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Question

An object is 2 m from a lens which forms an erect image one-fourth (exactly) the size of the object. Determine the focal length of the lens. What type of lens is this?

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Solution

Given:
Object distance (u) = -2 m
Image distance (v) = ?
Magnification (m) = 0.25 (one-fourth of the size of the image)
Focal length (f) = ?
Magnification (m) = vu
0.25=v-2 v=-0.5 m

Putting these values in lens formula, we get:
1v-1u=1f1-0.5-1-2=1f1-0.5+12=1f 1f=12-10.5 1f=12-105 1f=-32 f = -0.66 m
Negative sign of focal length shows that lens is diverging in nature. Hence, it is a concave lens.

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