relativity - michigan state university · relativity in 1905 albert einstein published five...
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Relativity
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Relativity
In 1905 Albert Einstein published fivearticles in “Annalen Der Physik” that had amajor effect upon our understanding ofphysics.They included:-
•An explanation of Brownian motion in termsof atoms
•An explanation of the photoelectric effect==> Quantum Theory
•“On the Electrodynamics of Moving Bodies”==> The Special Theory of Relativity
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The Luminiferous Ether
In 1873 Maxwell formulated hisequations that led to thediscovery of electromagneticwaves that propagated throughspace at the speed of light.
All waves were believed to betransmitted by a medium. Themedium that transmitted lightwaves was called the Ether(sometimes called, or spelled theÆther).
It had to permeate everything, beincredibly resilient (stiff), and yetnot impede motion!!
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Light was believed to travel at 3 x 108
meters per second with respect to thefixed ether.
The Earth moved through space (andtherefore through the ether) at aspeed of about 3 x 104 meters persecond, and so the speed of light wouldbe slightly different if measuredparallel or perpendicular to the velocityof the Earth.
Can the motion of the Earth throughthe ether be detected?
It was searched for in an ingeniousexperiment performed byA.A. Michelson and E.W. Morley.
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First an illustrative example:-
Alma
wind 50 miles
50 miles
Lansing Brighton
Alma lies 50 miles due north of Lansing.
Brighton lies 50 miles due east of Lansing.
Ms. A drives to Alma and back at a constantspeed of 50 mph.
There is a 5 mph wind blowing from West toEast. So Mr. B drives to Brighton at a constantspeed of 55 mph, and drives back fromBrighton at a constant speed of 45 mph.
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Who arrives back first?
(a) Ms. A
(b) Mr. B
(c) They arrive at the same time
Quickuiz
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Who arrives back first?
(a) Ms. A
(b) Mr. B
(c) They arrive at the same time
Ms. A takes 50/50 + 50/50 = 2 hrs
Mr. B takes 50/55 + 50/45 = 0.909 + 1.111 = 2.02 hrs
so Ms. A wins by .02 hours (or 1 minute and 13 seconds).
Quickuiz
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The Michelson-MorleyExperiment
An interferometer
*LightSource
Mirror A
Mirror B
Telescope
Beam A
Beam B
1/2 Silvered Mirror
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The interferometer was set up withone path parallel to the motion of theearth in orbit. They then rotated theapparatus to put the other pathparallel to the motion of the earth.The apparatus was sensitive to thesize of the effect expected fromadding or subtracting the earth'svelocity to the velocity of light.But NO effect was observed!Many repetitions and variations of theM&M experiment by many otherinvestigators showed the same nullresult.It was the most famous null result inhistory.What was wrong?
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The Fitzgerald-LorentzContraction
One strange interpretation of thebewildering result of the M&M experimentwas suggested by the Irish physicist,George F. Fitzgerald (and, simultaneously,by the Dutch physicist, H.A. Lorentz).It was that, as a consequence of movingthrough the ether, the length of anyobject is shortened by just the rightamount to counteract the change in thelight speed.When you do the math, it turns out thatthe required contraction is that thechanged length of any object is
L' = √1 – v2/c2 x L
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You could never measure thiscontraction because a ruler placedalongside would also be shrunk by thesame amount!Obviously the F-L contraction wouldexplain the M&M result. But why?They had no idea! It was a totally ad-hoc hypothesis and, because of that,the theory wasn't taken seriously.The F-L contraction turns out to be aconsequence of Einstein's theory ofrelativity. . . . .
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. . . . Meanwhile, what was Einstein worryingabout?
He noticed that Maxwell’s equations appearednot to be invariant under a Galileantransformation.
(This is just the addition (or subtraction) ofvelocity that we used in adding the effect ofthe wind in my example.)
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In frame K, two charges at rest. Force isgiven by Coulomb’s law.
Ky
x
z
Q1
Q2
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K’y’
x’
z’
In moving frame K’, two charges are moving.Since moving charges are currents,Force is Coulomb + Magnetism.
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Principle of relativity:
“The laws of nature are the same in allinertial reference frames”
Something is wrong!
• Maxwell’s Equations?
• The Principle of Relativity?
• Gallilean Transformations?
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Einstein decidedfi Galilean Transformations are the
problem.
Einstein’s two postulates:
1. The principle of relativity is correct.The laws of physics are the same in allinertial reference frames.
2. The speed of light in vacuum is thesame in all inertial reference frames(c = 3 x 108 m/s regardless of motion ofthe source or observer).
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The second postulate seems to violateeveryday common sense!
Rocket Light pulse Observerv=0.5 c v=c
Einstein says: observer measures the lightas traveling at speed c, not 1.5c.
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Gedanken ExperimentsA light clock:
It ticks every Dt = 2 w/c seconds.One can synchronize ordinary clocks withit.
w
mirror
mirror photocell
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Time Dilation
OG: Observer on Ground
w
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OT: Observer on Truck
OT’s clock as seen from the ground:
c = 3 x 108 m/s
(ct/2)2 - (vt/2)2 = w2
w
v
w
vt/2
ct/2
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Time for one round trip of light, as seenfrom the ground:
t = (2 w/c) √1 - v2/c2
For v = 0.6c, t = (2 w/c) x 1.25
All of OT’s processes slow down comparedto OG as seen by OG.
Similarly,
All of OG’s processes slow down comparedto OT as seen by OT.
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Length Contraction
OG: Observer on Ground
w
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OT: Observer on Truck
Device on truck makes mark on trackeach time clock ticks.
As seen from ground:
Distance between marks= (time between ticks) x v
= [(2 w/c) √1 - v2/c2 ] v
w
v
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As seen from truck:
Distance between marks= (time between ticks) x v
= (2 w/c) v
(To the person on the truck the timebetween ticks is (2 w/c).)
(Distance measured on truck)
= √ 1 - v2/c2
x (distance measured on ground)
As seen from a moving frame, restdistances contract.
(L-F contraction)
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SimultaneityEvents occur at a well defined position anda time (x,y,z,t).
But events that are simultaneous (same t)in one inertial frame are not necessarilysimultaneous in another frame.
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The light from the two flashes reach OGat the same time. He sees them assimultaneous.
d d
A B
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OT passes OG just as the lights flash.
v
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But light from B reaches OT first. Sinceboth light beams started the samedistance from her, and both travel atspeed c, she concludes that B must haveflashed before A.
v
cc
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Lorentz Transformations
• Flashbulb at origin just as both axes are coincident.• Wavefronts in both systems must be spherical:
x2 + y2 + z2 = c2t2 and
x’2 + y’2 + z’2 = c2t’2
• Inconsistent with a Galilean transformation• Also cannot assume t=t’.
y
x
z
y’
x’
z’
v
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Assuming:
• Principle of relativity
• linear transformation (x,y,z,t) -> (x’,y’,z’,t’)
Lorentz Transformations (section 2.4)
x’ = g ( x - v t )
y’ = y
z’ = z
t’ = g ( t - v x / c2 )
With g = 1 / √1 - v2/c2 .
(Often also define b = v / c . )
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Time Dilation (again)Proper time: time T0 measured betweentwo events at the same position in aninertial frame.
OG’s clock: T0 = t2 - t1, (x2-x1=0)
OT’s clock: T’ = t’2 - t’1
t’2 - t’1 = g (t2 - t1 - v/c2 (x2-x1) )
T’ = g T0 > T0
Clocks, as seen by observers moving at arelative velocity, run slow.
v
OG
OTOT’s friend
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Length Contraction (again)Proper length: distance L0 between pointsthat are at rest in an inertial frame.
OT on truck measures its length to be L0 = x’2 - x’1. This is its proper length.OG on ground measures its length to beL = x2 - x1, using a meter stick at rest(t2 = t1).
ThenL0 = x’2 - x’1 = g (x2 - x1 - v (t2 - t1))
= g L
OG measures L = L0/ g < L0.
Truck appears contracted to OG.
vx’1 x’2
x1 x2
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An applicationMuon decays with the formula:
N = N0 e-t/t
N0 = number of muons at time t=0.N = number of muons at time t secondslater.t = 2.19 x 10-6 seconds is mean lifetime ofmuon.
Suppose 1000 muons start at top ofmountain d=2000 m high and travel atspeed v=0.98c towards the ground. Whatis the expected number that reach earth?
Time to reach earth:t = d/v = 2000m/(0.98 x 3 x 108 m/s) = 6.8 x 10-6 s
Expect N = 1000 e-6.8/2.19 = 45 muons.
But experimentally we see 540 muons!What did we do wrong?
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Time dilation: The moving muon’s internalclock runs slow. It has only gone through
t’ = 6.8 x 10-6 √1 - 0.982 s = 1.35 x 10-6 s
So N = 1000 e-1.35/2.19 = 540 muons survive.
Alternate explanation: From muon’sviewpoint, the mountain is contracted.Get same result.
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Addition of velocitiesGalilean formula (u=u’+v) is wrong.
Consider object, velocity u’ as seen inframe of OT who is on a truck moving withvelocity v w.r.t the ground.
What is velocity u of the object asmeasured by OG on the ground?
Recall u = Dx/Dt, u’ = Dx’/Dt’.Inverse Lorentz transformation formulae:
Dx = g ( Dx’ + v Dt’ )
Dt = g (Dt’ + v Dx’ / c2 )
v
u’u?
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Dx g ( Dx’ + v Dt’ ) u = =
Dt g (Dt’ + v Dx’ / c2 )
u’ + v u = 1 + v u’/c2
For u’ and v much less than c:
u ≈ u’ + v
Velocities in y and z directions are alsomodified (due to t’≠t, see section 2.6)
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Examples:
Rocket Light pulse Observerv=0.5 c u’=c
Observer sees light move at
0.5c + c u = = c 1+(0.5c)(c)/c2
Light moves at c=3x108 m/s in all frames.
Rocket Projectilev=0.8 c u’=0.5c Observer
Observer sees projectile move at
0.5c + 0.8c u = = 0.93c 1+(0.5)(0.8)
Massive objects always move at speeds < c.
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The Twin ParadoxSuppose there are two twins, Henry andAlbert. Henry takes a rocket ship, goingnear the speed of light, to a nearby star,and then returns. Albert stays at home onearth.
Albert says that Henry’s clocks arerunning slow, so that when Henry returnshe will still be young, whereas Albert is anold man.
But Henry could just as well say thatAlbert is the one moving rapidly, so Albertshould be younger after Henry returns!
Who is right?
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The first scenario is the correct one.
The situation is not symmetric, becausethe rocket has to decelerate, turn aroundand accelerate again to return to earth.Thus, Henry is not in an inertial framethroughout the trip. He does returnyounger than Albert.
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Relativistic Doppler EffectLight source and observer approach eachother with relative velocity, v.Light is emitted at frequency n0.
Observer sees light at a higher frequency:
√1 + b n = n0 with b = v/c √1 - b
• If source is receding, the formula still holds but now b is negative.
We know that the universe is expanding,because light from distance galaxies isred-shifted, indicating motion away fromus.
v
n0
n
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Relativistic MomentumRequirement: momentum is conserved in allinertial frames.Assume: p = m v.
Elastic scattering in c-o-m frame:
px: mu + m(-u) = 0
Transform to frame of A:
-2upx: 0 + m( ) ≠ m(-2u) 1+u2/c2
It doesn’t work!
AB
before afterA
B
AB
A
B
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Relativistic momentum:
mv p = g m v = √1-v2/c2
Relativistic Kinetic Energy:
K = (g - 1) mc2
1 = ( - 1) mc2
√ 1-v2/c2
For small velocities, v/c << 1:
K = ( 1 + 1/2 (v/c)2 + ... - 1) mc2
≈ 1/2 m v2
For large velocities v c:
K •
Massive objects always travel at speedsless than c.
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KE and velocity: Relativistic vs. Classical
Noticeable departures for v/c > .4 or so
Starting from v=0, takes infinite KE to get to v=c
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Velocity nearly stops changing after KE ~ 4 mc2
KE = (γ – 1) mc2
γ = 2 (KE = rest) happens for β = √(1 – 1/γ2) = .87 electron has mc2 = .511 MeV
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Relativistic EnergyAccording to Einstein, even a mass at resthas energy:
E0 = m c2 (rest energy)
Thus, the total energy of a moving objectis E = K + E0
= (g-1) mc2 + mc2
= g mc2
It is straightforward to show:
E2 - p2c2 = m2c4
For a massless particle (e.g. a photon):
E = |p| c
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In general
|p| c2 g mv c2 v = = E g mc2
For a massless particle this gives
v = c
Massless particles travel at the speed oflight c.
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