chapter 1physics.uwyo.edu/~teyu/class/chapter1.pdfe&m wave (light) and maxwell eqs. light is...

33
Chapter 1 Relativity 1

Upload: others

Post on 13-Aug-2020

3 views

Category:

Documents


0 download

TRANSCRIPT

Page 1: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Chapter 1Relativity 1

Page 2: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Classical Relativity โ€“inertial vs noninertial reference frames

Inertial Reference Frames

๐‘ฅโ€ฒ = ๐‘ฅ โˆ’ ๐‘ฃ๐‘ก; ๐‘ฆโ€ฒ = ๐‘ฆ; ๐‘งโ€ฒ = ๐‘ง; ๐‘กโ€ฒ = ๐‘ก

๐‘ข๐‘ฅโ€ฒ = ๐‘ข๐‘ฅ โˆ’ ๐‘ฃ; ๐‘ข๐‘ฆ

โ€ฒ = ๐‘ข๐‘ฆ; ๐‘ข๐‘งโ€ฒ = ๐‘ข๐‘ง

Any reference frame that moves at constant velocity with respect to an inertial frame is also an inertial frame. Newtonโ€™s laws of mechanics are invariant in all reference systems connected by Galilean transformation.

Galilean transformation:

Page 3: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Classical Relativity โ€“inertial vs noninertial reference frames

๐นโ€ฒ โ‰  ๐น ๐นโ€ฒ โ‰  ๐น

Page 4: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Maxwell Eqs.

๐น = ๐‘ž๐ธ =๐‘ž2๐‘˜๐œ†

๐‘ฆ1๐นโ€ฒ = ๐‘ž๐ธ + ๐‘ž ๐‘ฃ ร— ๐ต =

๐‘ž2๐‘˜๐œ†

๐‘ฆ1โˆ’

๐œ‡0๐œ†๐‘ฃ2๐‘ž

2๐œ‹๐‘ฆ1

๐นโ€ฒ โ‰  ๐นInertial Reference Frames, butโ€ฆ

Maxwell Eqs. Do not follow Galilean transformation

Page 5: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

E&M wave (light) and Maxwell Eqs.

Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘ =1

๐œ‡0๐œ€0= 3 ร— 108๐‘š/๐‘ 

In 19th century, all waves are understood as needing media to propagate: ether (media of E&M wave)

Page 6: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Michelson-Morley Experiment

Page 7: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

How to understand the experiment

Page 8: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Michelson-Morley Experiment - Meaning

โ€ข If ether exist, the relative velocity of the earth and the ether has a upper limit of 5 km/s (Michelson-Morley in 1887); or 1.5 km/s (Georg in 1930); and 15 m/s (recently)

โ€ข The speed of light (E&M wave) is the same in all inertial reference system.

โ€ข This implies, there must be some relativity principle that apply to E&M as well as to mechanics. This principle should be converged back to Galilean transformation in certain conditions.

Page 9: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Einsteinโ€™s Postulates

โ€ข Postulate 1: The laws of physics are the same in all inertial reference frames.

โ€ข Postulate 2: The speed of light in a vacuum is equal to the value c, independent of the motion of the source.

โ€ข Fact: Speed of light (no media) is independent of the inertial reference frames.

Page 10: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Events and Observers

โ€ข Events: Physical Event is something that happens.

โ€ข Observers: Someone or something that see/detect the events in a certain inertial reference frame.

โ€ข Information needs time to propagate. What is โ€œsimultaneityโ€?โ€ข The spatially separated events simultaneous in one reference frame are not,

in general, simultaneous in another inertial frame moving relative to the first.

โ€ข Clocks synchronized in one reference frame are not, in general, synchronized in another inertial frame moving relative to the first.

Page 11: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0
Page 12: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Thought Experiments

Page 13: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Lorentz transformation

๐‘ฅโ€ฒ = ๐‘ฅ โˆ’ ๐‘ฃ๐‘ก; ๐‘ฆโ€ฒ = ๐‘ฆ; ๐‘งโ€ฒ = ๐‘ง; ๐‘กโ€ฒ = ๐‘ก

๐‘ฅ = ๐‘ฅโ€ฒ + ๐‘ฃ๐‘ก; ๐‘ฆ = ๐‘ฆโ€ฒ; ๐‘ง = ๐‘งโ€ฒ; ๐‘ก = ๐‘กโ€ฒ

Galilean transformation:

Lorentz transformation: should satisfy Einsteinโ€™s postulates and converge back to Galilean when v is small.

๐‘ฅโ€ฒ = ๐›พ ๐‘ฅ โˆ’ ๐‘ฃ๐‘ก

๐‘ฅ = ๐›พ ๐‘ฅโ€ฒ + ๐‘ฃ๐‘ก๐›พ โ†’ 1 ๐‘คโ„Ž๐‘’๐‘› ๐‘ฃ/๐‘ โ†’ 0

๐‘กโ€ฒ = ๐›พ ๐‘ก +1 โˆ’ ๐›พ2

๐›พ2

๐‘ฅ

๐‘ฃ

Page 14: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Obtaining g

๐‘ฅ2 + ๐‘ฆ2 + ๐‘ง2 = ๐‘2๐‘ก2

A flash of light in S at t = 0 at origin while defining the same point in Sโ€™ as the origin in Sโ€™ at tโ€™ = 0.

๐‘ฅโ€ฒ2 + ๐‘ฆโ€ฒ2 + ๐‘งโ€ฒ2 = ๐‘2๐‘กโ€ฒ2

๐›พ =1

1 โˆ’๐‘ฃ2

๐‘2

=1

1 โˆ’ ๐›ฝ2

Page 15: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Lorentz transformation

๐‘ฅโ€ฒ = ๐›พ ๐‘ฅ โˆ’ ๐‘ฃ๐‘ก

๐‘กโ€ฒ = ๐›พ ๐‘ก โˆ’๐‘ฃ

๐‘2 ๐‘ฅ

๐›พ =1

1 โˆ’๐‘ฃ2

๐‘2

=1

1 โˆ’ ๐›ฝ2

๐‘ฆโ€ฒ = ๐‘ฆ

๐‘งโ€ฒ = ๐‘ง

๐‘ฅ = ๐›พ ๐‘ฅโ€ฒ + ๐‘ฃ๐‘กโ€ฒ

๐‘ก = ๐›พ ๐‘กโ€ฒ +๐‘ฃ

๐‘2 ๐‘ฅโ€ฒ

๐‘ฆ = ๐‘ฆโ€ฒ

๐‘ง = ๐‘งโ€ฒ

Page 16: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Example

โ€ข The arrivals of two cosmic ray m mesons (muons) are recorded by detectors in the laboratory, one at time ๐‘ก๐‘Ž at location ๐‘ฅ๐‘Ž and the second at time ๐‘ก๐‘ at location ๐‘ฅ๐‘ in the laboratory reference frame, S in Fig. 1-17. What is the time interval between those two events in system Sโ€™, which moves relative to S at speed v?

Fig. 1-17

Page 17: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Relativistic velocity transformations

๐‘ขโ€ฒ๐‘ฅ =๐‘ข๐‘ฅ โˆ’ ๐‘ฃ

1 โˆ’๐‘ฃ๐‘ข๐‘ฅ

๐‘2

๐‘ข๐‘ฅ =๐‘ขโ€ฒ๐‘ฅ + ๐‘ฃ

1 +๐‘ฃ๐‘ขโ€ฒ๐‘ฅ๐‘2

๐‘ขโ€ฒ๐‘ฆ =๐‘ข๐‘ฆ

๐›พ 1 โˆ’๐‘ฃ๐‘ข๐‘ฅ

๐‘2

๐‘ขโ€ฒ๐‘ง =๐‘ข๐‘ง

๐›พ 1 โˆ’๐‘ฃ๐‘ข๐‘ฅ

๐‘2

๐‘ข๐‘ฆ =๐‘ขโ€ฒ๐‘ฆ

๐›พ 1 +๐‘ฃ๐‘ขโ€ฒ๐‘ฅ๐‘2

๐‘ข๐‘ง =๐‘ขโ€ฒ๐‘ง

๐›พ 1 +๐‘ฃ๐‘ขโ€ฒ๐‘ฅ๐‘2

Page 18: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Example

โ€ข Suppose that two cosmic-ray protons approach Earth from opposite directions as shown in Fig. 1-18a. The speeds relative to Earth are measured to be ๐‘ฃ1 = 0.6๐‘ and ๐‘ฃ2 = โˆ’0.8๐‘. What is Earthโ€™s velocity relative to each proton, and what is the velocity of each proton relative to the other?

Fig. 1-18

Page 19: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Spacetime Diagrams

1D in space3D in space

Page 20: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Worldlines in Spacetime Diagrams

โ€ข Find the speed u of particle 3 in the figure to the right.

โ€ข The speed of light is the limit of the moving speed of particle. In spacetime diagram, the dashed line (speed of light) limit the particlesโ€™ trajectory in spacetime diagram at any point.

Page 21: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Two inertial reference systems in spacetime diagram

๐‘ฅโ€ฒ = ๐›พ ๐‘ฅ โˆ’ ๐‘ฃ๐‘ก

๐‘กโ€ฒ = ๐›พ ๐‘ก โˆ’๐‘ฃ

๐‘2 ๐‘ฅ

xโ€™ axis: tโ€™ = 0

๐‘กโ€ฒ = ๐›พ ๐‘ก โˆ’๐‘ฃ

๐‘2 ๐‘ฅ = 0

๐‘๐‘ก = ๐›ฝ๐‘ฅ

tโ€™ axis: xโ€™ = 0

๐‘ฅโ€ฒ = ๐›พ ๐‘ฅ โˆ’ ๐‘ฃ๐‘ก = 0

๐‘๐‘ก =1

๐›ฝ๐‘ฅ

Page 22: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Spacetime Diagram for Train

If v = 0.5 c, the two flashes of light are simultaneous in S. What is the time interval in Sโ€™?

Page 23: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Time Dilation

โˆ†๐‘กโ€ฒ =2๐ท

๐‘

โˆ†๐‘ก =

2 ๐ท2 + ๐‘ฃโˆ†๐‘ก2

2

๐‘

โˆ†๐‘ก =2๐ท

๐‘

1

1 โˆ’๐‘ฃ2

๐‘2

โˆ†๐‘ก = ๐›พโˆ†๐‘กโ€ฒ = ๐›พ๐œ

๐œ is โ€œproper timeโ€, shortest measurable time in all frames, which could be done when the measurements of the two events are at the same location in this frame.

Page 24: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Example

โ€ข Elephants have a gestation peiod of 21 months. Suppose that a freshly impregnated elephant is placed on a spaceship and sent toward a distant space jungle at v = 0.75 c. If we monitor radio transmissions from the spaceship, how long after launch might we expect to hear the first squealing trumpet from the newborn calf?

Page 25: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Example

โ€ข Elephants have a gestation peiod of 21 months. Suppose that a freshly impregnated elephant is placed on a spaceship and sent toward a distant space jungle at v = 0.75 c. If we monitor radio transmissions from the spaceship, how long after launch might we expect to hear the first squealing trumpet from the newborn calf?

Page 26: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Length Contraction

โˆ†๐‘ฅโ€ฒ = ๐ฟ๐‘ƒ = ๐‘ฅโ€ฒ2 โˆ’ ๐‘ฅโ€ฒ1 measured when โˆ†๐‘กโ€ฒ = 0

โˆ†๐‘ฅ = ๐ฟ = ๐‘ฅ2 โˆ’ ๐‘ฅ1 measured when โˆ†๐‘ก = 0

๐‘ฅโ€ฒ2 = ๐›พ ๐‘ฅ2 โˆ’ ๐‘ฃ๐‘ก2

๐‘ฅโ€ฒ1 = ๐›พ ๐‘ฅ1 โˆ’ ๐‘ฃ๐‘ก1

โˆ†๐‘ฅ =1

๐›พโˆ†๐‘ฅโ€ฒ ๐ฟ =

1

๐›พ๐ฟ๐‘ƒ

๐ฟ๐‘ƒ is โ€œproper lengthโ€, longest measurable length in all frames, which could be done when the measurements of the two ends are at rest in this frame.

Page 27: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Example

โ€ข A stick that has a proper length of 1 m moves in a direction parallel to its length with speed v relative to you. The length of the stick as measured by you is 0.914 m. What is the speed v?

Page 28: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Muon decay

๐‘ ๐‘ก = ๐‘0๐‘’โˆ’๐‘ก/๐œ

๐œ = 2๐œ‡๐‘ 

๐‘ฃ = 0.998๐‘

Proper time:

๐ป = 9000๐‘šProper length (height):

โ„Ž = 600๐‘š

๐œโ€ฒ = 30๐œ‡๐‘ 

Non-relativistic Relativistic

N=30.6 N= 3.68ร— 107

๐‘0 = 108

Page 29: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Spacetime Interval

โˆ†๐‘  2 = ๐‘โˆ†๐‘ก 2 โˆ’ โˆ†๐‘ฅ2 + โˆ†๐‘ฆ2 + โˆ†๐‘ง2

Timelike interval

Spacelike interval

Lightlike interval

๐‘โˆ†๐‘ก 2 > โˆ†๐‘ฅ2 + โˆ†๐‘ฆ2 + โˆ†๐‘ง2

๐‘โˆ†๐‘ก 2 < โˆ†๐‘ฅ2 + โˆ†๐‘ฆ2 + โˆ†๐‘ง2

๐‘โˆ†๐‘ก 2 = โˆ†๐‘ฅ2 + โˆ†๐‘ฆ2 + โˆ†๐‘ง2

Page 30: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Doppler Effect

๐‘“ =1 + ๐›ฝ

1 โˆ’ ๐›ฝ๐‘“0

๐‘“ =1 โˆ’ ๐›ฝ

1 + ๐›ฝ๐‘“0

approaching

receding

Useful approximations

๐‘“ โ‰ˆ 1 + ๐›ฝ ๐‘“0

๐‘“ โ‰ˆ 1 โˆ’ ๐›ฝ ๐‘“0

approaching

receding

โˆ†๐‘“ = ๐‘“0 โˆ’ ๐‘“ โ‰ˆ โˆ’๐›ฝ๐‘“0

โˆ†๐‘“ = ๐‘“0 โˆ’ ๐‘“ โ‰ˆ ๐›ฝ๐‘“0

Page 31: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Example

โ€ข The longest wavelength of light emitted by hydrogen in the Balmerseries (see Chapter 4) has a wavelength of ๐œ†0 = 656๐‘›๐‘š. In light from a distant galaxy, this wavelength is measured as๐œ† = 1458๐‘›๐‘š. Find the speed at which the galaxy is receding from Earth, assuming the shift to be due to Doppler effect.

Page 32: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Twin Paradox

โ€ข Twin: Homer and Ulysses. Ulysses traveled from Earth in a ship with 0.8 c away from Earth and then come back to Earth with -0.8 c. Homer see Ulysses 10 years after the launch.

Pole and Barn Paradox

โ€ข Runner with 10 m pole in his hand, moving toward a 5 m barn with front door opened and rear door closed. Farmer (same frame with barn) sees the pole is entirely enclosed in the barn at certain moment.

Page 33: Chapter 1physics.uwyo.edu/~teyu/class/Chapter1.pdfE&M wave (light) and Maxwell Eqs. Light is E&M wave, well understood by Maxwell Eqs., has a velocity of light: ๐‘= 1 ๐œ‡0๐œ€0

Headlight Effect

๐‘๐‘œ๐‘ ๐œƒ =๐‘๐‘œ๐‘ ๐œƒโ€ฒ + ๐›ฝ

1 + ๐›ฝ๐‘๐‘œ๐‘ ๐œƒโ€ฒ

๐‘๐‘œ๐‘ ๐œƒ =โˆ†๐‘ฅ

โˆ† ๐‘๐‘ก

๐‘๐‘œ๐‘ ๐œƒโ€ฒ =โˆ†๐‘ฅโ€ฒ

โˆ† ๐‘๐‘กโ€ฒ