Physics
Physics
5th Edition
ISBN: 9781260486919
Author: GIAMBATTISTA
Publisher: MCG
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Chapter 26, Problem 60P
To determine

The derivation of energy momentum relation.

Expert Solution & Answer
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Answer to Problem 60P

The derivation is given below.

Explanation of Solution

Write the expression for total energy

  E=K+E0                                                                                      (I)

Here, E is the total energy, K is the kinetic energy and E0 is the rest energy.

Write the expression for relativistic kinetic energy

  K=(γ1)E0                                                                                       (II)

Here, γ is the Lorentz factor.

Write the expression for Lorentz factor.

  γ=(1v2/c2)1/2                                                                                      (III)

Here, v is the velocity and c is the speed of light.

Write the expression for rest mass.

  E0=mc2                                                                                            (IV)

Here, m is the rest mass.

Square (I)

  E2=K2+E02+2KE0                                                                             (V)

Square (II)

  K2=γ2E02+E022γE0                                                                             (VI)

Multiply (II) by 2E0

  2KE0=2(γ1)E02

Rearrange

  2KE0=2γE022E02                                                                                      (VII)

Add (VII) and (VI)

  K2+2KE0=γ2E02+E022γE0+2γE022E02

Rearrange

  K2+2KE0=(γ21)E02                                                                         (VIII)

Substitute for γ2 and E02

  K2+2KE0=[(1v2/c2)11](mc2)2=(1v2/c2)1[1(1v2/c2)](mc2)2

Rearrange

  K2+2KE0=(1v2/c2)1[v2/c2](mc2)2

Substitute γ2 for (1v2/c2)1

  K2+2KE0=γ2v2c2(mc2)2

Rearrange

     K2+2KE0=γ2v2m2c2                                                                          (IX)

Substitute (IX) in (V)

  E2=E02+γ2v2m2c2                                                                             (X)

Write the expression for relativistic momentum

  p=γmv

Here, p is the momentum.

Square the above equation

  p2=γ2m2v2                                                                                         (XI)

Substitute (XI) in (X)

  E2=E02+p2c2

The above equation is the energy momentum relation.

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Chapter 26 Solutions

Physics

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