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Self Induction

The back e.m....

Question

The back e.m.f. induced in a coil, when current changes from 1 ampere to zero in one millisecond, is 4 volts, the self inductance of the coil is

A

1 H

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B

4 H

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C

10^{- 3}

H

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D

4 \times 10^{- 3}

H

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Solution

The correct option is D $4 \times 10^{- 3}$ H
Solution:(d) $e = - L \frac{d i}{d t}$ but $e = 4 V$ and $\frac{d i}{d t} = \frac{0 - 1}{10^{- 3}} = \frac{- 1}{10^{- 3}}$
$∴ \frac{- 1}{10^{- 3}} (- L) = 4 \Rightarrow$ L = 4 $\times 10^{- 3}$ henry

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