An ideal coil of 10H is connected in series with a resistance of `5(Omega)` and a battery of 5V. 2second after the connections is made, the current flowing in ampere in the circuit isA. `(1-e^(-1))`B. `(1-e)`C. `e`D. `e^(-1)`

An ideal coil of 10H is connected in series with a resistance of `5(Om

1.	An ideal coil of 10H is connected in series with a resistance of `5(Omega)` and a battery of 5V. 2second after the connections is made, the current flowing in ampere in the circuit isA. `(1-e^(-1))`B. `(1-e)`C. `e`D. `e^(-1)`
Answer» Correct Answer - A (a)`I=(I_0)(1-e^(-(R/L)t))` (when current is in growth in LR circuit) `(E)/(R)(1-e^(-(R/L)t))=5/5(1-e^(-(5/10)xx2))=(1-e^(-1))`

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An ideal coil of 10H is connected in series with a resistance of `5(Omega)` and a battery of 5V. 2second after the connections is made, the current flowing in ampere in the circuit isA. `(1-e^(-1))`B. `(1-e)`C. `e`D. `e^(-1)`

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