A girl sees through a circular glass slab(refractive index 1.50 of thickness 20 mm and diameter 60 cm to the bottom of a swimming pol. Refractive index of water is 1.33. The bottom surface of the slab is in contact with the water surface.

The depth of swimming pool is 6m. The area of bottom of swimming pool that can be seen through the slab is approximately.

100 m $^{2}$

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160 m $^{2}$

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190 m $^{2}$

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220 m $^{2}$

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Solution

The correct option is B
160 m $^{2}$

For maximum possible area
I should be 90 $^{\circ}$
1 $\times$ $sin$ 90 $^{\circ}$ = $\frac{4}{3}$ $sin$ r
$sin$ r = $\frac{3}{4}$
$tan$ r = $\frac{3}{\sqrt{7}}$
Total base area $π {(6 \times \frac{3}{\sqrt{7} + 0.3})}^{2} \approx 160 m^{2}$

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Similar questions

Q. A girl sees through a circular glass slab(refractive index

1.50

of thickness

20 m m

and diameter

60 c m

to the bottom of a swimming pol. Refractive index of water is

1.33

. The bottom surface of the slab is in contact with the water surface.
The depth of swimming pool is

6 m

. The area of bottom of swimming pool that can be seen through the slab is approximately.

A girl sees through a circular glass slab(refractive index 1.50 of thickness 20 mm and diameter 60 cm to the bottom of a swimming pol. Refractive index of water is 1.33. The bottom surface of the slab is in contact with the water surface.

The depth of swimming pool is 6m. The area of bottom of swimming pool that can be seen through the slab is approximately.

Q. A man standing in a swimming pool looks at a stone lying at the bottom. The depth of the swimming pool is h. At what distance from the surface of water is the image of the stone formed? Take

μ

as refractive index of water.

Q. A swimming pool appears to be raised by

6 m

when viewed normally. What is the refractive index of water if the actual depth of the swim-ming pool is

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Q. A man standing in a swimming pool looks at a stone lying at the bottom. The depth of the swimming pool is

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. At what distance from the surface of water is the image of the stone formed

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The correct option is B 160 m2 For maximum possible area I should be 90∘ 1× sin 90∘ =43 sin r sin r = 34 tan r =3√7 Total base area π(6×3√7+0.3)2≈160m2

The correct option is B
160 m $^{2}$

For maximum possible area
I should be 90 $^{\circ}$
1 $\times$ $sin$ 90 $^{\circ}$ = $\frac{4}{3}$ $sin$ r
$sin$ r = $\frac{3}{4}$
$tan$ r = $\frac{3}{\sqrt{7}}$
Total base area $π {(6 \times \frac{3}{\sqrt{7} + 0.3})}^{2} \approx 160 m^{2}$