COLLEGE PHYSICS,V.2
COLLEGE PHYSICS,V.2
11th Edition
ISBN: 9781305965522
Author: SERWAY
Publisher: CENGAGE L
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Chapter 22, Problem 18P

A ray of light strikes a flat, 2.00-cm-thick block of glass (n = 1.50) at ail angle of 30.0° with respect to the normal (Fig. P22.18). (a) Find the angle of refraction at the lop surface. (b) Find the angle of incidence at the bottom surface and the refracted angle. (c) Find the lateral distance d by which the light beam is shifted. (d) Calculate the speed of light in the glass and (e) the time required for the light to pass through the glass block. (f) Is the travel time through the block affected by the angle of incidence? Explain.

Chapter 22, Problem 18P, A ray of light strikes a flat, 2.00-cm-thick block of glass (n = 1.50) at ail angle of 30.0 with

(a)

Expert Solution
Check Mark
To determine
The angle of refraction at the top surface.

Answer to Problem 18P

The angle of refraction at the top surface is 19.5° .

Explanation of Solution

From Snell’s law, at the first surface,

θ2=sin1(nairsinθ1nglass)

Here,

nair is the refractive index of air

nglass is the refractive index of glass

θ1 is the angle of incidence

θ2 is the angle of refraction

Substitute 1.00 for nair , 1.50 for nglass and 30.0° for θ1 .

θ2=sin1((1.00)sin30.0°1.50)=19.5°

Conclusion:

Thus, the angle of refraction at the top surface is 19.5° .

(b)

Expert Solution
Check Mark
To determine
The angle of incidence at the bottom surface and the refracted angle.

Answer to Problem 18P

The angle of incidence at the bottom surface is 19.5° and the refracted angle is 30.0° .

Explanation of Solution

The upper surface and the lower surface are parallel, the angle of incidence at the lower surface will be

θ2=19.5°

The angle of refraction is,

θ3=sin1(nglasssinθglassnair)

Substitute 1.00 for nair , 1.50 for nglass and 19.5° for θglass .

θ3=sin1((1.50)sin19.5°1.00)=30.0°

Conclusion:

Thus, the angle of incidence at the bottom surface is 19.5° and the refracted angle is 30.0° .

(c)

Expert Solution
Check Mark
To determine
The lateral distance by which the light beam is shifted.

Answer to Problem 18P

The lateral distance by which the light beam is shifted is 0.386cm .

Explanation of Solution

The following diagram shows the sketch of the path of the ray.

COLLEGE PHYSICS,V.2, Chapter 22, Problem 18P

From the figure,

h=2.00cmcosθ2=2.00cmcos19.5°=2.12cm

Also,

α=θ1θ2=30.0°19.5°=10.5°

Thus, the lateral distance by which the light beam is shifted is,

d=hsinα=(2.12cm)sin10.5°=0.386cm

Conclusion:

Thus, the lateral distance by which the light beam is shifted is 0.386cm .

(d)

Expert Solution
Check Mark
To determine
The speed of light in the glass.

Answer to Problem 18P

The speed of light in the glass is 2.00×108m/s .

Explanation of Solution

The equation for the speed of light in glass is,

v=cnglass

Substitute 3.00×108m/s for c and 1.50 for nglass .

v=3.00×108m/s1.50=2.00×108m/s

Conclusion:

Thus, the speed of light in the glass is 2.00×108m/s .

(e)

Expert Solution
Check Mark
To determine
The time required for the light to travel through the glass.

Answer to Problem 18P

The time required for the light to travel through the glass is 1.06×1010s .

Explanation of Solution

The equation for time required for the light to travel through the glass is,

t=dv

Substitute 2.12cm for d and 2.00×108m/s for v .

t=2.12cm2.00×108m/s(1m102cm)=1.06×1010s

Conclusion:

Thus, the time required for the light to travel through the glass is 1.06×1010s .

(f)

Expert Solution
Check Mark
To determine
Is the travel time through the block affected by the angle of incidence.

Answer to Problem 18P

Yes, the travel time through the block is affected by the angle of incidence.

Explanation of Solution

A change in the angle of incidence will cause a change in the angle of refraction. Thus, the distance the distance travelled by the light also changes. So, the travel time will also change.

Conclusion:

Yes, the travel time through the block is affected by the angle of incidence.

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Chapter 22 Solutions

COLLEGE PHYSICS,V.2

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