A coil of inductance `L=50muH` and resistance = `0.5Omega` is connected to a battery of emf = 5V. A resistance of `10Omega` is connected parallel to the coil. Now, at the same instant the connection of the battery is switched off. Then, the amount of heat generated in the coil after switching off the battery isA. 1.25 mJB. 2.5 mJC. 0.65 mJD. 0.12 mJ

A coil of inductance `L=50muH` and resistance = `0.5Omega` is connecte

1.	A coil of inductance `L=50muH` and resistance = `0.5Omega` is connected to a battery of emf = 5V. A resistance of `10Omega` is connected parallel to the coil. Now, at the same instant the connection of the battery is switched off. Then, the amount of heat generated in the coil after switching off the battery isA. 1.25 mJB. 2.5 mJC. 0.65 mJD. 0.12 mJ
Answer» Correct Answer - D Energy, `U=(1)/(2)Li_(0)^(2)=(1)/(2)L((V)/(R))^(2)` `=(1)/(2)xx50xx10^(-6)((5)/(0.5))^(2)J=2.5mJ` Now, after switching off the battery this energy is dissipated in coil (resistance = `0.5Omega`) and resistnace `(10Omega)` in the ratio of their resistances (`H=i^(2)Rt` or `HpropR`). Therefore, heat generated in the coil. `((5)/(0.5))^(2)((0.5xx10)/(0.5+10))2.5mJ=0.12mJ`

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