PHYSICS
PHYSICS
5th Edition
ISBN: 2818440038631
Author: GIAMBATTISTA
Publisher: MCG
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Chapter 22, Problem 37P

(a)

To determine

The average power incident on the telescope due to a wave at normal incidence with intensity 1.0×1026W/m2.

(a)

Expert Solution
Check Mark

Answer to Problem 37P

The average power incident on the telescope due to a wave at normal incidence with intensity 1.0×1026W/m2 is 7.3×1022W_

Explanation of Solution

Given that the diameter of the telescope is 305m, and intensity of the radio waves is 1026W/m2.

Write the expression for the average power incident on a surface of area A.

    P=IAcosθ                                                                                                           (I)

Here, P is the average power incident on the surface, I is the intensity of the wave, A is the area of the surface, and θ is the angle.

Write the expression for the area of the circular surface.

    A=π(d2)2                                                                                                             (II)

Here, A is the area of the surface, d is the diameter of the surface.

Use equation (II) in equation (I),

    P=Iπ(d2)2cosθ                                                                                               (III)

Conclusion:

Substitute 1.0×1026W/m2 for I, 305m for d, 0° for θ in equation (III) to find P.

    P=(1.0×1026W/m2)π(305m2)2cos0°=7.3×1022W

Therefore, the average power incident on the telescope due to a wave at normal incidence with intensity 1.0×1026W/m2 is 7.3×1022W_

(b)

To determine

Average power incident on Earth’s surface.

(b)

Expert Solution
Check Mark

Answer to Problem 37P

Average power incident on Earth’s surface is 1.3×1012W_.

Explanation of Solution

The diameter of the Earth is 1.274×107m.

The average power incident on the Earth’s surface can be found out by equation (III),

    P=Iπ(d2)2cosθ

Conclusion:

Substitute 1.0×1026W/m2 for I, 1.274×106m for d, 0° for θ in equation (III) to find P.

  P=(1.0×1026W/m2)π(1.274×107m2)2cos0°=1.3×1012W

Therefore, the average power incident on Earth’s surface is 1.3×1012W_.

(c)

To determine

The rms electric and magnetic fields.

(c)

Expert Solution
Check Mark

Answer to Problem 37P

The rms electric and magnetic fields are 1.9×1012V/m and 6.5×1021T_.

Explanation of Solution

Write the expression for the energy density.

    u=ε0Erms2                                                                                                            (IV)

Here, u is the energy density, ε0 permittivity of free space, Erms is the rms electric field.

Write the expression for the energy density in terms of intensity.

    u=Ic                                                                                                                    (V)

Here, c is the speed of light.

Use equation (V) in equation (IV),and solve for Erms,

Erms=Iε0c                                                                                                       (VI)

Write the relation connecting rms electric field and rms magnetic field.

    Erms=cBrms                                                                                                           (VII)

Here, Brms is the rms magnetic field.

Solve equation (VII) for Brms.

    Brms=Bmsc                                                                                                           (VIII)

Conclusion:

Substitute 1.0×1026W/m2 for I , 8.854×1012C2/Nm2 for ε0, 3.00×108m/s for c in equation (VI) to find Erms.

    Erms=1.0×1026W/m2(8.854×1012C2/Nm2)(3.00×108m/s)=1.9×1012V/m

Substitute 1.94×1012V/m for Erms and 3.00×108m/s for c in equation (VIII) to find Brms.

    Brms=1.94×1012V/m3.00×108m/s=6.5×1021T

Therefore, the rms electric and magnetic fields are 1.9×1012V/m and 6.5×1021T_.

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Chapter 22 Solutions

PHYSICS

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