The current in a self-inductance L = 40 mH increased uniformly from 0 ampere to 10 A in 4× 10-3 s. The induced emf produced in during this process will be :

Question

The current in a self-inductance L = 40 mH increased uniformly from 0 ampere to 10 A in 4× 10-3 s. The induced emf produced in during this process will be : (A) 40 V (B) 400 V (C) 0.4 V (D) 100 V

Tardigrade Admin · Accepted Answer

From Faradays law of electromagnetic induction, the induced emf is given by

e = - L \frac{d i}{d t}

where

L

is coefficient of self induction,

\frac{d i}{d t}

is rate of change of current.
Given,

L = 40 m H = 40 \times 1 0^{- 3} H

,

\frac{d i}{d t} = \frac{10}{4 \times 1 0 ^{- 3}}

∴

e = - 40 \times 1 0^{- 3} \times \frac{10}{4 \times 1 0 ^{- 3}}

Negative sign signifies Lenzs law.

\Rightarrow e = 100 V

Q. The current in a self-inductance L=40mH increased uniformly from 0 ampere to 10A in 4×10−3s. The induced emf produced in during this process will be :

40 V

400 V

0.4 V

100 V

Q. The current in a self-inductance $L = 40 m H$ increased uniformly from $0$ ampere to $10 A$ in $4 \times 1 0^{- 3} s .$ The induced emf produced in during this process will be :