The current in coil of self inductance 5 mH changes from 2.5 A to 2.0 A is 0.01 second. Calculate the value of self induced e.m.f.

The current in coil of self inductance 5 mH changes from 2.5 A to 2.0

1.	The current in coil of self inductance 5 mH changes from 2.5 A to 2.0 A is 0.01 second. Calculate the value of self induced e.m.f.
Answer» Solution :`E=-L(dI)/(dt) or \|E\|=L(dI)/(dt)` CALCULATION of SELF INDUCED e.f.m. `E=\|E\|=0.25V` Detailed Answer: Inductance of the coil `L=5xx10^(-3)H` Initial current in the coil `=2.5A` FINAL current in the coil `=2.0A` Change in current `dI=2.0-2.5=-0.5A` Time taken for the change, `dt=0.01` `E=-L(dI)/(dt)=(-5xx10^(-3)(-0.5))/(0.01)=0.25V`

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The current in coil of self inductance 5 mH changes from 2.5 A to 2.0 A is 0.01 second. Calculate the value of self induced e.m.f.

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