In an astronomical telescope in normal adjustment a straight black line of length $L$ is draw on inside part of objective lens. The eye-piece forms a real image of this line. The length of this image is $I$ . The magnification of the telescope is

\frac{L}{I}

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\frac{L}{l} + 1

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\frac{L}{I} - I

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\frac{L + I}{L - I}

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Solution

The correct option is A $\frac{L}{I}$

Let $f_{o}$ and $f_{e}$ be the focal length of the objective and eye piece.
For normal adjustment, the distance from the objective to the eye piece $= f_{o} + f_{e}$
Treating the line on the objective as object and the eye piece as lens,
$u = - (f_{o} + f_{e})$ and $f = f_{e}$
using , $1 / v - 1 / u = 1 / f$ we get $\frac{1}{v} + \frac{1}{f_{o} + f_{e}} = \frac{1}{f_{e}}$
or $\frac{1}{v} = \frac{1}{f_{e}} - \frac{1}{f_{o} + f_{e}} = \frac{f_{o}}{(f_{o} + f_{e}) f_{e}}$
or $v = \frac{(f_{o} + f_{e}) f_{e}}{f_{o}}$
Therefore, magnification for eye piece $= \frac{v}{u} = \frac{f_{e}}{f_{o}} = \frac{I}{L}$
Thus, magnification of telescope in normal adjustment $= \frac{f_{o}}{f_{e}} = \frac{L}{I}$

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In an astronomical telescope in normal adjustment a straight black line of length L is draw on inside part of objective lens. The eye-piece forms a real image of this line. The length of this image is I. The magnification of the telescope is

In an astronomical telescope in normal adjustment a straight black line of length $L$ is draw on inside part of objective lens. The eye-piece forms a real image of this line. The length of this image is $I$ . The magnification of the telescope is