relativity Flashcards

1
Q

proper time/distance

A

time/distance in reference frame of moving object

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2
Q

time measured by observer with relativity

A

Δt = Δtp/ √(1 - v2/c2) = γΔtp

γ = 1/√(1 - v2/c2)

observer time is always longer than proper time

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3
Q

Length measured by observer with relativity

A

L = vΔtp = vΔt/γ

L = Lp/γ = Lp√(1-v2/c2)

Length observed is always longer than length at rest

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4
Q

relativistic doppler effect

A

fobs = fsource√(1+v/c)/√(1-v/c)

frequency increases as object approaches, decrases as it moves away

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5
Q

lorentz transormation S -> S’ for time (moving observer)

A

t’ = γ(t - [v/c2]x)

t’ -> moving frame
t -> rest frame

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6
Q

lorentz transformation S -> S’ for distance

A

x’ = γ(x - vt)

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7
Q

lorentz transformation for time S’ -> S

A

t = γ(t’ + [v/c2]x’)

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8
Q

lorentz transformation for distance S’ -> S

A

x = γ(x’ +vt’)

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9
Q

lorentz velocity transformation (S -> S’)

A

u’x = ( ux - v )/( 1 - [ux* v] / c2)

  • u’x -> observed velocity of moving object from moving frame of reference*
  • ux -> velocity of object from stationary reference frame*
  • v -> velocity of moving frame of reference*
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10
Q

Lorentz velocity transformation (S’ -> S)

A

u’x = ( ux + v )/( 1 + [ux* v] / c2)

  • u’x -> observed velocity of moving object from moving frame of reference*
  • ux -> velocity of object from stationary reference frame*
  • v -> velocity of moving frame of reference*
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11
Q

relativistic linear momentum

A

P = γmv = mv/[√(1 - u2/c2)]

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12
Q

relativistic kinetic energy

A

K = (γ - 1)mc2

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13
Q

relativistic total energy

A

E = K + mc2 = γmc2

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14
Q

energy/momentum relationship for relativistic particle

A

E2 = p2c2 + (mc2)2

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