Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University
Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University
9th Edition
ISBN: 9781305372337
Author: Raymond A. Serway | John W. Jewett
Publisher: Cengage Learning
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Chapter 35, Problem 29P

(a)

To determine

The angle of refraction at the first surface.

(a)

Expert Solution
Check Mark

Answer to Problem 29P

The angle of refraction at the first surface is 41.5°.

Explanation of Solution

Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University, Chapter 35, Problem 29P

Figure-(1)

Write the expression of Snell`s Law.

    nairsinθ1=n2sinθ2θ2=sin1(nairsinθ1n2)                                                                                               (I)

Here, nair is the refractive index of air, n2 is the refractive index of fused quartz, θ1 is the angle of incidence and θ2  is the angle of refraction at the first surface.

Conclusion:

Substitute 1.00 for nair and 1.458 for n2 in equation (I) to calculate θ2.

    θ2=sin1((1.00)sin75.0°1.458)=41.5°

Therefore, the angle of refraction at the first surface is 41.5°.

(b)

To determine

The angle of incidence at the second surface.

(b)

Expert Solution
Check Mark

Answer to Problem 29P

The angle of incidence at the second surface is 18.5°.

Explanation of Solution

From the figure-(1)

    α+θ2=90°                                                                                                             (II)

    β+θ3=90°                                                                                                             (III)

Here θ3 is the angle of incidence at the second surface and θ2 is the angle of refraction at the first surface.

Add equation (III) and (IV).

    α+β+θ2+θ3=180°                                                                                           (IV)

From the figure in ΔABC,

    α+β+60°=180°α+β=120°                                                                                                 (V)

Conclusion:

Substitute equation (V) in equation (IV)

    θ2+θ3=60.0°                                                                                                      (VI)

Substitute 41.5° for θ2 in equation (VI) to calculate θ3.

    θ3=60.0°41.5°=18.5°

Therefore, the angle of incidence at the second surface is 18.5°.

(c)

To determine

The angle of refraction at the second surface.

(c)

Expert Solution
Check Mark

Answer to Problem 29P

The angle of refraction at the second surface is 27.5°.

Explanation of Solution

Write the expression of Snell`s Law.

    n2sinθ3=nairsinθ4θ4=sin1(n2sinθ3nair)                                                                               (VII)

Here, nair is the refractive index of air, n2 is the refractive index of fused quartz, and θ3 is the angle of incidence at second surface and θ4  is the angle of refraction at the second surface.

Conclusion:

Substitute 1.00 for nair and 1.458 for n2, 18.5° for θ3 in equation (VII) to calculate θ4.

    θ4=sin1((1.458)sin18.5°1.00)=27.5°

Therefore, the angle of refraction at the second surface is 27.5°.

(d)

To determine

The angle between the incident rays and emerging rays.

(d)

Expert Solution
Check Mark

Answer to Problem 29P

The angle between the incident and emerging rays is 42.5°.

Explanation of Solution

Write the expression of angle between incident and emerging rays.

    γ=θ1θ2θ3+θ4                                                                                             (VIII)

Here, γ is the angle between incident and emerging rays, θ1 is the angle of incidence at the first surface, θ2 is the angle of refraction at the first surface, and θ3 is the angle of incidence at second surface and θ4 is the angle of refraction at the second surface.

Conclusion:

Substitute 75.0° for θ1 and 41.5° for θ2, 18.5° for θ3 and 27.5° for θ4 in equation (VIII) to calculate γ.

    γ=75.0°41.5°18.5°+27.5°=42.5°

Therefore, the angle between the incident and emerging rays is 42.5°.

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Chapter 35 Solutions

Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University

Ch. 35 - Prob. 6OQCh. 35 - Prob. 7OQCh. 35 - Prob. 8OQCh. 35 - Prob. 9OQCh. 35 - Prob. 10OQCh. 35 - Prob. 11OQCh. 35 - Prob. 12OQCh. 35 - Prob. 13OQCh. 35 - Prob. 14OQCh. 35 - Prob. 15OQCh. 35 - Prob. 1CQCh. 35 - Prob. 2CQCh. 35 - Prob. 3CQCh. 35 - Prob. 4CQCh. 35 - Prob. 5CQCh. 35 - Prob. 6CQCh. 35 - Prob. 7CQCh. 35 - Prob. 8CQCh. 35 - Prob. 9CQCh. 35 - Prob. 10CQCh. 35 - Prob. 11CQCh. 35 - (a) Under what conditions is a mirage formed?...Ch. 35 - Prob. 13CQCh. 35 - Prob. 14CQCh. 35 - Prob. 15CQCh. 35 - Prob. 16CQCh. 35 - Prob. 17CQCh. 35 - Prob. 1PCh. 35 - Prob. 2PCh. 35 - In an experiment to measure the speed of light...Ch. 35 - As a result of his observations, Ole Roemer...Ch. 35 - Prob. 5PCh. 35 - Prob. 6PCh. 35 - Prob. 7PCh. 35 - Prob. 8PCh. 35 - Prob. 9PCh. 35 - Prob. 10PCh. 35 - Prob. 11PCh. 35 - A ray of light strikes a flat block of glass (n =...Ch. 35 - Prob. 13PCh. 35 - Prob. 14PCh. 35 - Prob. 15PCh. 35 - Prob. 16PCh. 35 - Prob. 17PCh. 35 - Prob. 18PCh. 35 - When you look through a window, by what time...Ch. 35 - Two flat, rectangular mirrors, both perpendicular...Ch. 35 - Prob. 21PCh. 35 - Prob. 22PCh. 35 - Prob. 23PCh. 35 - Prob. 24PCh. 35 - Prob. 25PCh. 35 - Prob. 26PCh. 35 - Prob. 27PCh. 35 - Prob. 28PCh. 35 - Prob. 29PCh. 35 - Prob. 30PCh. 35 - Prob. 31PCh. 35 - Prob. 32PCh. 35 - Prob. 33PCh. 35 - A submarine is 300 m horizontally from the shore...Ch. 35 - Prob. 35PCh. 35 - Prob. 36PCh. 35 - Prob. 37PCh. 35 - Prob. 39PCh. 35 - Prob. 40PCh. 35 - Prob. 41PCh. 35 - Prob. 42PCh. 35 - Prob. 43PCh. 35 - Prob. 44PCh. 35 - Assume a transparent rod of diameter d = 2.00 m...Ch. 35 - Consider a light ray traveling between air and a...Ch. 35 - Prob. 47PCh. 35 - Prob. 48PCh. 35 - Prob. 49PCh. 35 - Prob. 50PCh. 35 - Prob. 51APCh. 35 - Prob. 52APCh. 35 - Prob. 53APCh. 35 - Prob. 54APCh. 35 - Prob. 55APCh. 35 - Prob. 56APCh. 35 - Prob. 57APCh. 35 - Prob. 58APCh. 35 - Prob. 59APCh. 35 - A light ray enters the atmosphere of a planet and...Ch. 35 - Prob. 61APCh. 35 - Prob. 62APCh. 35 - Prob. 63APCh. 35 - Prob. 64APCh. 35 - Prob. 65APCh. 35 - Prob. 66APCh. 35 - Prob. 67APCh. 35 - Prob. 68APCh. 35 - Prob. 69APCh. 35 - Prob. 70APCh. 35 - Prob. 71APCh. 35 - Prob. 72APCh. 35 - Prob. 73APCh. 35 - Prob. 74APCh. 35 - Prob. 75APCh. 35 - Prob. 76APCh. 35 - Prob. 77APCh. 35 - Prob. 78APCh. 35 - Prob. 79APCh. 35 - Prob. 80APCh. 35 - Prob. 81CPCh. 35 - Prob. 82CPCh. 35 - Prob. 83CPCh. 35 - Prob. 84CPCh. 35 - Prob. 85CPCh. 35 - Prob. 86CPCh. 35 - Prob. 87CP
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