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Chapter 34, Problem 67PQ

(a)

To determine

The direction in which the wave is travelling.

(a)

Expert Solution
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Answer to Problem 67PQ

The direction in which the wave is travelling is i^.

Explanation of Solution

Write the expression for magnetic field of electromagnetic wave.

    B(x,t)=Bmaxsin(kx+ωt)                                                                              (I)

Here, k is the wave number, Bmax is the maximum magnetic field, ω is the angular frequency, and t is the time.

Compare equation (I) with given equation of magnetic field.

    Bmaxsin(kx+ωt)=(4.0×108)sin[(1.4×104rad/m)x+ωt]

Conclusion:

Therefore, the direction in which the wave is travelling is i^.

(b)

To determine

The wave number, wave-length and frequency of the electro-magnetic wave.

(b)

Expert Solution
Check Mark

Answer to Problem 67PQ

The wave number is 1.4×104m1, the wave-length of the electro-magnetic wave is 4.5×104m and the frequency of radiation is 6.7×1011Hz.

Explanation of Solution

Write the expression for wave-length of the electro-magnetic wave.

    λ=2πk                                                                                                          (II)

Here, k is the wave number.

Write the expression for frequency of radiation.

    f=cλ                                                                                                            (III)

Here, c is the velocity of light.

Conclusion:

Compare equation (I) with given equation of magnetic field.

    Bmaxsin(kx+ωt)=(4.0×108)sin[(1.4×104m1)x+ωt]

The wave number is 1.4×104m1.

Substitute 1.4×104rad/m for k in equation (II) to calculate λ.

    λ=(2)(3.14)1.4×104rad/m=(4.49×104m)(1μm106m)=4.5×104m

Substitute 4.5×104m for λ and 3×108m/s for c in equation (III) to calculate f.

    f=3×108m/s4.5×104m=6.67×1011Hz6.7×1011Hz

Therefore, the wave number is 1.4×104m1, the wave-length of the electro-magnetic wave is 4.5×104m and the frequency of radiation is 6.7×1011Hz.

(c)

To determine

The expression for electric field of electromagnetic wave

(c)

Expert Solution
Check Mark

Answer to Problem 67PQ

The expression for electric field of electromagnetic wave is given below.

    E(x,t)=(12V/m)sin[(1.4×104rad/m)x+(4.2×1012rad/s)t]

Explanation of Solution

Write the expression for maximum value of electric field of

    Emax=cBmax                                                                                                        (IV)

Write the expression for electric field of electromagnetic wave.

    E(x,t)=Emaxsin(kx+ωt)                                                                               (V)

Write the expression for angular frequency.

    ω=2πf                                                                                                              (VI)

Conclusion:

Substitute 4.0×108 T for Bmax and 3×108m/s for c in equation (IV) to calculate Emax.

    Emax=3×108m/s×4.0×108 T=12V/m

Substitute 6.7×1011Hz for f in equation (VI) to calculate ω.

    ω=2π(6.7×1011Hz)=4.2×1012rad/s

Substitute 12.0V/m for Emax , 4.2×1012rad/s for ω , and 1.4×104 rad/m for k in equation (V) to find E(x,t).

    E(x,t)=(12V/m)sin[(1.4×104rad/m)x+(4.2×1012rad/s)t]

Therefore, the expression for electric field of electromagnetic wave is given below.

  E(x,t)=(12V/m)sin[(1.4×104rad/m)x+(4.2×1012rad/s)t]

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Chapter 34 Solutions

Webassign Printed Access Card For Katz's Physics For Scientists And Engineers: Foundations And Connections, 1st Edition, Single-term

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