Exam. Topics covered in Exam 2. Wave properties. Types of wave motion. Waves Questions. Interference of sound waves

Similar documents
) 2 = Square of rest energy. E = "m o. c 2, or E = mc 2. Homework & Exam

Your student ID 1 page notes, written double sided Calculator Pencil for marking answer sheet

Physics 107: Ideas of Modern Physics

Physics 107: Ideas of Modern Physics

Physics 107: Ideas of Modern Physics

Physics 107: Ideas of Modern Physics

E = mc 2. Inertial Reference Frames. Inertial Reference Frames. The Special Theory of Relativity. Slide 1 / 63. Slide 2 / 63.

Chapter 26. Relativity

G r a d e 1 1 P h y s i c s ( 3 0 s ) Final Practice exam

Study Guide for Physics 1100 Final Exam

ENTER RELATIVITY THE HELIOCENTRISM VS GEOCENTRISM DEBATE ARISES FROM MATTER OF CHOOSING THE BEST REFERENCE POINT. GALILEAN TRANSFORMATION 8/19/2016

Lecture Outline Chapter 29. Physics, 4 th Edition James S. Walker. Copyright 2010 Pearson Education, Inc.

Chapter 37. Relativity. PowerPoint Lectures for University Physics, 14th Edition Hugh D. Young and Roger A. Freedman Lectures by Jason Harlow

Chapter 37. PowerPoint Lectures for University Physics, Twelfth Edition Hugh D. Young and Roger A. Freedman. Lectures by James Pazun

Modern Physics Part 2: Special Relativity

qq k d Chapter 16 Electric and Magnetic Forces Electric charge Electric charges Negative (electron) Positive (proton)

Chapter 26 Special Theory of Relativity

MR. HOLL S PHYSICS FACTS MECHANICS. 1) Velocity is a vector quantity that has both magnitude and direction.

Wave Motion and Sound

Experimental Values of Lorentz Transformations of Mass and Time

NYS STANDARD/KEY IDEA/PERFORMANCE INDICATOR 5.1 a-e. 5.1a Measured quantities can be classified as either vector or scalar.

GLOSSARY OF PHYSICS TERMS. v-u t. a =

General Physics (PHY 2140) Lecture 14

Physics. Special Relativity

2. What are the 4 steps of the Scientific Method as described by Mr. Martin?

Rotational Mechanics and Relativity --- Summary sheet 1

Physics I Spring Final Review

CAMI - Science. CAPS - Physics Links Grade 10

Selected "Phacts" for the Physics Regents Exam You Should Know

Energy - the ability to do work or cause change. 1 point

Physics 116. Oct 18, Lecture 12 Electromagnetic waves. R. J. Wilkes

Michael Fowler, UVa Physics, 12/1/07. Momentum has Direction

Maxwell s equations and EM waves. From previous Lecture Time dependent fields and Faraday s Law

to calculate gravitational force. d - Know how changes in mass or distance affect the gravitational force between two objects.

College Physics B - PHY2054C. Special & General Relativity 11/12/2014. My Office Hours: Tuesday 10:00 AM - Noon 206 Keen Building.

Work. Work and Energy Examples. Energy. To move an object we must do work Work is calculated as the force applied to the object through a distance or:

Optics Definitions. The apparent movement of one object relative to another due to the motion of the observer is called parallax.

PHYSICS CURRICULUM. Unit 1: Measurement and Mathematics

Elements of Physics II

Fineman Honors Physics Final Study Guide

Section 1 Simple Harmonic Motion. The student is expected to:

4/13/2015. Outlines CHAPTER 12 ELECTRODYNAMICS & RELATIVITY. 1. The special theory of relativity. 2. Relativistic Mechanics

Physics 6b Winter 2015 Final Campagnari Section Test Form D

Physics 6b Winter 2015 Final Campagnari Section Test Form A

8.20 MIT Introduction to Special Relativity IAP 2005 Tentative Outline

Class Average = 71. Counts Scores

We search for the ether. Next time: The ether is missing Conspiracy? I think not!

Relativity. Physics April 2002 Lecture 8. Einstein at 112 Mercer St. 11 Apr 02 Physics 102 Lecture 8 1

Lorentz Transformations and the Twin Paradox By James Carter

Extra notes on rela,vity. Wade Naylor

The Search for a Fundamental Theory of the Universe

PHYSICS. Curriculum Standard One: The student will understand that Newton s laws predict the motion of most objects.

The interpretation is that gravity bends spacetime and that light follows the curvature of space.

From Last Time. Electron diffraction. Making a particle out of waves. Planetary model of atom. Using quantum mechanics ev 1/ 2 nm E kinetic

Section 1 Simple Harmonic Motion. Chapter 11. Preview. Objectives Hooke s Law Sample Problem Simple Harmonic Motion The Simple Pendulum

Personalised Learning Checklists AQA Physics Paper 2

Announcement. Einstein s Postulates of Relativity: PHYS-3301 Lecture 3. Chapter 2. Sep. 5, Special Relativity

Gravity caused by TEM waves operating on dipoles in atoms

Practice Final C. 1. The diagram below shows a worker using a rope to pull a cart.

College Physics 10th edition

DEFINITIONS. Linear Motion. Conservation of Momentum. Vectors and Scalars. Circular Motion. Newton s Laws of Motion

Physics for Poets. Gaurang Yodh, UC. (a) What does Physics study? Behavior of Matter, Radiation and their interaction.

Introduction. Classical vs Modern Physics. Classical Physics: High speeds Small (or very large) distances

-Electromagnetic. Waves - disturbance that propagates through space & time - usually with transfer of energy -Mechanical.

Lecture 16.1 :! Final Exam Review, Part 2

Test 3 results B A. Grades posted in Learn

Chapter 34. Electromagnetic Waves

Postulates of Special Relativity

Physics Week 5(Sem. 2) Name. Magnetism. Chapter Summary. Magnetic Fields

Two postulates Relativity of simultaneity Time dilation; length contraction Lorentz transformations Doppler effect Relativistic kinematics

Lecture Sound Waves EM Waves. Physics Help Q&A: tutor.leiacademy.org. The Doppler Effect 11/11/2014

REVIEW SESSION. Midterm 2

Identify the choice that best completes the statement or answers the question.

Transformation of velocities

Seat Number. Print and sign your name, and write your Student ID Number and seat number legibly in the spaces above.

Electric Force and Charge. Electric Force and Charge. Electric Force and Charge. Electric Force and Charge. Electric Force and Charge

Cp physics - Spring Final Review (second semester topics)

Consequences of special relativity.

High School. Prentice Hall. Conceptual Physics South Carolina Science Academic Standards - Physics High School

Physics 2D Lecture Slides Oct 1. Vivek Sharma UCSD Physics

Physics 2D Lecture Slides Lecture 2. Jan. 5, 2010

Corrections to Maxwell s equations for free space Invalidating the theory of relativity?!

Unit- 1 Theory of Relativity

Chapter 27, 28 & 29: Magnetism & Electromagnetic Induction

Astronomy 1143 Quiz 2 Review

-Electromagnetic. Waves - disturbance that propagates through space & time - usually with transfer of energy -Mechanical.

A100 Exploring the Universe: Black holes. Martin D. Weinberg UMass Astronomy

Physics 1C. Lecture 12C

Photons: Explained and Derived by Energy Wave Equations

Chapter 36 The Special Theory of Relativity. Copyright 2009 Pearson Education, Inc.

Consequences of special relativity.

Outline of College Physics OpenStax Book

Basic Physics Content

General Physics (PHY 2140)

Solution The light plates are at the same heights. In balance, the pressure at both plates has to be the same. m g A A A F A = F B.

Subject Area Competencies and Skills (22nd Edition)

21 MAGNETIC FORCES AND MAGNETIC FIELDS

New theory of light and ether

AQA Physics Checklist

Modern Physics. Third Edition RAYMOND A. SERWAY CLEMENT J. MOSES CURT A. MOYER

Transcription:

Exam Hour Exam 2: Wednesday, October 25th In-class, covering waves, electromagnetism, and relativity Twenty multiple-choice questions Will cover: Chapters 8, 9 10 and 11 Lecture material You should bring 1 page notes, written single sided #2 Pencil and a Calculator Review Monday October 23rd Review test will be available online on Monday (see exams page) Phy107 Fall 2006 1 Topics covered in Exam 2 Waves, interference, resonance, and electromagnetism EM radiation, light, color pecial Relativity time &space pecial Rel. mass & energy General Relativity Phy107 Fall 2006 2 Wave properties Amplitude is the maximum displacement of string above the equilibrium position Wavelength,, is the distance between two successive points that behave identically Period: time required to complete one cycle Frequency = 1/Period = rate at which cycles are completed Velocity = Wavelength/Period, v = / T, or v = f Types of wave motion Longitudinal wave Vibrations are in the direction of motion Transverse wave Vibrations are perpendicular to the direction of motion. Phy107 Fall 2006 3 Phy107 Fall 2006 4 Waves Questions When both transverse and longitudinal waves are present (such as s and p seismic waves in the Earth), the longitudinal wave usually travels faster. If the longitudinal wave travels about twice as fast as the transverse wave of the same frequency, how are their wavelengths related? Interference of sound waves Interference arises when waves change their phase relationship. Can vary phase relationship of two waves by changing physical location of speaker. in-phase 1/2 phase diff A. Longitudinal wavelength twice as long B. Longitudinal wavelength half as long C. Both same. Phy107 Fall 2006 5 Constructive Destructive Phy107 Fall 2006 6 1

crest trough Interference of 2 speakers destructive interference quit tone constructive interference,loud tone Interference question You are standing at a point where the signals from two radio antennas cancel exactly. The towers broadcast at 1000 khz. You walk around with a constant distance from tower 1. How much closer to tower 2 do you need to go to get full constructive interference (strong radio signal)? peed of sound: 340m/s A. 300 meters B. 150 meters C. 75 meters Phy107 Fall 2006 7 Phy107 Fall 2006 8 Interference summary Important quantity is distance difference in number of wavelengths. A distance difference of a half wavelength leads to destructive interference. Whole wavelength differences lead to constructive interference. But destructive interference also for 3 half wavelengths, 5 half-wavelengths, etc. Constructive interference also occurs at differences of 2 whole wavelengths, 3 whole wavelengths Doppler Effect As the source moves toward the observer (A), the wavelength appears shorter and the frequency increases As the source moves away from the observer (B), the wavelength appears longer and the frequency appears to be lower Phy107 Fall 2006 9 Phy107 Fall 2006 10 Most objects resonate, Closed tube Resonance on string First three natural vibrational modes of a string fixed at both ends (e.g. a guitar string). A normal pluck excites primarily the first vibrational mode. Phy107 Fall 2006 11 Phy107 Fall 2006 12 2

Opposite charges attract Like charges repel. Force between charges Other than the polarity, they interact much like masses interact gravitationally. Force is along the line joining the particles. Charge on 1 electron or proton = 1.6 x 10-19 Coulomb Force on positive particle due to negative particle Electrostatic force: F E = k Q 1 Q 2 /r 2 Gravitational force: F G =GM 1 M 2 / r 2 k = 9x10 9 m 2 /C 2 G=6.7x10-11 m 2 /kg 2 Coulomb force question If the distance between two positive charges is increased by a factor of two, the force between them A. Increases by a factor of 2 B. Decreases by factor of 2 C. Decreases by a factor of 4 Phy107 Fall 2006 13 Phy107 Fall 2006 14 orth Pole and outh Pole This is the elementary magnetic particle Magnetic forces Likes repel ource of magnetic field Current in wire produces magnetic field. That magnetic field aligns compass needle Called magnetic dipole (orth pole and south pole) Current There are no magnetic monoples (magnetic charges) Unlikes attract Magnetic field Phy107 Fall 2006 15 Phy107 Fall 2006 16 The electric force and field Force on this charge Q 1 due to this charge Q 2 F = kq 1 q 2 r 2 E = kq r 2 F = Eq Charge q 1 can exert a force on any number of charges. Would like to understand just the part from q 1. imilar relationship between work and Voltage Phy107 Fall 2006 17 Magnetic Force What does the magnetic force act on? Electric field is from a charge and exerts a force on other charges Magnetic field is from a moving charge and exerts a force on other moving charges! Magnetic field B Magnetic force F = qvb F perpendicular to both v and B Phy107 Fall 2006 18 3

Faraday s law of induction and Lenz s Law A changing(moving) magnetic field causes a current in a metal. However, electric fields are what causes electrons to move in a metal Changing magnetic fields produce electric fields The current produces a magnetic field, which repels the bar magnet Amperes Law and Light Finally: Changing electric fields cause magnetic fields! Electric fields are from charges Magnetic fields are from moving charges Changing Magnetic fields cause Electric fields Changing Electric fields cause Magnetic fields All this was expressed in Maxwell s equations Maxwell and others realized that a changing magnetic/electric field could cause a changing magnetic/ electric field. The condition for one to cause the other and vice-versa was for the two to change in a sin wave pattern and move at the velocity of light! Phy107 Fall 2006 19 Phy107 Fall 2006 20 Properties of EM Waves Light is a set of electric and magnetic fields where the changing electric field creates the magnetic field and the changing magnetic field creates the electric field Only works when the fields change from up to down and back again at the speed of light The speed of light is a special value - we ll see this again in Einstein's relativity. Has all properties of a wave: c =v = f wavelength, frequency, interference Can be generated by spark jumping a gap. Phy107 Fall 2006 21 We are familiar with many different wavelengths of EM waves All are the same phenomena Types of EM waves Phy107 Fall 2006 22 EM wave question As an EM wave travels through empty space, its speed can be increased by A. Increasing its frequency B. Increasing its energy C. either Eye spectral sensitivity Eye s sensitivity to EM radiation is through three cones sensitive to different spectral ranges. Overlapping ranges means that different light sources can be seen as the same color Three cones suggests we can synthesize colors from three primary sources. Phy107 Fall 2006 23 Phy107 Fall 2006 24 4

Einstein s principle of relativity Galilean Relativity Laws of mechanics identical in all inertial ref. frames Einstein s Relativity Principle of relativity: All the laws of physics are identical in all inertial reference frames. Constancy of speed of light: peed of light is same in all inertial frames (e.g. independent of velocity of observer, velocity of source emitting light) (These two postulates are the basis of the special theory of relativity) Phy107 Fall 2006 25 pace & time relativistic effects Einstein s Relativity All laws of physics identical in inertial reference frames peed of light=c in all inertial reference frames Consequences imultaneity: events simultaneous in one frame will not be simultaneous in another. Time dilation Length contraction Relativistic invariant: x 2 - t 2 is universal in that it is measured to be the same for all observers Phy107 Fall 2006 26 Review: Time Dilation and Length Contraction Time in other frame Time in object s rest frame Length in other frame Length in object s rest frame T = T p = T p 1 v 2 L = L p = L p 1 v 2 Times measured in other frames are longer (time dilation) Distances measured in other frames are shorter (length contraction) eed to define the rest frame and the other frame which is moving with respect to the rest frame Phy107 Fall 2006 27 Relativistic Addition of Velocities As motorcycle velocity approaches c, v ab also gets closer and closer to c End result: nothing exceeds the speed of light v ab = v ad v db 1 v ad v db Frame b v db Frame d v ad Object a Phy107 Fall 2006 28 Time dilation I am on jet traveling at 500 mph and throw a ball up and catch it in my hand. I time it. You are on the ground and watch me. You time it. How do the measurements compare for you and I? A. t jet =t Earth B. t jet >t Earth C. t jet <t Earth Proper time is measured in the jet frame (rest frame of object where events occur at same spatial location). Times measured in other frames are longer (time dilation). ince my time measurement of interval between same two events is less, you could say that my clock runs slow. If you look at my clock through a telescope, it appears to run slow. My heartbeat is a kind of clock, so you observe it to be beating more slowly. All my biological processes have slowed down. Relativistic Momentum Momentum can be increased arbitrarily, but velocity never exceeds c We still use change in momentum = Force change in time so for constant force we still have momentum = Force x time, but the velocity never exceeds c Momentum has been redefined. mv p relativistic = mv = 1 (v /c) 2 0.2 v c = p/ p o, p ( p/ p o ) 2 o = m oc 1 0 0 1 2 3 4 5 RELATIVITIC MOMETUM Relativistic momentum for different speeds. Hence you Phy107 will Fall measure 2006 that I age more slowly. 29 Phy107 Fall 2006 30 PEED / PEED OF LIGHT 1 0.8 0.6 0.4 ewton s momentum Relativistic momentum 5

Momentum gets large, but speed does not? RELATIVITIC MA / RET MA Can undestand this by saying particle becomes extremely massive as speed increases ( m= m o ) Constant force has less and less affect as speed approaches speed of light. ame as saying that relativistic momentum has new form ( p= m o v ) 5 4 3 2 1 0 0 0.2 0.4 0.6 0.8 1 PEED / PEED OF LIGHT Phy107 Fall 2006 31 Relativistic Mass and Energy E = m o = KE rel m o E = m o, or E = m The total energy of a particle is dependent on it s kinetic energy and its mass. Even when the particle is not moving it has energy. Mass is another form of energy Moreover, energy can show up as mass. The energy to put all the protons together in a nucleus gives the nucleus more mass! Phy107 Fall 2006 32 pace/time - Energy/Momentum Relativity mixes up space and time - also energy and momentum When converting from one inertial frame to another In the time dilation and length contraction formulas - time is in the length formula and length is in the time formula - through the velocity (length/time) In the total energy formula momentum(or kinetic energy) and mass energy are related There are combinations of space/time and energy/momentum that observers in any inertial frame will measure the as the same For energy and momentum this invariant says that all observers can agree on mass an object has when it s at rest! ( ) 2 General Relativity and Gravity General relativity motivated by Equivalence Principle o experiment can distinguish between force of gravity and an accelerated reference frame. General relativity does not consider gravity to be a force between massive objects Mass tells space-time how to curve Curvature of space-time dictates how objects move. Objects move along straight line in space-time Motion independent of mass of object (even light bends) Leads to effects such as Light bending in gravitational fields Black holes x 2 t 2 E 2 p 2 = m Phy107 Fall 2006 o 33 Phy107 Fall 2006 34 Paradox? ow we each throw our own balls to the same height, and we each measure the time interval of our own ball with our own wristwatch. A. We agree that wristwatch on the jet runs slow. B. We agree that the wristwatch on the earth runs slow. C. We both say that the other person s wristwatch is slow. Problem is exactly symmetric: Earth perspective - jet flies forward at 500 mph Jet perspective - earth moves backwards at -500 mph o must each come to the same conclusion - that the other wristwatch runs slow. But this also means we say that biological processes of the other person run slow, hence they age less! Who is correct? Phy107 Fall 2006 35 paceship twins A 30 yr old astronaut leaves Earth, travels at speeds close to that of light, and then returns to Earth after 20 yrs as measured on Earth. What is the astronaut s biological age upon returning? A. Less than 50 years. B. More than 50 years. C. Exactly 50 years. The observer on the earth is in an inertial frame. The astronaut is not, since she must turn around and come back (acceleration). o special relativity applies to the earth observe, who sees the astronaut s clock running slow. Hence the astronaut ages less than the earth observer. Phy107 Fall 2006 36 6