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Chapter 25, Problem 48P

(a)

To determine

Show that the ratio of height of the container to the width is hd=n214n2.

(a)

Expert Solution
Check Mark

Answer to Problem 48P

Showed that the ratio of height of the container to the width is hd=n214n2_.

Explanation of Solution

Figure 1 represent the path of the ray before the container is filled.

Bundle: Principles of Physics: A Calculus-Based Text, 5th + WebAssign Printed Access Card for Serway/Jewett's Principles of Physics: A Calculus-Based Text, 5th Edition, Multi-Term, Chapter 25, Problem 48P , additional homework tip  1

From the Figure 1, write the expression for angle of incidence.

    sinθ1=ds1        (I)

Here, θ1 is the angel of incidence of the ray before the container is filled, d is the diameter of the container, and s1 is the distance travelled by the ray inside the container before the container is filled.

In the Figure, d, h, and s1 forms a right angle triangle. So s1 can be calculated using the expression h2+d2.

Use h2+d2 for s1 in the equation (I).

    sinθ1=dh2+d2=1(hd)2+1        (II)

Here, h is the height of the container.

Figure 2 represent the path of the ray after the container is filled.

Bundle: Principles of Physics: A Calculus-Based Text, 5th + WebAssign Printed Access Card for Serway/Jewett's Principles of Physics: A Calculus-Based Text, 5th Edition, Multi-Term, Chapter 25, Problem 48P , additional homework tip  2

From the Figure 2, write the expression for angle of incidence.

    sinθ2=d/2s2        (III)

Here, θ2 is the angel of refraction of the ray after the container is filled, and s2 is the distance travelled by the ray inside the container after the container is filled.

In the Figure, d/2, h, and s1 forms a right angle triangle. So s2 can be calculated using the expression h2+(d/2)2.

Use h2+(d/2)2 for s2 in the equation (I).

    sinθ2=d/2h2+(d/2)2=14(hd)2+1        (IV)

Apply Snell’s law at the boundary.

    1.00sinθ1=nsinθ2        (V)

Here, n is the refractive index of the fluid.

Use equation (II) and (IV) in equation (V).

    1.00(hd)2+1=n4(hd)2+1n2(hd)2+n2=4(hd)2+1(hd)2(4n2)=n21hd=n214n2        (VI)

Conclusion:

Therefore, the ratio of height of the container to the width is hd=n214n2_

(b)

To determine

The height of the container.

(b)

Expert Solution
Check Mark

Answer to Problem 48P

The height of the container is 4.73cm_.

Explanation of Solution

Conclusion:

Substitute, 1.333 for n, and 8.00cm for d in the equation (VI), to find h.

    h8.00cm=(1.333)214(1.333)2=0.5907=0.5907×8.00cmh=4.73cm

Therefore, the height of the container is 4.73cm_.

(c)

To determine

The range of values of n will be the center of the coin not be visible for any values of h and d.

(c)

Expert Solution
Check Mark

Answer to Problem 48P

The range of values of n will be the center of the coin not be visible for any values of h and d is 1,2,and n>2_.

Explanation of Solution

From the equation (VI), hd=n214n2 it is clear that h will be zero and infinity for the value n=1 and n=2, and also it has no real solution for n>2.

Conclusion:

Substitute, 1 for n in the equation (VI).

    hd=1141h=0

Substitute, 2 for n in the equation (VI).

    hd=4144h=

Therefore, the range of values of n will be the center of the coin not be visible for any values of h and d is 1,2,and n>2_.

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A person looking into an empty container is able to see the far edge of the container's bottom, as shown in Figure P22.23a. The height of the container is h, and its width is d. When the container is com- pletely filled with a fluid of index of refraction n and viewed from the same angle, the person can see the center of a coin at the middle of the container's bottom, as shown in Figure P22.23b. (a) Show that the ratio h/d is given by 4 - n² (b) Assuming the container has a width of 8.00 cm and is filled with water, use the expression above to find the height of the container. b. Figure P22.23

Chapter 25 Solutions

Bundle: Principles of Physics: A Calculus-Based Text, 5th + WebAssign Printed Access Card for Serway/Jewett's Principles of Physics: A Calculus-Based Text, 5th Edition, Multi-Term

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