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Question

One end of a horizontal cylindrical glass rod (μ=1.5) of radius 5.0 cm is rounded in the shape of a hemisphere. An object 0.5 mm high is placed perpendicular to the axis of the rod at a distance of 20.0 cm from the rounded edge. Locate the image of the object and find its height.


A

Same height as that of object & erect.

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B

Same height as that of object & inverted.

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C

Double the height of the object & inverted.

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D

Half the height of the object & inverted.

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Solution

The correct option is B

Same height as that of object & inverted.


Taking the origin at the vertex,u = -20.0 cm and R = 5.0 cm.
We have,
μ2vμ1u=μ2μ1Ror, 1.5v=120.0 cm+0.55.0 cm=120 cmor, v=30 cm.

The image is formed inside the rod at a distance of 30 cm from the vertex.
The magnification is m=μ1vμ2u
=30 cm1.5×20 cm=1.
Thus, the image will be of same height (0.5 mm) as the object but it will be inverted.


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