 12.2 Magnetic Lines of Force and Magnetic, Field:, You have studied properties of electric lines, of force earlier in the Chapter on electrostatics., In a similar manner, magnetic lines of force, originate from the north pole and end at the, south pole of a bar magnet. The magnetic, lines of force of a magnet have the following, properties:, i) The magnetic lines of force of a magnet, or a solenoid form closed loops. This is in, contrast to the case of an electric dipole,, where the electric lines of force originate, from the positive charge and end on, the negative charge, without forming a, complete loop (see Fig. 12.4)., , ii) The direction of the net magnetic field B, at a point is given by the tangent to the, magnetic line of force at that point in the, direction of line of force., iii) The number of lines of force crossing per, unit area decides, the magnitude of the, magnetic field B ., iv) The magnetic lines of force do not intersect., This is because had they intersected, the, direction of magnetic field would not be, unique at that point., Try this, You can take a bar magnet and a small, compass needle. Place the bar magnet at a, fixed position on a paper and place the needle, at various positions. Noting the orientation, of the needle, the magnetic field direction at, various locations can be traced., Density of lines of force i.e., the number of, lines of force per unit area normal to the surface, , 221
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around a particular point determines the strength, of the magnetic field at that point. The number, of lines of force is called magnetic flux ( φ ). SI, unit of magnetic flux ( φ ) is weber (Wb). For a, specific case of uniform magnetic field which, is normal to the finite area A, the magnitude of, magnetic field strength B at a point in the area, A is given by, Magnetic Field = magnetic flux, area, φ, , --- (12.1), i.e. B =, A, SI unit of magnetic field (B) is expressed, as weber/m2 or Tesla., 1 Tesla = 104 Gauss., However, magnetic lines are only a crude, way of representing magnetic field. It is a, pictorial representation of the strength of the, magnetic field (B). It is better defined in terms, of Lorentz force law which you will learn in std, XII., 12.3 The Bar magnet:, A bar magnet is said to have magnetic pole, strength +qm and - qm at the north and south, poles, respectively. The separation of magnetic, poles inside the magnet is 2l. As the bar magnet, has two poles, with equal and opposite pole, strength, it is called a magnetic dipole. This is, analogous to an electric dipole. The ��magnetic, �, dipole, moment,, therefore,, becomes, m, =, q, .2, m l, , ( 2l is a vector from south pole to north pole), in analogy with the electric dipole moment., SI unit of pole strength (qm) is A m., SI unit of magnetic dipole moment m is A m2., Axis:- It is the line passing through both the, poles of a bar magnet. Obviously, there is only, one axis for a given bar magnet., , Equator:- A line passing through the centre, of a magnet and perpendicular to its axis is, called magnetic equator. The plane containing, all equators is called the equatorial plane. The, locus of points, on the equatorial plane, which, are equidistant from the centre of the magnet, is called the equatorial circle. The popularly, known ‘equator’ in Geography is actually, an ‘equatorial circle’. Such a circle with any, diameter is an equator., Magnetic length (2l):- It is the distance, between the two poles of a magnet., 5, Magnetic length (2l) = × Geometric length, 6, --- (12.2), 12.3.1 Magnetic field due to a bar magnet, at a point along its axis and at a point, along its equator:, , Fig. 12.2 (a): Magnetic field at a point, along the axis of the magnet., ��, B eq, , ��, ��, � m, B eq � � 0 3, 4� r, , Fig. 12.2 (b): Magnetic, field along the equatorial, point., , Consider a bar magnet of dipole, length 2l, ��, and magnetic dipole moment m as shown in, Fig. 12.2 (a). We will now find magnetic field at, a point P along the axis of the bar magnet., Let r be the distance of point P from the, centre O of the magnetic dipole., OS = ON = l, ... NP � SP � r 2 � l 2, , �, , Fig. 12.1: Bar magnet, , �, , We now use the electrostatic analogy to, obtain the magnetic field due to a bar magnet, at a large distance r >> l. Consider the electric, field due to an electric dipole with a dipole, moment p., , 222
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compared with charge q in electrostatics., The Electrostatic Analogue:, As suggested by Maxwell, electricity Accordingly, we can write the equivalent, and magnetism could be studied analogously. physical quantities in electrostatics and, The pole strength (qm) in magnetism can be magnetism as shown in table 12.1., Table 12.1: The Electrostatic Analogue, Quantity, Basic physical quantity, Field, Constant, Dipole moment, Force, , Electrostatics, Electrostatic charge, ��, Electric Field E, , Magnetism, Magnetic pole, , Magnetic Field B, �0, 4�, , 1, 4�� 0, , , ��, p = q ( 2l ), along (-ve), ��, ��, F = qE, � ��, , ��, , m = qm ( 2l ) (bar magnet), (+ve) charge along S, N pole, , ��, F = qm B, �� ��, U = -m.B, , Energy (In external field), of a dipole, Coulomb’s law, , U = - p.E, , Axial field for a short, dipole, , ��, 2p, p, along, 4�� 0 r 3, , � 1 � q1q 2, F��, � 2, � 4�� 0 � r, , ��, Equatorial field for a short, p, p, opposite, to, dipole, 4�� 0 r 3, , No analogous law as, magnetic monopoles, do not exist, ��, � 0 2m, 4� r 3, ��, � �0 m, 4� r 3, , magnetic field, You have studied the electric field due to an Similarly, the equatorial, ��, ��, electric dipole of length 2l (p = 2ql) at a distance, � m, B eq � � 0 3 --- (12.4), r along the dipolar axis (Eq. 10.24) which is, 4� r, given by,, Negative, sign, shows that the direction of, ��, ��, ��, 1 2p, B eq is opposite to m ., , r �� l, Ea �, 4�� 0 r 3, For the same distance from centre O of a, bar magnet,, The electric field, �� on the equator (Eq. 10.28), Baxis = 2Beq, , --- (12.5), is antiparallel to p and is given by, 12.3.2 Magnetic field due to a bar magnet at, ��, 1 p, E eq �, ,, r, ��, l, an arbitrary point:, 4�� 0 r 3, Fig. 12.3 Shows a bar magnet of magnetic, , Using the analogy given in Table 12.1, moment m with centre at O. P is any point, , we can thus write the axial magnetic field of a in its magnetic field. Magnetic moment m is, bar magnet at a distance r, r >> l, 2l being the resolved (about the centre of the magnet) into, , length of bar magnet,��, components along r and perpendicular to r.�, , ��, For the component mcos θ along r , the point P, � 2m, --- (12.3) is an axial point., Ba � � 0 3, 4� r , , 223
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0 m, 4� r 3, 10�7 � 0.5 5 � 10�8, �, �, � 0.625 � 10�5 Wb / m 2, (0.2)3, 8 � 10�3, , Beq =, , P, , 12.4 Gauss' Law of Magnetism:, The Gauss' law for electric field is known, to you. It states that the net electric flux through, a closed Gaussian surface is proportional to the, Fig. 12.3: Magnetic field at an arbitrary point. net electric charge enclosed by the surface (Eq., Also, for the component msin θ (10.18)). The Gauss' law for magnetic fields, , perpendicular to r , the point P is an equatorial states that the net magnetic flux ΦB through a, , point at the same distance r . Using the results closed Gaussian surface is zero, i.e.,, of axial and equatorial fields, we get, (Gauss' law for magnetic, �o 2m cos �, fields), --- (12.6), Ba �, 4�, r3, , The magnetic force lines of (a) bar, directed along m cos θ and, magnet, (b) current carrying finite solenoid,, and (c) electric dipole are shown in Fig.12.4(a),, � m sin �, --- (12.7), Beq � o, �, 3, 12.4(b) and 12.4(c), respectively. The curves, 4� r, , labelled (i) and (ii) are cross sections of three, directed opposite to msin θ, Thus, the magnitude of the resultant magnetic dimensional closed Gaussian surfaces., field B, at point P is given by, B � � Ba 2 � Beq 2, , � m, 2, 2, ∴ B � � o � 3� � � 2 cos � � � �sin � �, 4� r, , �B �, , �o m, � �� 3 cos 2 � � 1, 4� r 3, , , --- (12.8), , , , Let α be the angle made by the direction of B with, , r . Then, by using eq (12.6) and eq (12.7),, --- (12.9), , , , , The angle between directions of B and m, is then �� � � � . , Example 12.1: A short magnetic dipole has, magnetic moment 0.5 A m2. Calculate its, magnetic field at a distance of 20 cm from the, centre of magnetic dipole on (i) the axis (ii) the, equatorial line (Given µ0 = 4 π Í10-7 SI units), Solution :, , Fig. 12.4 (a): Bar magnet., , m = 0.5 Am 2 , r = 20 cm = 0.2 m, , �0 2m 10�7 � 2 � 0.5 1� 10�7, �, �, 4� r 3, (0.2)3, 8 � 10�3, 1, � � 10�4 � 1.25 � 10�5 Wb / m 2, 8, , Ba =, , Fig. 12.4 (b): Current (I) carrying solenoid., , 224
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This fact clearly indicates that there is, some magnetic field present everywhere on the, Earth . This is called Terrestrial Magnetism. It, is extremely useful during navigation., Magnetic parameters of the Earth are, described below. The magnetic lines of force, enter the Earth's surface at the north pole and, emerge from the south pole., Unless and otherwise stated, the directions, mentioned (South, North, etc.) are always,, Geographic., , Fig. 12.4 (c): Electric dipole., If we compare the number of lines of force, entering in and leaving out of the surface (i), it, is clearly seen that they are equal. The Gaussian, surface does not include poles. It means that the, flux associated with any closed surface is equal, to zero. When we consider surface (ii), in Fig., 12.4 (b), we are enclosing the North pole. As, even a thin slice of a bar magnet will have North, and South poles associated with it, the closed, Gaussian surface will also include a South pole., However in Fig. 12.4(c), for an electric dipole,, the field lines begin from positive charge and, end on negative charge. For a closed surface, (ii), there is a net outward flux since it does, include a net (positive) charge. According to the, Gauss' law of electrostatics as studied earlier,, , where q is the positive charge, enclosed. Thus, situation is entirely different, from magnetic lines of force, which are shown, in Fig. 12.4(a) and Fig. 12.4(b). Thus, Gauss' law, of magnetism can be written as, ., From the above we conclude that for, electrostatics, an isolated electric charge exists, but an isolated magnetic pole does not exist. In, short, only dipoles exist in case of magnetism., 12.5 Earth’s Magnetism:, It is common experience that a bar magnet, or a magnetic needle suspended freely in air, always aligns itself along geographic N-S, direction. If it has a freedom to rotate about, horizontal axis, it inclines with some angle with, the horizontal in the vertical N-S plane., , Fig. 12.5: Earth's magnetism., Magnetic Axis :- The Earth is considered to, be a huge magnet. Magnetic north pole (N), of the Earth is located below Antarctica while, the south pole (S) is below north Canada. The, straight line NS joining these two poles is called, the magnetic axis, MM'., Magnetic equator :- A great circle in the plane, perpendicular to magnetic axis is magnetic, equatorial circle, AA'. It happens to pass through, India near Thiruvananthapuram., Geographic Meridian:- A plane perpendicular, to the surface of the Earth (vertical plane), perpendicular to geographic axis is geographic, meridian. (Fig.12.6), Magnetic Meridian:- A plane perpendicular to, surface of the Earth (Vertical plane) and passing, through the magnetic axis is magnetic meridian., Direction of resultant magnetic field of the, Earth is always along or parallel to magnetic, meridian. (Fig.12.6), Magnetic declination:- Angle between the, geographic and the magnetic meridian at a, place is called ‘magnetic declination’ (α). The, declination is small in India. It is 0° 58′ west at, Mumbai and 0041′ east at Delhi. Thus, at both, these places, magnetic needle shows true North, , 225
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accurately (Fig.12.6)., , φ, , Fig. 12.6: Magnetic declination., Magnetic inclination or angle of dip (φ):Angle made by the direction of resultant, magnetic field with the horizontal at a place, is inclination or angle of dip at the place (Fig., 12.7)., , Fig. 12.7: Magnetic inclination., Earth’s magnetic field:- Magnetic force, experienced, per unit pole strength is magnetic, , field B at that place. It can be resolved in, ��, components, along, the, horizontal,, B H and along, ��, vertical, BV . The vertical component can be, conveniently determined. The two components, can be related with the angle of dip (φ) as,, BH = B cosφ, BV = B sinφ, BV, � tan �, BH, , (magnetic equator) B = BH along South to, North, BV= 0 and φ = 0, Magnetic maps of the Earth:Magnetic elements of the Earth (BH, α and, φ) vary from place to place and also with time., The maps providing these values at different, locations are called magnetic maps. These, are extremely useful for navigation. Magnetic, maps drawn by joining places with the same, value of a particular element are called Isomagnetic charts., Lines joining the places of equal horizontal, components (BH) are known as ‘Isodynamic, lines’, Lines joining the places of equal declination, (α) are called Isogonic lines., Lines joining the places of equal inclination, or dip (φ) are called Aclinic lines., Example 12.2: Earth's magnetic field at the, equator is approximately 4×10-5 T. Calculate, Earth's dipole moment. (Radius of Earth =, 6.4×106 m, µ0 = 4π×10-7 SI units), Solution: Given, Beq = 4 ×10-5 T, r = 6.4 ×106 m, Assume that Earth is a bar magnet with N and, S poles being the geographical South and North, poles, respectively. The equatorial magnetic, field due to Earth's dipole can be written as, �m, Beq � 0 3, 4� r, m � 4� Beq � r 3 / �0, , --- (12.10), , � 4 � 10�5 � (6.4 � 106 )3 � 107, , � 1.05 � 1020 A m 2, Example 12.3: At a given place on the Earth,, , B 2 � BV 2 � BH 2, a bar magnet of magnetic moment m is kept, � B � BV 2 � BH 2, --- (12.11) horizontal in the East-West direction. P and, Q are the two neutral points, due to magnetic, Special cases, field of this magnet and BH is the horizontal, , ��, 1) At the magnetic ��North pole, B = BV , component of the Earth's magnetic field., (A) Calculate the angles between position, directed upward, B H = 0 and φ = 900., , , ��, vectors of P and Q with the direction of m ., 2) At the magnetic south, pole, B = BV ,��, (B) Points P and Q are 1 m from the centre of, directed downward, B H = 0 and φ = 2700., the bar magnet and BH � 3.5 � 10�5 �T . Calculate, 3) Anywhere on the magnetic great circle, , , 226
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magnetic dipole moment of the bar magnet., (B), Neutral point is that point where the, tan 2� � 2 ��, resultant magnetic field is zero., � sec 2� � 1 � tan 2� � 1 � 2 � 3�, Solution: (A) As seen from the figure, the, 1, direction of magnetic field B due to the bar, ��cos 2� �, 3, magnet is opposite to BH at the points P and Q., r � 1�m�and �B � BH � 3.5 � 10�5 �T, Also, �� � � � = 900 �at �P and it�is�2700 �at�Q.�, we have,, � m, B � 0 3 3cos 2� � 1, 4� r, BH � r 3, �m �, � �0 �, 2, � 4� � 3cos � � 1, �, �, 3.5 � 10�5 � 13, �, 1, 10�7 � 3 � 1, 3, 350, �m �, � 247.5�A�m 2, 2, , (Given), , Always remember:, In this Chapter we have used B as a symbol, for magnetic field. Calling it magnetic, induction is unreasonable. We have used, the words magnetic field which are used in, spoken language., , ises, , erc, , Ex, , Exercises, , 1. Choose the correct option., i) Let r be the distance of a point on the, axis of a bar magnet from its center. The, magnetic field at r is always proportional, to, , (A) 1/r2, (B) 1/r3, (C) 1/r, 3, (D) not necessarily 1/r at all points, ii) Magnetic meridian is the plane, (A) perpendicular to the magnetic axis of, Earth, , (B) perpendicular to geographic axis of, Earth, (C) passing through the magnetic axis of, Earth, , (D) passing through the geographic axis, Earth, , iii) The horizontal and vertical component, of magnetic field of Earth are same at, some place on the surface of Earth. The, magnetic dip angle at this place will be, , (A) 30o , (B) 45o, , (C) 0o , (D) 90o, iv) Inside a bar magnet, the magnetic field, lines, , (A) are not present, , (B) are parallel to the cross sectional area, of the magnet, , (C) are in the direction from N pole to S, pole, , (D) are in the direction from S pole to N, , 227, , pole
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A place where the vertical components of ii) A magnet makes an angle of 45o with the, horizontal in a plane making an angle of, Earth's magnetic field is zero has the angle, 30o with the magnetic meridian. Find the, of dip equal to, true value of the dip angle at the place., , (A) 0o , (B) 45o, , [Ans: tan-1 (0.866)], , (C) 60o , (D) 90o, vi) A place where the horizontal component iii) Two small and similar bar magnets have, magnetic dipole moment of 1.0 Am2, of Earth's magnetic field is zero lies at, each. They are kept in a plane in such a, (A) geographic equator, way that their axes are perpendicular to, (B) geomagnetic equator, , each other. A line drawn through the axis, , (C) one of the geographic poles, of one magnet passes through the center, of other magnet. If the distance between, , (D) one of the geomagnetic poles, their centers is 2 m, find the magnitude of, vii) A magnetic needle kept nonparallel to the, magnetic field at the mid point of the line, magnetic field in a nonuniform magnetic, joining their centers., field experiences, , [Ans: 5 � 10�7 T ], , (A) a force but not a torque, iv) A circular magnet is made with its north, , (B) a torque but not a force, pole at the centre, separated from the, , (C) both a force and a torque, surrounding circular south pole by an air, (D) neither force nor a torque, , a gap. Draw the magnetic field lines in the, 2. Answer the following questions in brief., gap. [The magnet is hypothetical magnet]., i) What happens if a bar magnet is cut into , Draw a diagram to illustrate the magnetic, two pieces transverse to its length/ along, lines of force between the south poles of, its length?, two such magnets., ii) What could be the equation for Gauss' v) Two bar magnets are placed on a straight, law of magnetism, if a monopole of pole, line with their north poles facing each other, strength p is enclosed by a surface?, on a horizontal surface. Draw magnetic, 3. Answer the following questions in detail., lines around them. Mark the position of, any neutral points (points where there is no, i) Explain the Gauss' law for magnetic fields., resultant magnetic field) on your diagram., ii) What is a geographic meridian. How does, the declination vary with latitude? Where, is it minimum?, ***, iii) Define the Angle of Dip. What happens to, angle of dip as we move towards magnetic, pole from magnetic equator?, Internet my friend, 4. Solve the following Problems., https://www.ngdc.noaa.gov, i) A magnetic pole of bar magnet with pole, strength of 100 A m is 20 cm away from, the centre of a bar magnet. Bar magnet has, pole strength of 200 A m and has a length, 5 cm. If the magnetic pole is on the axis, of the bar magnet, find the force on the, magnetic pole., [Ans: 2.5×10-2N], , v), , 228
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13., , Electromagnetic Waves and Communication System, , Can you recall?, 1. What is a wave?, 2. What is the difference between longitudinal, and transverse waves?, 3. What are electric and magnetic fields and, what are their sources?, , 4. What are Lenz's law, Ampere's law and, Faraday's law?, 5. By which mechanism heat is lost by hot, bodies ?, , 13.1 Introduction :, The information age in which we live, is based almost entirely on the physics of, electromagnetic (EM) waves. We are now, globally connected by TV, cellphone and, internet. All these gadgets use EM waves as, carriers for transmission of signals. Energy, from the Sun, an essential requirement for life, on Earth, reaches us by means of EM waves, that travel through nearly 150 million km of, empty space. There are EM waves from light, bulbs, heated engine blocks of automobiles,, x-ray machines, lightning flashes, and some, radioactive materials. Stars, other objects in our, milky way galaxy and other galaxies are known, to emit EM waves. Hence, it is important for us, to make a careful study of the properties of EM, waves., 13.2 EM wave:, There are four basic laws which describe, the behaviour of electric and magnetic fields,, the relation between them and their generation, by charges and currents. These laws are as, follows., (1) Gauss' law for electrostatics, which is, essentially the Coulomb’s law, describes, the relationship between static electric, charges and the electric field produced by, them., (2) Gauss' law for magnetism, which is, similar to the Gauss' law for electrostatics, mentioned above, states that "magnetic, monopoles which are thought to be, magnetic charges equivalent to the electric, charges, do not exist". Magnetic poles, always occur in pairs., (3) Faraday’s law which gives the relation, between electromotive force (emf) induced, in a circuit when the magnetic flux linked, , with the circuit changes., (4) Ampere’s law gives the relation between, the induced magnetic field associated with, a loop and the current flowing through, the loop. Maxwell (1831-1879) noticed, a major flaw in the Ampere’s law for, time dependant fields. He noticed that the, magnetic field can be generated not only, by electric current but also by changing, electric field. Therefore in the year 1861,, he added one more term to the equation, describing this law. This term is called, the displacement current. This term is, extremely important and the EM waves, which are an outcome of these equations, would not have been possible in absence, of this term., As a result, the set of four equations, describing the above four laws is called, Maxwell’s equations., In 1888, H. Hertz (1857-1894) succeeded, in producing and detecting the existence of EM, waves. He also demonstrated their properties, namely reflection, refraction and interference., In 1895, an Indian physicist Sir Jagdish, Chandra Bose (1858-1937) produced EM, waves ranging in wavelengths from 5 mm to 25, nm. His work, however, remained confined to, laboratory only., In 1896, an Italian physicist G. Marconi, (1874-1937) became pioneer in establishing, wireless communication. He was awarded the, Nobel prize in physics in 1909 for his work in, developing wireless telegraphy, telephony and, broadcasting., 13.2.1 Sources of EM waves:, According to Maxwell’s theory, "accelerated, charges radiate EM waves". Consider a charge, oscillating with some frequency. This produces, , 229
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an oscillating electric field in space, which, produces an oscillating magnetic field which in, turn is a source of oscillating electric field. Thus, varying electric and magnetic fields regenerate, each other., Waves that are caused by the acceleration, of charged particles and consist of electric, and magnetic fields vibrating sinusoidally at, right angles to each other and to the direction, of propagation are called EM waves or EM, radiation. Figure 13.1 shows an EM wave, propagating along z-axis. The time varying, electric field is along the x-axis and time varying, magnetic field is along the y-axis., , Fig. 13.1: EM wave propagating along z-axis., Do you know ?, In 1865, Maxwell proposed that an, oscillating electric charge radiates energy, in the form of EM wave. EM waves are, periodic changes in electric and magnetic, fields, which propagate through space., Thus, energy can be transported in the form, of EM waves., Maxwell’s Equations for Charges and, Currents in Vacuum, 1), , (Gauss’ law), , ��, Here E is the electric field and ε0 is, , the permittivity of vacuum. The integral is, over a closed surface S. The law states that, electric flux through any closed surface S is, equal to the total electric charge Qin enclosed, by the surface divided by ε0. Gauss’ law, describes the relation between an electric, charge and electric field it produces., (Gauss’ law for magnetism)., ��, Here B is the magnetic field. The, integral is over a closed surface S. The law, states that magnetic flux through a closed, surface is always zero, i.e., the magnetic, field lines are continuous closed curves,, having neither beginning nor end., , 2), , 3), (Faraday’s law with Lenz’s law), Here φm is the magnetic flux and the, integral is over a closed loop. Time varying, magnetic field induces an electromotive, force (emf) and hence, an electric field. The, direction of the induced emf is such that the, change is opposed., 4), (Ampere-Maxwell law), Here µ0 is the permeability of vacuum, and the integral is over a closed loop, I is, the current flowing through the loop. φE, is the electric flux linked with the circuit., Magnetic field is generated by moving, charges and also by varying electric fields., 13.2.2 Characteristics of EM waves: ��, 1) The, electric and magnetic fields, E and, B are always perpendicular to each other, and also to the direction of propagation, of the EM wave. Thus the EM waves are, transverse waves. �� ��, 2) The cross product E ×B gives the��direction, ��, in which the EM wave travels. E ×B also, gives��the energy, �� carried by EM wave., 3) The E and B fields vary sinusoidally and, are in phase., 4) EM waves are produced by accelerated, electric charges., 5) EM waves can travel through free space, as well as through solids, liquids and, gases., 6) In free space, EM waves travel with, velocity c, equal to that of light in free, space., 1, c�, � 3 � 108 m / s ,, , � 0� 0, where µ0 (4π×10-7 Tm/A) is permeability, and ε0 (8.85×10-12 C2/Nm2) is permittivity, of free space., 7) In a given material medium, the velocity, 1, (vm) of EM waves is given by v m �, ��, where µ is the permeability and ε is the, , 230
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permittivity of the given medium., 8) The EM waves obey the principle of, superposition., 9) The ratio of the amplitudes of electric and, magnetic fields is constant at any point and, is equal to the velocity, ��� of the EM wave., ���, ���, |E |, 1, | E0 |= c | B0 | or ���0 =, --- (13.1), | B0 |, �0 � 0, , , , ���, ���, ��, E0 and B0 are the amplitudes of E and, ��, , Do you know ?, According to quantum theory, an, electron, while orbiting around the nucleus, in a stable orbit does not emit EM radiation, even though it undergoes acceleration. It, will emit an EM radiation only when it falls, from an orbit of higher energy to one of, lower energy., EM waves (such as X-rays) are, produced when fast moving electrons hit, a target of high atomic number (such as, molybdenum, copper, etc.)., An electric charge at rest has an, electric field in the region around it but has, no magnetic field. When the charge moves,, it produces both electric and magnetic, fields. If the charge moves with a constant, velocity, the magnetic field will not change, with time and as such it cannot produce an, EM wave. But if the charge is accelerated,, both the magnetic and electric fields change, with space and time and an EM wave is, produced. Thus an oscillating charge emits, an EM wave which has the same frequency, as that of the oscillation of the charge., , B respectively., ��, 10) As the electric field vector ( E 0 ) is more, prominent than the magnetic field vector, ��, ( B 0 ), it is responsible for optical effects, due to EM waves. For this reason, electric, vector is called light vector., 11) The intensity of a wave is proportional to, the square of its amplitude and is given by, the equations, 1, 1 B0 2, I E � � 0 E0 2 , I B �, --- (13.2), 2, 2, �, 0, , 12) The energy of EM waves is distributed, equally between the electric and magnetic, fields. IE = IB, Example 13.1: Calculate the velocity of EM, both x- and, waves in vacuum., �� ��y-axes. As per property (2) of EM, waves, E ×B should be along the direction of, Solution: The velocity of EM wave in free, propagation which is along the x- axis, space is given by, Since (+ j ) ×(+ k ) = i , B is along the k ,, 1, 1, i.e., along the z-direction., c�, �, 2, � 0� 0, Thus, the amplitude of B = 3.2×10-8 T and, �12 C, �7 T.m, (8.85 � 10, )(, 4, �, 10, ), �, its direction is along the z-axis., Nm 2, A, �8, Example 13.3: A beam of red light has an, c � 3.00 � 10 m / s, Example 13.2: In free space, an EM wave of amplitude 2.5 times the amplitude of second, frequency 28 MHz travels along the x-direction. beam of the same colour. Calculate the ratio of, The amplitude of the electric field is E = 9.6 the intensities of the two waves., Intensity ∝ (Amplitude)2, V/m and its direction is along the y-axis. What Solution:, is amplitude and direction of magnetic field B? I2 ∝ (a)2 and I1 ∝ (2.5a)2, I1 (2.5a ) 2, Solution : We have,, � �, � (2.5) 2 � 6.25, 2, I, a, | E | 9.6 V / m, 2, , ., | B |�, , �, 3 � 108 m / s, c, B � 3.2 � 10�8 T, , In an EM wave, the magnetic field and, electric field both vary sinusoidally with, , �� x. For, E along, a, wave, travelling, along, x-axis, having, It is given that E is along y-direction and, , the wave propagates along x-axis. The magnetic y-axis and B along the z axis, with reference to, field B should be in a direction perpendicular to Chapter 8, we can write Ey and Bz as, , 231
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and, , Ey= E0 sin (kx-ωt), , --- (13.2), , Bz= B0 sin (kx-ωt),, , --- (13.3), , �x, �, Ey � E0 sin 2� � �� t �, ��, �, � x, �, Ey � E0 sin 2� � �2 � 3 � 1010 t �, �10, �, , where E0 is the amplitude of the electric field, Ey and B0 is the amplitude of the magnetic field, 2�, Bz. k �, is the propagation constant and λ, �, is the wavelength of the wave. ω = 2πυ is the, angular frequency of oscillations, υ being the, frequency of the wave., Both the electric and magnetic fields, attain their maximum (and minimum) values at, the same, time, �� and at the same point in space,, ��, i.e., E and B oscillate in phase with the same, frequency., Example 13.4: An EM wave of frequency, 50 MHz travels, in vacuum along the positive, ��, E, x-axis and, at a particular point, x and at a, particular instant of time t is 9.6�� j V/m. Find, the magnitude and direction of B at this point, x and at time t., 9.6, E, �8, Solution : B = c � 3 � 108 � 3.2 � 10 T, As the wave propagates along +x axis and, E is along +y axis, direction of B will be along, +z-axis i.e. B = 3.2×10-8 k T., Example 13.5: For an EM wave propagating, along x direction, the magnetic field oscillates, along the z-direction at a frequency of 3×1010, Hz and has amplitude of 10-9 T., a) What is the wavelength of the wave?, b) Write the expression representing the, corresponding electric field., Solution :, , Ey � E0 sin 2� ��100 x � 3 � 1010 t �� V / m, Example 13.6: The magnetic field of, an EM wave travelling along x-axis is, , B = k 4×10-4 sin (ωt - kx). Here B is in tesla, t is, in second and x is in m. Calculate the peak value, of electric force acting on a particle of charge 5, µC travelling with a velocity of 5×105 m/s along, the y-axis., Solution :, B0= 4×10-4 T, q = 5 µC = 5×10-6 C, v = 5×105 m/s, E0= cB0=(3×108) × (4×10-4), =12×104 N/C, Maximum electric force = qE0, , = (5×10-6) (12×104), , = 60×10-2, , = 0.6 N, 13.3 Electromagnetic Spectrum:, The orderly distribution (sequential, arrangement) of EM waves according to their, wavelengths (or frequencies) in the form of, distinct groups having different properties, is called the EM spectrum (Fig. 13.2). The, properties of different types of EM waves are, given in Table 13.1., , c 3 � 108 m / s, �, � 10�2 m, 10, � 3 � 10 / s, b) E0= cB0= (3×108 m/s) × (10-9 T) = 0.3 V/m., Since B acts along z-axis, E acts along y-axis., Fig. 13.2: Electromagnetic spectrum., Expression representing the oscillating electric, We briefly describe different types of EM, field is, waves in the order of decreasing wavelength (or, Ey � E0 sin (kx - � t ), increasing frequency)., 13.3.1 Radio waves :, �� 2� �, �, �, 2, ��, Ey � E0 sin ��, x, (, ), t, Radio waves are produced by accelerated, �, �, �� � �, �, motion of charges in a conducting wire. The, a) � =, , 232
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frequency of waves produced by the circuit, depends upon the magnitudes of the inductance, and the capacitance (This will be discussed, in XIIth standard). Thus, by choosing suitable, values of the inductance and the capacitance,, radio waves of desired frequency can be, produced., Properties :, 1) They have very long wavelengths ranging, from a few centimetres to a few hundreds, of kilometres., 2) The frequency range of AM band is 530, kHz to 1710 kHz. Frequency of the waves, used for TV-transmission range from 54, MHz to 890 MHz, while those for FM radio, band range from 88 MHz to 108MHz., , Notation used for high frequencies, 1 kHz = one kilo Hertz =1000 Hz = 103 Hz, 1 MHz = one mega Hertz = 106 Hz, 1 GHz = one giga Hertz =109 Hz, Notation used for small wavelengths, 1 µm = one micrometer = 10-6 m, 1 Å= one angstrom = 10-10 m= 10-8 cm, 1nm = one nanometer = 10-9 m, Uses :, 1) Radio waves are used for wireless, communication purpose., 2) They are used for radio broadcasting and, transmission of TV signals., 3) Cellular phones use radio waves to, transmit voice communication in the ultra, high frequency (UHF) band., Table 13.1: Properties of different types of EM waves, , Name, Gamma, rays, X-rays, , Wavelength, range in m, , Frequency, range in Hz, , Generated By, , Ultraviolet, (UV waves), , 3×10-8 to 4×10-7, , Visible light, , 4×10-7 to 8×10-7, , Infrared (IR), radiations, Microwaves, , 8×10-7 to 3×10-4, , 5×1020 to 3×1018 a) Transitions of nuclear energy levels, b) Radioactive substances, 3×1019 to 1×1016 a) Bombardment of high energy, electrons (keV) on a high atomic, number target (Cu, Mg, Co), b) Energy level transitions of, innermost orbital electrons, 16, 14, Rearrangement of orbital electrons of, 1×10 to 8×10, atom between energy levels. As in high, voltage gas discharge tube, the Sun and, mercury vapour lamp, etc., 8×1014 to 4×1014 Rearrangement of outer orbital, electrons in atoms and molecules e.g.,, gas discharge tube, 14, 12, Hot objects, 4×10 to 1×10, , 3×10-4 to 6×10-2, , 1×1012 to 5×109, , Radio waves, , 6×10-4 to 1×105, , 5×1011 to 8×1010, , 6×10-13 to 1×10-10, 1×10-11 to 3×10-8, , Special electronic devices such as, klystron tube, Acceleration of electrons in circuits, , 13.3.2 Microwaves :, they are incident., These waves were discovered of by H. 2) They can be detected by crystal detectors., Hertz in 1888. Microwaves are produced by Uses, oscillator electric circuits containing a capacitor 1) Used for the transmission of TV signals., and an inductor. They can be produced by 2) Used for long distance telephone, special vacuum tubes., communication., Properties, 3) Microwave ovens are used for cooking., 1) They heat certain substances on which 4) Used in radar systems for the location of, , 233
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distant objects like ships, aeroplanes etc,, 5) They are used in the study of atomic and, molecular structure., 13.3.3 Infrared waves, These waves were discovered by William, Herschel (1737-1822) in 1800. All hot bodies, are sources of infrared rays. About 60% of, the solar radiations are infrared in nature., Thermocouples, thermopile and bolometers are, used to detect infrared rays., Properties, 1) When infrared rays are incident on any, object, the object gets heated., 2) These rays are strongly absorbed by glass., 3) They can penetrate through thick columns, of fog, mist and cloud cover., Uses, 1) Used in remote sensing., 2) Used in diagnosis of superficial tumours, and varicose veins., 3) Used to cure infantile paralysis and to, treat sprains, dislocations and fractures., 4) They are used in Solar water heaters and, cookers., 5) Special infrared photographs of the body, called thermograms, can reveal diseased, organs because these parts radiate less, heat than the healthy organs., 6) Infrared binoculars and thermal imaging, cameras are used in military applications, for night vision., 7) Used to keep green house warm., 8) Used in remote controls of TV, VCR, etc, 13.3.4 Visible light :, It is the most familiar form of EM waves., These waves are detected by human eye., Therefore this wavelength range is called the, visible light. The visible light is emitted due to, atomic excitations., Properties :, 1) Different wavelengths give rise to different, colours. These are given in Table 13.2., 2) Visible light emitted or reflected from, objects around us provides us information, about those objects and hence about the, surroundings., , Do you know ?, Stars and galaxies emit different types, of waves. Radio waves and visible light can, pass through the Earth’s atmosphere and, reach the ground without getting absorbed, significantly. Thus the radio telescopes, and optical telescopes can be placed on the, ground. All other type of waves get absorbed, by the atmospheric gases and dust particles., Hence, the γ-ray, X-ray, ultraviolet, infrared,, and microwave telescopes are kept aboard, artificial satellites and are operated remotely, from the Earth. Even though the visible, radiation reaches the surface of the Earth,, its intensity decreases to some extent due, to absorption and scattering by atmospheric, gases and dust particles. Optical telescopes, are therefore located at higher altitudes., The Indian Giant Metrewave Radio, Telescope (GMRT) near Pune is an important, milestone in the field of Radio-astronomy., Also, Indian Astronomical Observatory, houses the Himalayan Chandra Telescope, (HCT), the 2 m optical-IR Telescope, which, is situated at Hanle, Ladakh, at an altitude of, 4500 m., Table 13.2: Wavelengths of colours in, visible light, Colour Wavelength, violet, 380-450 nm, blue, 450-495 nm, green, 495-570 nm, yellow 570-590 nm, orange 590-620 nm, red, 620-750 nm, 13.3.5 Ultraviolet rays :, Ultraviolet rays were discovered by, J. Ritter (1776-1810) in 1801. They can be, produced by the mercury vapour lamp, electric, spark and carbon arc lamp. They can also be, obtained by striking electrical discharge in, hydrogen and xenon gas tubes. The Sun is the, most important natural source of ultraviolet, rays, most of which are absorbed by the ozone, layer in the Earth’s atmosphere., , 234
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Properties, Properties :, 1) They produce fluorescence in certain 1) They are high energy EM waves., 2) They are not deflected by electric and, materials, such as 'phosphors'., magnetic fields., 2) They cause photoelectric effect., 3) They cannot pass through glass but pass 3) X-rays ionize the gases through which, they pass., through quartz, fluorite, rock salt etc., 4) They possess the property of synthesizing 4) They have high penetrating power., 5) Their over dose can kill living plant and, vitamin D, when skin is exposed to them., animal overdose tissues and hence are, Uses :, harmful., 1) Ultraviolet rays destroy germs and bacteria, Uses, and hence they are used for sterilizing, surgical instruments and for purification 1) Useful in the study of the structure of, crystals., of water., 2) Used in burglar alarms and security 2) X-ray photographs are useful to detect, bone fracture. X-rays have many other, systems., medical uses such as CT scan., 3) Used to distinguish real and fake gems., 3) X-rays are used to detect flaws or cracks in, 4) Used in analysis of chemical compounds., metals., 5) Used to detect forgery., 4) These are used for detection of explosives,, opium etc., Do you know ?, 13.3.7 Gamma Rays (γ-rays), Discovered by P. Villard (1860-1934) in, 1. A fluorescent light bulb is coated from, 1900., Gamma rays are emitted from the nuclei, with a powder inside and contains a gas;, of some radioactive elements such as uranium,, electricity causes the gas to emit ultraviolet, radium etc., radiation, which then stimulates the tube, Properties, coating to emit light., 1) They are highest energy EM waves., 2. The pixels of a television or computer, (energy range keV - GeV), screen fluoresce when electrons from an, 2) They are highly penetrating., electron gun strike them., 3) They have a small ionising power., 3. What we call 'visible light' is just the part, 4) They kill living cells., of the EM spectrum that human eyes see., Uses, Many other animals would define 'visible', 1) Used as insecticide disinfection for wheat, somewhat differently. For instance, many, and flour., animals including insects and birds, see, 2) Used for food preservation., in the UV region. Natural world is full of, 3) Used in radiotherapy for the treatment of, signals that animals see and humans cannot., cancer and tumour., Many birds including bluebirds, budgies,, 4), They are used to produce nuclear, parrots and even peacocks have ultraviolet, reactions., patterns that make them even more vivid to, each other than they are to us., 13.4 Propagation of EM Waves:, You must have seen a TV antenna used to, 13.3.6 X-rays:, German physicist W. C. Rontgen (1845- receive the TV signals from the transmitting, 1923) discovered X-rays in 1895 while studying tower or from a satellite. In communication, cathode rays (which is a stream of electrons using radio waves, an antenna in the transmitter, emitted by the cathode in a vacuum tube). radiates the EM waves, which travel through, X-rays are also called Rontgen rays. X-rays space and reach the receiving antenna at the, are produced when cathode rays are suddenly other end. As the EM wave travels away from, the transmitter; the strength of the wave keeps, stopped by an obstacle., , 235
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on decreasing. Several factors influence the, propagation of EM waves and the path they, follow. It is also important to understand the, composition of the Earth’s atmosphere as, it plays a vital role in the propagation of EM, waves. Different layers of Earth’s atmosphere, are shown in Fig. 13.3., Do you know ?, Ionizing radiations :, Ultraviolet, X-ray and gamma rays, have sufficient energy to cause ionization, i.e. they strip electrons from atoms and, molecules lying along their path. The atoms, lose their electrons and are then known as, ions. Ionization is harmful to human beings, because it can kill or damage living cells,, or make them grow abnormally as cancers., Fluorescent lamps are based on ionization of, gas. Ionizing radiation is also used in various, equipments in laboratory and industry., , Fig. 13.4: Propagation of EM waves., 13.4.1 Ground (surface) wave:, When a radio wave from a transmitting, antenna propagates near surface of the Earth, so as to reach the receiving antenna, the wave, propagation is called ground wave or surface, wave propagation., In this mode, radio waves travel close to, the surface of the Earth and move along its, curved surface from transmitter to receiver., The radio waves induce currents in the, ground and lose their energy by absorption., Therefore, the signal cannot be transmitted over, large distances. Radio waves having frequency, less than 2 MHz (in the medium frequency band), are transmitted by ground wave propagation., This is suitable for local broadcasting only., For TV or FM signals (very high frequency),, ground wave propagation cannot be used., 13.4.2 Space wave:, When the radio waves from the transmitting, antenna reach the receiving antenna either, directly along a straight line (line of sight) or, after reflection from the ground or satellite or, after reflection from troposphere, the wave, Fig 13.3: Earth and atmospheric layers., propagation is called space wave propagation., Different modes of propagation of EM The radio waves reflected from troposphere are, waves are described below and are shown in called tropospheric waves. Radio waves with, Fig. 13.4., frequency greater than 30 MHz can pass through, the ionosphere (60 km - 1000 km) after suffering, Do you know ?, a small deviation. Hence, these waves cannot be, transmitted by space wave propagation except, X-rays have many practical applications, by using a satellite. Also, for TV signals which, in medicine and industry. Because X-ray, have high frequency, transmission over long, photons are of such high energy, they can, distance is not possible by means of space wave, penetrate several centimetres of solid matter, propagation., and can be used to visualize the interiors of, The maximum distance over which a signal, materials that are opaque to ordinary light., can reach is called its range. For larger TV, , 236
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coverage, the height of the transmitting antenna, should be as large as possible. This is the reason, why the transmitting and receiving antennas are, mounted on top of high rise buildings., Range is the straight line distance from the, point of transmission (the top of the antenna), to the point on Earth where the wave will hit, while travelling along a straight line. Range is, shown by d in Fig. 13.5. Let the height of the, transmitting antenna (AA') situated at A be h. B, represents the point on the surface of the Earth, at which the space wave hits the Earth. The, triangle OA'B is a right angled triangle. From, ∆ OA' B we can write, OA'2 = A'B2 + OB2, (R+h)2 = d2 + R2, or R2 + h2 + 2Rh = d2 + R2, As h << R, we can ignore h2 and write, d ≅ 2 Rh, , Example 13.8: If the height of a TV transmitting, antenna is 128 m, how much square area can be, covered by the transmitted signal if the receiving, antenna is at the ground level? (Radius of the, Earth = 6400 km), Solution:, Range = d � 2 Rh, = 2(6400 � 103 )(128), = 16.384 � 105 � 103, = 16.384 � 108, = 4.047 � 104, � 40.470 km, Area covered = � d 2 � 3.14 � (40) 2, , = 5144 .58 k4m 2, Example 13.9: The height of a transmitting, antenna is 68 m and the receiving antenna is, The range can be increased by mounting at the top of a tower of height 34 m. Calculate, the receiver at a height h' say at a point C on the the maximum distance between them for, surface of the Earth. The range increases to d + satisfactory transmission in line of sight mode., (radius of Earth = 6400 km), d' where d' is 2Rh ' Thus, ht = 68 m, hr = 34m, R = 6400 km = 6.4×106m, Total range = d � d ' � 2 Rh � 2 Rh ', Solution:, dmax � 2 Rht � 2 Rhr, = 2 � 6.4 � 106 � 68 � 2 � 6.4 � 106 � 34, = 870 � 103 � 435 � 103, = 29.5 � 103 � 20.9 � 103, � 50.4 � 103 m, = 50.4 km, 13.4.3 Sky wave propagation:, When radio waves from a transmitting, antenna reach the receiving antenna after, reflection in the ionosphere, the wave, propagation is called sky wave propagation., The sky waves include waves of frequency, between 3 MHz and 30 MHz. These waves, can suffer multiple reflections between the, ionosphere and the Earth. Therefore, they can, be transmitted over large distances., = 2 � (6.4 � 106 ) � 500 m, Critical frequency : It is the maximum value, of the frequency of radio wave which can be, = 8 � 104 � 80 km,, reflected back to the Earth from the ionosphere, where R is radius of the Earth and h is the when the waves are directed normally to, height of the radar above Earth’s surface., ionosphere., , Fig. 13.5: Range of the signal (not to scale)., Example 13.7: A radar has a power of 10 kW, and is operating at a frequency of 20 GHz. It, is located on the top of a hill of height 500 m., Calculate the maximum distance upto which it, can detect object located on the surface of the, Earth . (Radius of Earth = 6.4×106 m), Solution:, Maximum distance (range) =, d = 2 Rh, , 237
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Skip distance (zone) : It is the shortest distance, from a transmitter measured along the surface, of the Earth at which a sky wave of fixed, frequency (if grater than critical frequency) will, be returned to the Earth so that no sky waves, can be received within the skip distance., 13.5 Introduction to Communication System:, Communication is exchange of information., Since ancient times it is practiced in various, ways e.g., through speaking, writing, singing,, using body language etc. After the discovery, of electricity in the late 19th century, human, communication systems changed dramatically., Modern communication is based upon the, discoveries and inventions by a number of, scientists like J. C. Bose (1858-1937), S. F. B., Morse (1791-1872), G. Marconi (1874-1937), and Alexander Graham Bell (1847-1922) in the, 19th and 20th centuries., In the 20th century we could send messages, over large distances using analogue signals,, cables and radio waves. With the advancements, of digitization technologies, we can now, communicate with the entire world almost in, real time., The ability to communicate is an important, feature of modern life. We can speak directly to, others all around the world and generate vast, amount of information every day., Here we will briefly discuss how, communication systems work. A communication, system is a device or set up used in transmission, and reception of information from one place to, another., 13.5.1 Elements of a communication system:, There are three basic (essential) elements, of every communication system: a) Transmitter,, b) Communication channel and c) Receiver., , place and the receiver at another place. The, communication channel is a passage through, which signals transfer in between a transmitter, and a receiver. This channel may be in the form, of wires or cables, or may also be wireless,, depending on the types of communication, system., There are two basic modes of, communication: (i) point to point communication, and (ii) broadcast., In point to point communication mode,, communication takes place over a link between a, single transmitter and a receiver e.g. Telephony., In the broadcast mode there are large number of, receivers corresponding to the single transmitter, e.g., Radio and Television transmission., 13.5.2 Commonly used terms in electronic, communication system:, Following terms are useful to understand, any communication system:, 1) Signal :- The information converted into, electrical form that is suitable for transmission, is called a signal. In a radio station, music and, speech are converted into electrical form by a, microphone for transmission into space. This, electrical form of sound is the signal. A signal, can be analog or digital as shown in Fig. 13.7., , (a), , (b), , Fig 13.7: (a) Analog signal. (b) Digital signal., (i) Analog signal: A continuously varying, signal (voltage or current) is called, an analog signal. Since a wave is a, fundamental analog signal, sound and, picture signals in TV are analog in nature, (Fig 13.7 a), (ii) Digital signal : A signal (voltage or current), that can have only two discrete values, is called a digital signal. For example, a, square wave is a digital signal. It has two, values viz, +5 V and 0 V. (Fig- 13.7 b), Fig. 13.6: Block diagram of the basic elements, 2) Transmitter :- A transmitter converts the, of a communication system., signal produced by a source of information, In a communication system, as shown, into a form suitable for transmission through a, in Fig. 13.6, the transmitter is located at one, channel and subsequent reception., , 238
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3) Transducer :- A device that converts one, form of energy into another form of energy is, called a transducer. For example, a microphone, converts sound energy into electrical energy., Therefore, a microphone is a transducer., Similarly, a loudspeaker is a transducer which, converts electrical energy into sound energy., 4) Receiver :- The receiver receives the message, signal at the channel output, reconstructs it in, recognizable form of the original message for, delivering it to the user of information., 5) Noise :- A random unwanted signal is called, noise. The source generating the noise may be, located inside or outside the system. Efforts, should be made to minimise the noise level in a, communication system., 6) Attenuation :- The loss of strength of the, signal while propagating through the channel, is known as attenuation. It occurs because the, channel distorts, reflects and refracts the signals, as it passes through it., 7) Amplification :- Amplification is the, process of raising the strength of a signal, using, an electronic circuit called amplifier., 8) Range :- The maximum (largest) distance, between a source and a destination up to which, the signal can be received with sufficient, strength is termed as range., 9) Bandwidth :- The bandwidth of an electronic, circuit is the range of frequencies over which it, operates efficiently., 10) Modulation :- The signals in communication, system (e.g. music, speech etc.) are low, frequency signals and cannot be transmitted, over large distances. In order to transmit the, signal to large distances, it is superimposed on, a high frequency wave (called carrier wave)., This process is called modulation. Modulation, is done at the transmitter and is an important, part of a communication system., 11) Demodulation :- The process of regaining, signal from a modulated wave is called, demodulation. This is the reverse process of, modulation., 12) Repeater :- It is a combination of a, transmitter and a receiver. The receiver receives, the signal from the transmitter, amplifies it and, transmits it to the next repeater. Repeaters are, , used to increase the range of a communication, system. These are shown in Fig. 13.8., , Fig.13.8: Use of repeater station to increase, the range of communication., Do you know ?, To transmit a signal we need an antenna, or an aerial. For efficient transmission and, reception, the transmitting and receiving, antennas must have a length at least λ/4, where λ is the wavelength of the signal., For an audio signal of 15kHz, the, required length of the antenna is λ/4 which, can be seen to be equal to 5 km., The highest TV tower in Rameshwaram,, Tamilnadu, is the tallest tower in India and, is ranked 32nd in the world with pinnacle, height of 323 metre. It is used for television, broadcast by the Doordarshan., 13.6 Modulation:, As mentioned earlier, an audio signal has, low frequency (< 20 KHz). Low frequency, signals can not be transmitted over large, distances. Because of this, a high frequency, wave, called a carrier wave, is used. Some, characteristic (e.g. amplitude, frequency or, phase) of this wave is changed in accordance, with the amplitude of the signal. This process, is known as modulation. Modulation also, helps avoid mixing up of signals from different, transmitters as different carrier wave frequencies, can be allotted to different transmitters. Without, the use of these waves, the audio signals, if, transmitted directly by different transmitters,, would have got mixed up., Modulation can be done by modifying, the (i) amplitude (amplitude modulation), (ii) frequency (frequency modulation), and (iii), phase (phase modulation) of the carrier wave in, proportion to the amplitude or intensity of the, , 239
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ises, , erc, , Ex, , susceptible to noise. This modulation is used for, high quality broadcast transmission., Phase modulation (PM) is easier than, frequency modulation. It is used in determining, the velocity of a moving target which cannot be, done using frequency modulation., a, b, Displacement, , signal wave keeping the other two properties, same. Figure 13.9 (a) shows a carrier wave, and (b) shows the signal. The carrier wave is, a high frequency wave while the signal is a, low frequency wave. Amplitude modulation,, frequency modulation and phase modulation of, carrier waves are shown in Fig. 13.9 (c), (d) and, (e) respectively., Amplitude modulation (AM) is simple, to implement and has large range. It is also, cheaper. Its disadvantages are that (i) it is not, very efficient as far as power usage is concerned, (ii) it is prone to noise and (iii) the reproduced, signal may not exactly match the original signal., In spite of this, these are used for commercial, broadcasting in the long, medium and short, wave bands., Frequency modulation (FM) is more, complex as compared to amplitude modulation, and, therefore is more difficult to implement., However, its main advantage is that it, reproduces the original signal closely and is less, , c, d, e, Time, , Fig. 13.9: (a) Carrier wave, (b) signal (c), AM (d) FM and (e) PM., Internet my friend, https://www.iiap.res.in/centers/iao, , Exercises, , 1. Choose the correct option., i) The EM wave emitted by the Sun and, responsible for heating the Earth’s, atmosphere due to green house effect is, (A) Infra-red radiation (B) X ray, (C) Microwave , (D) Visible light, ii) Earth ’s atmosphere is richest in, (A) UV , (B) IR , (C) X-ray , (D) Microwaves, iii) How does the frequency of a beam of, ultraviolet light change when it travels, from air into glass?, (A) No change , (B) increases, , (C) decreases , (D) remains same, iv) The direction of EM wave is given, �� �� by, �� ��, (A) E ×B , (B), E . B � , ��, �, (C) along E , (D) along B, v) The maximum distance upto which TV, transmission from a TV tower of height h, can be received is proportional to, (A) h1/2 (B) h , (C) h3/2 (D) h2, , vi) The waves used by artificial satellites for, communication purposes are, (A) Microwave, (B) AM radio waves, (C) FM radio waves, (D) X-rays, vii) If a TV telecast is to cover a radius of, 640 km, what should be the height of, transmitting antenna?, (A) 32000 m , (B) 53000 m, (C) 42000 m , (D) 55000 m, 2. Answer briefly., i), State two characteristics of an EM wave., ii), Why are microwaves used in radar?, iii) What are EM waves?, iv) How are EM waves produced?, v), Can we produce a pure electric or, magnetic wave in space? Why?, vi) Does an ordinary electric lamp emit EM, waves?, vii) Why do light waves travel in vacuum, whereas sound wave cannot?, , 240
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viii) What are ultraviolet rays? Give two uses., ix) What are radio waves? Give its two, uses., x), Name the most harmful radiation, entering the Earth's atmosphere from the, outer space., xi) Give reasons for the following:, , (i) Long distance radio broadcast uses, short wave bands., , (ii) Satellites are used for long distance, TV transmission., xii) Name the three basic units of any, communication system., xiii) What is a carrier wave?, xiv) Why high frequency carrier waves are, used for transmission of audio signals?, xv) What is modulation?, xvi) What is meant by amplitude modulation?, xvii) What is meant by noise?, xviii) What is meant by bandwidth?, xix) What is demodulation?, xx) What type of modulation is required for, television broadcast?, xxi) How does the effective power radiated, by an antenna vary with wavelength?, xxii) Why should broadcasting programs use, different frequencies?, xxiii) Explain the necessity of a carrier wave, in communication., xxiv) Why does amplitude modulation give, noisy reception?, xxv) Explain why is modulation needed., 2. Solve the numerical problem., i) Calculate the frequency in MHz of a radio, wave of wavelength 250 m. Remember, that the speed of all EM waves in vacuum, is 3.0×108 m/s., , [Ans: 1.2 MHz], ii) Calculate the wavelength in nm of an, X-ray wave of frequency 2.0×1018 Hz., , [Ans: 0.15 nm], , iii) The speed of light is 3×108 m/s. Calculate, the frequency of red light of wavelength of, 6.5×10-7 m., , [Ans: υ = 4.6×1014 Hz], iv) Calculate the wavelength of a microwave, of frequency 8.0 GHz., , [Ans: 3.75 cm], v) In a EM wave the electric field oscillates, sinusoidally at a frequency of 2×1010 Hz., What is the wavelength of the wave?, , [Ans: 1.5×10-2 m], vi) The amplitude of the magnetic field part, of a harmonic EM wave in vacuum is, B0= 5×10-7 T. What is the amplitude of the, electric field part of the wave?, , [Ans: 150V/m], vii) A TV tower has a height of 200 m., How much population is covered by TV, transmission if the average population, density around the tower is 1000/km2?, (Radius of the Earth = 6.4×106 m), , [Ans: 8×106], viii) Height of a TV tower is 600 m at a given, place. Calculate its coverage range if the, radius of the Earth is 6400 km. What, should be the height to get the double, coverage area?, [Ans: 87.6 km, 1200 m], , ix) A transmitting antenna at the top of a tower, has a height 32 m and that of the receiving, antenna is 50 m. What is the maximum, distance between them for satisfactory, communication in line of sight mode ?, Given radius of Earth is 6.4×106 m., [Ans: 45.537 km], , 241, , ***
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14., , Semiconductors, , Can you recall?, 3. A LED TV screen produces brighter and, vivid colours., 4. Good and bad conductor of electricity., , 1. Your mobile handset is very efficient gadget., 2. International Space Station works using, solar energy., , 14.1 Introduction:, Modern life is heavily dependent on many, electronic gadgets. It could be a cell phone, a, smart watch, a computer or even an LED lamp,, they all have one common factor, semiconductor, devices that make them work. Semiconductors, have made our life very comfortable and easy., Semiconductors are materials whose, electrical properties can be tailored to suit, our requirements. Before the discovery of, semiconductors, electrical properties of, materials could be of two types, conductors or, insulators. Conductors such as metals have a, very high electrical conductivity, for example,, conductivity of silver is 6.25x107 Sm-1 whereas, an insulator or a bad conductor like glass has, a very low electrical conductivity of the order, of 10-10 Sm-1. Electrical conductivity of silicon,, a semiconductor, for example is 1.56x10-3, Sm-1. It lies between that of a good conductor, and a bad conductor. A semiconductor can be, customised to have its electrical conductivity as, per our requirement. Temperature dependence, of electrical conductivity of a semiconductor, can also be controlled. Table 14.1 gives, electrical conductivity of some materials which, are commonly used., 14.2 Electrical conduction in solids:, Electrical conduction in a solid takes place, by transport of charge carriers. It depends on, its temperature, the number of charge carriers,, how easily these carries can move inside a solid, (mobility), its crystal structure, types and the, nature of defects present in a solid etc. There, can be three types of electrical conductors. It, could be a good conductor, a semiconductor or, a bad conductor., 1. Conductors (Metals): The best example, of a conductor is any metal. They have a large, , number of free electrons available for electrical, conduction. (A typical metal will have 1028, electrons per m3). Metals are good conductors, of electricity due to the large number of free, electrons present in them., 2. Insulators: Glass, wood or rubber are some, common examples of insulators. Insulators, have very small number (1023 per m3) of free, electrons., 3. Semiconductors: Silicon, germanium,, gallium arsenide, gallium nitride, cadmium, sulphide are some of the commonly used, semiconductors. The electrical conductivity of, a semiconductor is between the conductivity, of a metal and that of an insulator. The number, of charge carriers in a semiconductor can, be controlled as per our requirement. Their, structure can also be designed to suit our, requirement. Such materials are very useful, in electronic industry and find applications in, almost every gadget of daily use such as a cell, phone, a solar cell or a complex system such as, a satellite or the International Space Station., Table 14.1: Electrical conductivities of, some commonly used materials, , 242, , Silver, Copper, Aluminium, Gold, Nichrome, Platinum, Germanium, Silicon, Air, Glass, Teflon, Wood, , 6.30 × 107, 5.96 × 107, 3.5 × 107, 4.10 × 107, 9.09 × 105, 9.43 × 106, 2.17, 1.56 × 10-3, 3 × 10-15 to 8 × 10-15, 10-11 to 10-15, 10-25 to 10-23, 10-16 to 10-24
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Do you know ?, Electrical conductivity σ of a solid is, given by σ = nqµ, where,, n = charge carrier density, (number of carriers per unit volume), q = charge on the carriers, � � mobility of carriers, Mobility of a charge carrier is the, measure of the ease with which a carrier can, move in a material under the action of an, external electric field. It depends upon many, factors such as mass of the carrier, whether, the material is crystalline or amorphous, the, presence of structural defects in a material,, the nature of impurities in a material and so, on., Figure 14.1 shows the temperature, dependence of the electrical conductivity of a, typical metal and a semiconductor. When the, temperature of a semiconductor is increased,, its electrical conductivity also increases. The, electrical conductivity of a metal decreases with, increase in its temperature., , Fig. 14.1: Temperature dependence of, electrical conductivity of (a) metals and, (b)semiconductors., Variation of electrical conductivity of, semiconductors with change in its temperature, is a very useful property and finds applications, in a large number of electronic devices. A broad, classification of semiconductors can be:, a. Elemental, semiconductors:, Silicon,, germanium, b. Compound Semiconductors: Cadmium, sulphide, zinc sulphide, etc., c. Organic Semiconductors: Anthracene,, doped pthalocyanines, polyaniline etc., Elemental semiconductors and compound, semiconductors are widely used in electronic, industry. Discovery of organic semiconductors, is relatively new and they find lesser, applications., , Electrical properties of semiconductors are, different from metals and insulators due to their, unique conduction mechanism. The electronic, configuration of the elemental semiconductors, silicon and germanium plays a very important, role in their electrical properties. They are from, the fourth group of elements in the periodic, table. They have a valence of four. Their atoms, are bonded by covalent bonds. At absolute, zero temperature, all the covalent bonds are, completely satisfied in a single crystal of pure, silicon or germanium., The conduction mechanism in a, semiconductor can be better understood with, the help of the band theory of solids., Band theory of solids, a brief, 14.3 , introduction:, We begin with the way electron energies, in an isolated atom are distributed. An isolated, atom has its nucleus at the center which is, surrounded by a number of revolving electrons., These electrons are arranged in different and, discrete energy levels., When a solid is formed, a large number, of atoms are packed in it. The outermost, electronic energy levels in a solid are occupied, by electrons from all atoms in a solid. Sharing, of the outermost energy levels and resulting, formation of energy bands can be easily, understood by considering formation of solid, sodium., The electronic configuration of sodium, (atomic number 11) is 1s2, 2s2, 2p6, 3s1. The, outermost level 3s can take one more electron, but it is half filled in sodium., When solid sodium is formed, atoms, interact with each other through the electrons, in each atom. The energy levels are filled, according to the Pauli’s exclusion principle., According to this principle, no two electrons, can have the same set of quantum numbers, or, in simple words, no two electrons with similar, spin can occupy the same energy level., Any energy level can accommodate only, two electrons (one with spin up state and the, other with spin down state). According to this, principle, there can be two states per energy, level. Figure 14.2 (a) shows the allowed energy, , 243
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levels of an isolated sodium atom by horizontal, lines. The curved lines represent the potential, energy of an electron near the nucleus due to, Coulomb interaction., , Fig. 14.2: Potential energy diagram, energy, levels and bands (a) isolated atom, (b) two, atoms, (c) sodium metal., Consider two sodium atoms close enough, so that outer 3s electrons are equally likely to, be on any atom. The 3s electrons from both, the sodium atoms need to be accommodated, in the same level. This is made possible by, splitting the 3s level into two sub-levels so that, the Pauli’s exclusion principle is not violated., Figure 14.2 (b) shows the splitting of the 3s, level into two sub levels. When solid sodium, is formed, the atoms come close to each other, (distance between them ∼ 2 - 3Å). Therefore,, the electrons from different atoms interact, with each other and also with the neighbouring, atomic cores. The interaction between the, outer most electrons is more due to overlap, while the inner core electrons remain mostly, unaffected. Each of these energy levels is split, into a large number of sub levels, of the order of, Avogadro’s number. This is because the number, of atoms in solid sodium is of the order of this, number. The separation between the sublevels, is so small that the energy levels appear almost, continuous. This continuum of energy levels is, called an energy band. The bands are called 1s, band, 2s band, 2p band and so on. Figure 14.2 c, shows these bands in sodium metal. Broadening, of valence and higher bands is more because of, stronger interaction of these electrons., For sodium atom, the topmost occupied, energy level is the 3s level. This level is called, the valence level. Corresponding energy band, is called the valence band. Thus, the valence, , band in solid sodium is the topmost occupied, energy band. The valence band is half filled in, sodium. Figure 14.3 shows the energy bands in, sodium., , Fig. 14.3: Energy bands in sodium., When sufficient energy is provided to, electrons from the valence band they are, raised to higher levels. The immediately next, energy level that electrons from valence band, can occupy is called conduction level. The, band formed by conduction levels is called, conduction band. In sodium valence and, conduction bands overlap., In a semiconductor or an insulator, there, is a gap between the bottom of the conduction, band and the top of the valence band. This is, called the energy gap or the band gap., , Fig. 14.4: Energy bands for a typical solid., Figure 14.4 shows the conduction band,, the energy gap and the valence band for a, typical solid which is not a good conductor. It, is important to remember that this structure, is related to the energy of electrons in a, solid and it does not represent the physical, structure of a solid in any way., All the energy levels in a band, including, the topmost band, in a semiconductor are, completely occupied at absolute zero. At, some finite temperature T, few electrons gain, thermal energy of the order of kT, where k is the, Boltzmann constant., Electrons in the bands below the valence, band cannot move to higher band since these, are already occupied. Only electrons from, the valence band can be excited to the empty, , 244
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Formation of energy bands in a solid is a, result of the small distances between atoms,, the resulting interaction amongst electrons, and the Pauli’s exclusion principle., conduction band, if the thermal energy gained, by these electrons is greater than the band gap., In case of sodium, electrons from the 3s band, can gain thermal energy and occupy a slightly, higher energy level because the 3s band is only, half filled., Electrons can also gain energy when, an external electric field is applied to a solid., Energy gained due to electric field is smaller,, hence only electrons at the topmost energy level, gain such energy and participate in electrical, conduction., , (a) (b) (c), Fig. 14.5: Band structure of a (a) metal,, (b) semiconductor, and an insulator (c)., The difference in electrical conductivities, of various solids can be explained on the basis, of the band structure of solids. Band structure, in a metal, semiconductor and an insulator, is different. Figure 14.5 shows a schematic, representation of band structure of a metal, a, semiconductor and an insulator., For metals, the valence band and the, conduction band overlap and there is no band gap, as shown in Fig.14.5 (a). Electrons, therefore,, find it easy to gain electrical energy when some, external electric field is applied. They are,, therefore, easily available for conduction., In case of semiconductors, the band gap is, fairly small, of the order of one electron volt, or less as shown in Fig.14.5 (b). When excited,, electrons gain energy and occupy energy levels, in conduction band easily and can take part in, electric conduction., Insulators, on the contrary, have a wide gap, between valence band and conduction band as, shown in Fig.14.5 (c). Diamond, for example,, has a band gap of about 5.0 eV. In an insulator,, therefore, electrons find it very difficult to gain, , sufficient energy and occupy energy levels in, the conduction band., The magnitude of the band gap plays a, very important role in electronic properties of, a solid., Table 14.2: Magnitude of energy gap in, silicon, germanium and diamond., Material, Silicon, Germanium, Diamond, , Energy gap (eV), At 300 K, 1.12, 0.66, , 5.47, , 1 eV is the energy gained by an electron, while it overcomes a potential difference of, one volt. 1 ev = 1.6 × 10-19 J., , 14.4 Intrinsic Semiconductor:, A pure semiconductor such as pure silicon, or pure germanium is called an intrinsic, semiconductor. Silicon (Si) has atomic number, 14 and its electronic configuration is 1s2 2s2 2p6, 3s2 3p2. Its valence is 4. Each atom of Si forms, four covalent bonds with its neighbouring, atoms. One Si atom is surrounded by four Si, atoms at the corners of a regular tetrahedron, Fig. 14.6., , \, Fig. 14.6: Structure of silicon., At absolute zero temperature, all valence, electrons are tightly bound to respective atoms, and the covalent bonds are complete. Electrons, are not available to conduct electricity through, the crystal because they cannot gain enough, energy to get into higher energy levels. At, room temperature, however, a few covalent, bonds are broken due to thermal agitation and, some valence electrons can gain energy. Thus, we can say that a valence electron is moved to, the conduction band. It creates a vacancy in the, valence band as shown in Fig. 14.7., , 245
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Fig. 14.7: Creation of vacancy in the, valence band., These vacancies of electrons in the valence, band are called holes. The holes are thus absence, of electrons in the valence band and they carry, an effective positive charge., For an intrinsic semiconductor, the number, of holes per unit volume, (the number density,, nh) and the number of free electrons per unit, volume, (the number density, ne) is the same., nh = ne, Electric conduction through an intrinsic, semiconductor is quite interesting. There, are two different types of charge carriers in a, semiconductor. One is the electron and the other, is the hole or absence of electron. Electrical, conduction takes place by transportation of, both carriers or any one of the two carriers, in a semiconductor. When a semiconductor, is connected in a circuit, electrons, being, negatively charged, move towards positive, terminal of the battery. Holes have an effective, positive charge, and move towards negative, terminal of the battery. Thus, the current, through a semiconductor is carried by two, types of charge carriers which move in opposite, directions. This conduction mechanism makes, semiconductors very useful in designing a, large number of electronic devices. Figure 14.8, represents the current through a semiconductor., , using them. Addition of a small amount of a, suitable impurity to an intrinsic semiconductor, increases its conductivity appreciably. The, process of adding impurities to an intrinsic, semiconductor is called doping. The, semiconductor with impurity is called a doped, semiconductor or an extrinsic semiconductor., The impurity is called the dopant. The parent, atoms are called hosts. The dopant material, is so selected that it does not disturb the, crystal structure of the host. The size and the, electronic configuration of the dopant should, be compatible with that of the host. Silicon or, germanium can be doped with a pentavalent, impurity such as phosphorus (P) arsenic (As) or, antimony (Sb) . They can also be doped with a, trivalent impurity such as boron (B) aluminium, (Al) or indium (In)., Addition of pentavalent or trivalent, impurities in intrinsic semiconductors gives, rise to different conduction mechanisms., This is very useful in designing many electronic, devices. Extrinsic semiconductors can be of, two types a) n-type semiconductor or b) p-type, semiconductor., a) n-type semiconductor: When silicon or, germanium crystal is doped with a pentavalent, impurity such as phosphorus, arsenic, or, antimony we get n-type semiconductor., Figure 14.9 shows the schematic electronic, structure of antimony., , Fig. 14.9: Schematic electronic structure of, antimony., When a dopant atom of 5 valence electrons, Fig. 14.8: Current through a semiconductor,, occupies the position of a Si atom in the crystal, transport of electrons and holes., lattice, 4 electrons from the dopant form bonds, 14.5 Extrinsic semiconductors:, with 4 neighbouring Si atoms and the fifth, The electric conductivity of an intrinsic electron from the dopant remains very weakly, semiconductor is very low at room temperature; bound to its parent atom. Figure 14.10 shows a, hence no electronic devices can be fabricated pentavalent impurity in silicon lattice., , 246
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and holes are the minority carriers. Therefore,, it is called n-type semiconductor. For n-type, semiconductor, ne >> nh ., The free electrons donated by the impurity, atoms occupy energy levels which are in the, band gap and are close to the conduction band., They can be easily available for conduction., Figure 14.11 shows the schematic band, structure of an n-type semiconductor., Fig. 14.10: Pentavalent impurity in silicon, crystal., To make this electron free even at room, temperature, very small energy is required. It is, 0.01 eV for Ge and 0.05 eV for Si., Do you know ?, One cm3 specimen of a metal or, semiconductor has of the order of 1022 atoms., In a metal, every atom donates at least one free, electron for conduction, thus 1 cm3 of metal, contains of the order of 1022 free electrons,, whereas 1 cm3 of pure germanium at 20 °C, contains about 4.2×1022 atoms, but only, 2.5×1013 free electrons and 2.5×1013 holes., Addition of 0.001% of arsenic (an impurity), donates 1017 extra free electrons in the same, volume and the electrical conductivity is, increased by a factor of 10,000., Since every pentavalent dopant atom, donates one electron for conduction, it is called, a donor impurity. As this semiconductor has, large number of electrons in conduction band, and its conductivity is due to negatively charged, carriers, it is called n-type semiconductor. The, n-type semiconductor also has a few electrons, and holes produced due to the thermally broken, bonds. The density of conduction electrons (ne), in a doped semiconductor is the sum total of, the electrons contributed by donors and the, thermally generated electrons from the host. The, density of holes (nh) is only due to the thermal, breakdown of some covalent bonds of the host, Si atoms. Some electrons and holes recombine, continuously because they carry opposite, charges. The number of free electrons exceeds, the number of holes. Thus, in a semiconductor, doped with pentavalent impurity, electrons, (negative charge) are the majority carriers, , Fig.14.11: Schematic band structure of an, n-type semiconductor., Extrinsic semiconductors are thus far better, conductors than intrinsic semiconductors. The, conductivity of an extrinsic semiconductor, can be controlled by controlling the amount of, impurities added. The amount of impurities is, expressed as part per million or ppm, that is,, one impurity atom per one million atoms of the, host., Features of n-type semiconductors: These, are materials doped with pentavalent impurity, (donors) atoms . Electrical conduction in these, materials is due to electrons as majority charge, carriers., 1. The donor atom lose electrons and become, positively charged ions., 2. Number of free electrons is very large, compared to the number of holes, ne>> nh ., Electrons are majority charge carriers., 3. When energy is supplied externally,, negatively charged free electrons (majority, charges carries) and positively charged holes, (minority charge carriers) are available for, conduction., b) p-type semiconductor: When silicon or, germanium crystal is doped with a trivalent, impurity such as boron, aluminium or indium,, we get a p-type semiconductor. Figure 14.12, shows the schematic electronic structure of, boron., The dopant trivalent atom has one valence, electron less than that of a silicon atom. Every, trivalent dopant atom shares its three electrons, with three neighbouring Si atoms to form, , 247
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covalent bonds. But the fourth bond between, These vacancies of electrons are created, silicon atom and its neighbour is not complete. in the valence band; therefore we can say that, the holes are created in the valence band. The, impurity levels are created just above the valence, band in the band gap. Electrons from valence, band can easily occupy these levels and conduct, electricity. Figure 14.14 shows the schematic, band structure of a p-type semiconductor., Features of p-type semiconductor: These are, materials doped with trivalent impurity atoms, Fig. 14.12: Schematic electronic structure, (acceptors). Electrical conduction in these, of boron., Figure 14.13 shows a trivalent impurity materials is due to holes as majority charge, in a silicon crystal. The incomplete bond carriers., can be completed by another electron in the 1. The acceptor atoms acquire electron and, become negatively charged-ions., neighbourhood from Si atom. Since each donar, of holes is very large compared, 2. Number, trivalent atom can accept an electron, it is, to the number of free electrons. (nh ne)., called an acceptor impurity. The shared electron, Holes are majority charge carriers., creates a vacancy in its place. This vacancy or, 3. When energy is supplied externally,, the absence of electron is a hole., positively, charged, holes, (majority, charge, carriers), and, negatively, charged free electrons (minority charge, carriers) are available for conduction., neutrality, c) Charge, of, extrinsic, semiconductors: The n-type semiconductor, has excess of electrons but these extra electrons, are supplied by the donor atoms which, become positively charged. Since each atom, of donor impurity is electrically neutral, the, semiconductor as a whole is electrically neutral., Fig. 14.13: A trivalent impurity in a silicon, Here, excess electron refers to an excess with, crystal., Thus, a hole is available for conduction reference to the number of electrons needed to, from each acceptor impurity atom. Holes are complete the covalent bonds in a semiconductor, majority carriers and electrons are minority crystal. These extra free electrons increase the, carriers in such materials. Acceptor atoms are conductivity of the semiconductor., Similarly, a p-type semiconductor has holes, negatively charged and majority carriers are, holes (positively charged). Therefore, extrinsic or absence of electrons in some energy levels., semiconductor doped with trivalent impurity When an electron from a host atom fills this, is called a p-type semiconductor. For a p-type level, the host atom is positively charged and, the dopant atom is negatively charged but the, semiconductor, nh>>ne., semiconductor as a whole is electrically neutral., Thus, n-type as well as p-type semiconductors, are electrically neutral., Always remember, for a semiconductor,, ne.nh = ni2, Example 14.1: A pure Si crystal has 4 × 1028, atoms m-3. It is doped by 1ppm concentration, Fig. 14.14: Schematic band structure of a, of antimony. Calculate the number of electrons, p-type semiconductor., and holes. Given ni = 1.2 x 1016/m3., , 248
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Solution: 1 ppm = 1 part per million = 1/106, 28, ∴ no. of Sb atoms = 4 � 10 � 4 � 1022, 106, As one pentavalent impurity atom donates, one free electron to the crystal,, Number of free electrons in the crystal, ne = 4 x 1022 m-3, Number of holes,, 2, �n � =, nh = i, ne, nh = 3.6 x 109 m-3, Do you know ?, Transportation of holes, Consider a p-type semiconductor, connected to terminals of a battery as shown., When the circuit is switched on, electrons at, 1 and 2 are attracted to the positive terminal, of the battery and occupy nearby holes at x, and y. This generates holes at the positions, 1 and 2 previously occupied by electrons., Next, electrons at 3 and 4 move towards, the positive terminal and create holes in the, positions they occupied previously., , Finally, the hole is captured at the, negative terminal by the electron supplied, by the battery at that end. This keeps the, density of holes constant and maintains the, current so long as the battery is working., Thus, physical transportation is of, the electrons only. However, we feel that, the holes are moving towards the negative, terminal of the battery. Positive charge is, attracted towards negative terminal. Thus, holes, which are not actual charges, behave, like a positive charge. In this case, there is, an indirect movement of electrons and their, drift speed is less than that in the n-type, semiconductors. The mobility of holes is,, therefore, less than that of the electrons., , Example 14.2: A pure silicon crystal at, temperature of 300 K has electron and hole, concentration 1.5 × 1016 m-3 each. (ne = nh)., Doping by indium increases nh to 4.5× 1022 m-3 ., Calculate ne for the doped silicon crystal., 2, Solution: We know,, ni �, �, 2, ne nh = ni and ne =, nh, Given, ni = 1.5 x 1016m-3 and nh = 4.5 × 1022 m-3, (1.5�x�1016 ) 2, ne =, = 5 × 109 m-3, �4.5�x�1022, 14.6 p-n junction:, When n-type and p-type semiconductor, materials are fused together, a p-n junction is, formed. A p-n junction shows many interesting, properties and it is the basis of almost all, modern electronic devices. Figure 14.15 shows, a schematic structure of a p-n junction., , Fig. 14.15: Schematic structure of a p-n, junction., Diffision: When n-type and p-type, semiconductor materials are fused together,, initially, the number of electrons in the n-side, of the junction is very large compared to the, number of electrons on the p-side. The same is, true for the number of holes on the p-side and on, the n-side. Thus, the density of carriers on both, sides is different and a large density gradient, exists on both sides of the p-n junction. This, density gradient causes migration of electrons, from the n-side to the p-side of the junction., They fill up the holes in the p-type material and, produce negative ions., When the electrons from the n-side of a, junction migrate to the p-side, they leave behind, positively charged donor ions on the n-side., Effectively, holes from the p-side migrate into, the n-region., As a result, in the p-type region near the, junction there are negatively charged acceptor, ions, and in the n-type region near the junction, there are positively charged donor ions. The, transfer of electrons and holes across the p-n, , 249
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junction is called diffusion. The extent up to, which the electrons and the holes can diffuse, across the junction depends on the density of, the donor and the acceptor ions on the n-side, and the p-side respectively, of the junction., Figure 14.16 shows the diffusion of charge, carriers across the junction., Fig. 14.16:, Diffusion of, charge carriers, across a junction., , The n-side near the boundary of a p-n, junction becomes positive with respect to the, p-side because it has lost electrons and the p-side, has lost holes. Thus the presence of impurity, ions on both sides of the junction establishes, an electric field across this region such that the, n-side is at a positive voltage relative to the, p-side. Figure 14.18 shows the electric field, thus produced., , Depletion region: The diffusion of carriers, across the junction and resultant accumulation, of positive and negative charges across the, junction builds a potential difference across the, junction. This potential difference is called the, potential barrier. The magnitude of the potential, barrier for silicon is about 0.6 – 0.7 volt and, for germanium, it is about 0.3 – 0.35 volt. This, potential barrier always exists even if the device, is not connected to any external power source. It, prevents continuous diffusion of carriers across, the junction. A state of electrostatic equilibrium, is thus reached across the junction., Free charge carriers cannot be present in, a region where there is a potential barrier. The, regions on either side of a junction, therefore,, becomes completely devoid of any charge, carriers. This region across the p-n junction, where there are no charges is called the depletion, layer or the depletion region. Figure 14.17, shows the potential barrier and the depletion, layer., , Fig. 14.18: Electric field across a junction., Biasing a p-n junction: As a result of potential, barrier across depletion region, charge carriers, require some extra energy to overcome the, barrier. A suitable voltage needs to be applied, to the junction externally, so that these charge, carriers can overcome the potential barrier and, move across the junction. Figure 14.19 shows, two possibilities of applying this external, voltage across the junction., Figure 14.19 (a) shows a p-n junction, connected in an electric circuit where the, p-region is connected to the positive terminal, and the n-region is connected to the negative, terminal of an external voltage source. This, external voltage effectively opposes the built-in, potential of the junction. The width of potential, barrier is thus reduced. Also, negative charge, carriers (electrons) from the n-region are, pushed towards the junction. A similar effect is, experienced by positive charge carriers (holes), in the p-region and they are pushed towards, the junction. Both the charge carriers thus find, it easy to cross over the barrier and contribute, towards the electric current. Such arrangement, of a p-n junction in an electric circuit is called, Fig. 14.17: Potential barrier and the, forward bias., depletion layer., Figure 14.19 (b) shows the other possibility,, The potential across a junction and width where, the p-region is connected to the negative, of the potential barrier can be controlled. This terminal and the n-region is connected to the, is very interesting and useful property of a p-n positive terminal of the external voltage source., junction., This external voltage effectively adds to the, , 250
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built-in potential of the junction. The width of, potential barrier is thus increased. Also, the, negative charge carriers (electrons) from the, n-region are pulled away from the junction., Similar effect is experienced by the positive, charge carriers (holes) in the p-region and, they are pulled away from the junction. Both, the charge carriers thus find it very difficult to, cross over the barrier and thus do not contribute, towards the electric current. Such arrangement, of a p-n junction in an electric circuit is called, reverse bias., , 4. There are no charges in this region., 5. The depletion region has higher potential, on the n-side and lower potential on the, p-side of the junction., Do you know ?, Fabrication of p-n junction diode:, It was mentioned previously, for easy, understanding, that a p-n junction is formed, by fusing a p-type and a n-type material, together. However, in practice, a p-n junction, is formed from a crystalline structure of, silicon or germanium by adding carefully, controlled amounts of donor and acceptor, impurities., , (a), , The impurities grow on either side of the, crystal after heating in a furnace. Electrons, and holes combine at the center and the, depletion region develops. A junction is thus, formed. Electrodes are inserted after cutting, transverse sections and hundreds of diodes, are prepared. All semiconductor devices,, including ICs, are fabricated by ‘growing’, junctions at the required locations., Mobility of a hole is less than that of, an electron and the hole current is lesser., This imbalance between the two currents is, removed by increasing the doping percentage, in the p-region. This ensures that the same, current flows through the p-region and the, n-region of the junction., , (b), , Fig. 14.19: Forward biased (a) and reverse, biased (b) junction., Therefore, when used in forward bias, mode, a p-n junction allows a large current to, flow across. This current is normally of the, order of a few milliamperes, (10-3 A). A reverse, biased p-n junction on the other hand, carries, a very small current that is normally a few, microamperes (10-6 A)., A p-n junction can be thus used as a one, way switch or a gate in an electric circuit. It, conducts easily in forward bias and acts as an, open switch in reverse bias., Features of the depletion region:, 1. It is formed by diffusion of electrons, from n-region to the p-region. This leaves, positively charged ions in the n-region., 2. The p-region accumulates electrons, (negative charges) and the n-region, accumulates the holes (positive charges)., 3. The accumulation of charges on either sides, of the junction results in forming a potential, barrier and prevents flow of charges across, it., , 14.7 A p-n junction diode:, A p-n junction, when provided with, metallic connectors on each side is called a, junction diode or simply, a diode. (Diode is a, device with two electrodes or di-electrodes)., Figure 14.20 shows the circuit symbol for a, junction diode., , 251, , Fig. 14.20: Circuit symbol for a p-n junction, diode.
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The ‘arrow’ indicates the direction of the, conventional current. The p-side is called the, anode and the n-side is called the cathode of, the diode. When a diode is connected across a, battery, the carriers can gain additional energy, to cross the barrier as per biasing., A diode can be connected across a battery, in two different ways, forward bias and reverse, bias as shown in the (Fig. 14.21)., , The width of the depletion layer decreases, with an increase in the application of a forward, voltage. It increases when a reverse voltage is, applied. We have discussed the reasons for this, difference earlier. When the polarity of bias, voltage is reversed, the width of the depletion, layer changes. This results in asymmetrical, current flow through a diode as shown in (Fig., 14.22)., A diode can be thus used as a one way, switch in a circuit. It is forward biased when its, anode is connected to be at a higher potential, than that of the cathode. When the anode is at, lower potential than that of the cathode, it is, reverse biased. A diode can be zero biased if no, external voltage is applied across it., a) Forward biased: The positive terminal, of the external voltage is connected to, the anode (p-side) and negative terminal to the, cathode (n-side) across the diode., In case of forward bias, the width of the, depletion region decreases and the p-n junction, offers a low resistance path allowing a high, current to flow across the junction (Fig. 14.23)., , (a) , (b), Fig. 14.21: (a) Forward bias, (b) Reverse bias., The behavior of a diode in both cases is, different. This is because the barrier potential is, affected differently in the two cases. The barrier, potential is reduced in forward biased mode and, it is increased in reverse biased mode., Carriers find it easy to cross the junction in, forward bias and contribute towards current for, two reasons; first the barrier width is reduced, and second, they are pushed towards the junction, and gain extra energy to cross the junction., The current through the diode in forward bias, is, therefore, large. It is of the order of a few, milliamperes (10-3 A) for a typical diode., When connected in reverse bias, width of, the potential barrier is increased and the carriers, Fig. 14.23: Decrease in width of depletion, are pushed away from the junction so that very, region., few thermally generated carriers can cross the, Figure 14.24 shows the I-V characteristic, junction and contribute towards current. This, of, a, forward, biased diode. Initially, the current, results in a very small current through a reverse, biased diode. The current in reverse biased diode is very low and then there is a sudden rise in, is of the order of a few microamperes (10-6 A). the current. The point at which current rises, sharply is shown as the ‘knee’ point on the I-V, characteristic curve. The corresponding voltage, is called the ‘knee voltage’. It is about 0.7 V for, silicon and 0.3 V for germanium., , Fig. 14.22: Asymmetrical current flow, through a diode., , Fig. 14.24: I-V characteristic of a forward, biased diode., , 252
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A diode effectively becomes a short circuit, above this knee point and can conduct a very, large current. Resistors are, therefore, used in, series with diode to limit its current flow. If the, current through a diode exceeds the specified, value, it can heat up the diode due to the Joule, heating and can result in its physical damage., b) Reverse biased: The positive terminal, of the external voltage is connected to, the cathode (n-side) and negative terminal to, the anode (p-side) across the diode. In case of, reverse bias, the width of the depletion region, increases and the p-n junction behaves like a, high resistance (Fig. 14.25). Practically, no, current flows through it with an increase in the, reverse bias voltage. However, a very small, leakage current does flow through the junction, which is of the order of a few micro-amperes,, ( μA )., , Fig. 14.25: Increase in width of depletion, region., When the reverse bias voltage applied to, a diode is increased to sufficiently large value,, it causes the p-n junction to overheat. The, overheating of the junction results in a sudden, rise in the current through the junction. This is, because the covalent bonds break and a large, number of carriers are available for conduction., The diode, thus, no longer behaves like a diode., This effect is called the avalanche breakdown., The reverse biased characteristic of a diode is, shown in Fig 14.26., , Fig. 14.26: Reverse biased characteristic of, a diode., , 253, , Zero Biased Junction Diode., When a diode is connected in a zero, bias condition, no external potential energy, is applied to the p-n junction. When the, diode terminals are shorted together, some, holes (majority carriers) in the p-side have, enough thermal energy to overcome the, potential barrier. Such carriers cross the, barrier potential and contribute to current., This current is known as the forward, current. ., Similarly, some holes generated in the, n-side (minority carriers), also move across, the junction in the opposite direction and, contribute to current. This current is known, as the reverse current. This transfer of, electrons and holes back and forth across, the p-n junction is known as diffusion, as, discussed previously., , Zero biased p-n junction diode, The potential barrier that exists in a, junction prevents the diffusion of any more, majority carriers across it. However, some, minority carriers (few free electrons in the, p-region and few holes in the n-region) do, drift across the junction., An equilibrium is established when the, majority carriers are equal in number (ne=nh), and are moving in opposite directions. The, net current flowing across the junction is zero., This is a state of ‘dynamic equilibrium’., Minority carriers are continuously, generated due to thermal energy. When the, temperature of the p-n junction is raised, this, state of equilibrium is changed. This results, in generating more minority carriers and an, increase in the leakage current. An electric, current, however, cannot flow through the, diode because it is not connected in any, electric circuit.
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c) Static and dynamic resistance of a diode:, One of the most important properties of, a diode is its resistance in the forward biased, mode and in the reverse biased mode. Figure, 14.27 shows the I-V characteristics of an ideal, diode., An ideal diode offers zero resistance in, forward biased mode and infinite resistance in, reverse biased mode., , Example 14.3 Refer to the figure a shown, below and find the resistance between point A, and B when an ideal diode is (1) forward biased, and (2) reverse biased., (a), , (b), , (c), Fig. 14.27: I-V characteristics of an ideal diode., The I-V characteristics of a forward biased, diode (Fig. 14.24) is used to define two of its, resistances i) the static (DC) resistance and ii), the dynamic (AC) resistance., i) Static (DC) resistance: When a p-n junction, diode is forward biased, it offers a definite, resistance in the circuit. This resistance is called, the static or DC resistance (Rg) of a diode. The, DC resistance of a diode is the ratio of the, DC voltage across the diode to the DC current, flowing through it at a particular voltage., V, Rg =, I, ii) Dynamic (AC) resistance: The dynamic, (AC) resistance of a diode, rg, at a particular, applied voltage, is defined as, �V, rg �, �I, The dynamic resistance of a diode depends, on the operating voltage. It is the reciprocal of, the slope of the characteristics at that point., Figure 14.28 shows how the DC and the AC, resistance of a diode are found out., , Fig. 14.28: DC and the AC resistance of a, diode., , Solution: We know that for an ideal diode,, the resistance is zero when forward biased and, infinite when reverse biased., i) Figure b shows the circuit when the diode, is forward biased. An ideal diode behaves, as a conductor and the circuit is similar to, two resistances in parallel., RAB = (30 x 30)/(30+30) = 900/60 = 15 Ω, ii) Figure c shows the circuit when the, diode is reverse biased. It does not, conduct and behaves as an open switch,, path ACB. Therefore, RAB= 30 Ω, the, only resistance in the circuit along the path, ADB., 14.8 Semiconductor devices:, Semiconductor devices find applications in, variety of fields. They have many advantages., They also have some disadvantages. Here we, discuses some advantages and disadvantages., 14.8.1 Advantages:, 1. Electronic properties of semiconductors, can be controlled to suit our requirement., 2. They are smaller in size and light weight., 3. They can operate at smaller voltages (of the, order of few mV) and require less current, (of the order of µA or mA), therefore,, consume lesser power., 4. Almost no heating effects occur, therefore, these devices are thermally stable., 5. Faster speed of operation due to smaller, size., 6. Fabrication of ICs is possible., , 254
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14.8.2 Disadvantages:, 1. They are sensitive to electrostatic charges., 2. Not vary useful for controlling high power., 3. They are sensitive to radiation., 4. They are sensitive to fluctuations in, temperature., 5. They need controlled conditions for their, manufacturing., 6. Very few matreials are semiconductors., 14.9 Applications of semiconductors and p-n, junction diode:, A p-n junction diode is the basic block, of a number of semiconductor devices. A, semiconductor device can have more than one, junction. Properties of a device can be controlled, by controlling the concentration of dopants., 1. Solar cell: Converts light energy into electric, energy. Useful to produce electricity, in remote areas and also for providing, electricity for satellites, space probes and, space stations., 2. Photo resistor: Changes its resistance when, light is incident on it., 3. Bi-polar junction transistor: These are, devices with two junctions and three, terminals. A transistor can be a p-n-p or, n-p-n transistor. Conduction takes place, with holes and electrons. Many other types, of transistors are designed and fabricated to, suit specific requirements. They are used in, almost all semiconductor devices., 4. Photodiode: It conducts when illuminated, with light., 5. LED: Light Emitting Diode: Emits light, when current passes through it. House hold, LED lamps use similar technology. They, consume less power, are smaller in size and, have a longer life and are cost effective., 6. Solid State Laser: It is a special type of, LED. It emits light of specific frequency. It, is smaller in size and consumes less power., 7. Integrated Circuits (ICs): A small device, having hundreds of diodes and transistors, performs the work of a large number of, electronic circuits., 14.10 Thermistor:, Thermistor is a temperature sensitive, resistor. Its resistance changes with change in its, temperature. There are two types of thermistors,, , the Negative Temperature Coefficient (NTC), and the Positive Temperature Coefficient (PTC)., Resistance of a NTC thermistor decreases, with increase in its temperature. Its temperature, coefficient is negative. They are commonly used, as temperature sensors and also in temperature, control circuits., Resistance of a PTC thermistor increases, with increase in its temperature. They are, commonly used in series with a circuit. They are, generally used as a reusable fuse to limit current, passing through a circuit to protect against over, current conditions, as resettable fuses., Thermistors are made from thermally, sensitive metal oxide semiconductors., Thermistors are very sensitive to changes in, temperature. A small change in surrounding, temperature causes a large change in their, resistance. They can measure temperature, variations of a small area due to their small, size. Both types of thermistors have many, applications in industry., , 255, , Do you know ?, Electric and electronic devices, Electric devices: These devices convert, electrical energy into some other form., Fan, refrigerator, geyser etc. are some, examples. Fan converts electrical energy, into mechanical energy. A geyser converts it, into heat energy. They use good conductors, (mostly metals) for conduction of electricity., Common working range of currents for, electric circuits is milli ampers (mA) to, amperes. Their energy consumption is also, moderate to high. A typical geyser consumes, about 2.0 to 2.50 kW of power. They are, moderate to large in size and are costly., Electronic devices: Electronic circuits work, with control or sequential changes in current, through a cell. A calculator, a cell phone, a smart watch or the remote control of a, TV set are some of the electronic devices., Semiconductors are used to fabricate such, devices. Common working range of currents, for electronic circuits it is nano-ampere to, µA. They consume very low energy. They, are very compact, and cost effective.
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Internet my friend, 1. https://www.electronics-tutorials.ws>diode 2. https://www.hitachi-hightech.com, 3. https://ntpel.ac.in>courses, 4. https://physics.info>semiconductors, 5. https://www.hyperphysics.phy-astr.gsu.edu>semcn, ises, , erc, , Ex, , Exercises, , 1. Choose the correct option., 2. Answer the following questions., conduction, through, a i) What is the importance of energy gap in a, i) Electric, semiconductor is due to:, semiconductor?, (A) electrons , ii) Which element would you use as an, impurity to make germanium an n-type, (B) holes, semiconductor?, (C) none of these, iii) What causes a larger current through a p-n, (D) both electrons and holes, junction diode when forward biased?, ii) The energy levels of holes are:, iv) On which factors does the electrical, (A) in the valence band, conductivity of a pure semiconductor, (B) in the conduction band, depend at a given temperature?, (C) in the band gap but close to valence, v) Why is the conductivity of a n-type, band, semiconductor greater than that of p-type, semiconductor even when both of these, (D) in the band gap but close to conduction, have same level of doping?, band, iii) Current through a reverse biased p-n 3. Answer in detail., junction, increases abruptly at:, i) Explain how solids are classified on the, basis of band theory of solids., (A) breakdown voltage (B) 0.0 V, intrinsic, ii) Distinguish, between, (C) 0.3V , (D) 0.7V, semiconductors, and, extrinsic, iv) A reverse biased diode, is equivalent to:, semiconductors., (A) an off switch, iii) Explain the importance of the depletion, (B) an on switch, region in a p-n junction diode., (C) a low resistance, iv) Explain the I-V characteristic of a forward, (D) none of the above, biased junction diode., v) The potential barrier in p-n diode is due to: v) Discuss the effect of external voltage on the, (A) depletion of positive charges near the, width of depletion region of a p-n junction, junction, (B) accumulation of positive charges near, ***, the junction, (C) depletion of negative charges near the, junction,, (D) accumulation of positive and negative, charges near the junction, , 256
