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Question

Choose the correct answer from alternatives given.
A small bulb is placed at the bottom of a tank containing water to a depth of 80 cm. What is the area of the surface of water through which light from the bulb can emerge out? Refractive index of water is 1.33. (Consider the bulb to be a point source)

A
2.6m2
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B
3.6m2
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C
4.2m2
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D
5.8m2
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Solution

The correct option is B 2.6m2
As shown in the figure all those light rays which are incident on the surface at angle of incidence more than critical angle, does total internal reflection and are reflected back in water only. All those light rays which are incident below critical angle emerges out of surface bending away from normal. All those light beams which are incident at critical angle grazes the surface of water.
We know
sinC=1μw
C=sin1(1μw)
C=sin1(11.33)sinC=11.33=34
tanC=ROP(radius)[(0.80)2=0.6400]
R = tan C × OP = tan C (0.80)
Area=π2=π×tan2C(0.64)
A=π(0.64)×tan2C
=π(0.64)×sin2Ccos2C=π(0.64)×sin2C1sin2C
π(0.64)×916×167=227×0.64×97=2.6m2

1028232_943889_ans_4843246348f84e3a9f82f0e04e10a649.PNG

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