In the given circuit, let `i_(10)` be the current drawn battery at time `t=0` and `i_(20)` be steady current at `t=oo` then the ratio `(i_(1))/(i_(2))` is A. `1.0`B. `0.8`C. `1.2`D. `1.5`

In the given circuit, let `i_(10)` be the current drawn battery at tim

1.	In the given circuit, let `i_(10)` be the current drawn battery at time `t=0` and `i_(20)` be steady current at `t=oo` then the ratio `(i_(1))/(i_(2))` is A. `1.0`B. `0.8`C. `1.2`D. `1.5`
Answer» Correct Answer - B At `t=0`, inductor behave as open circuit so `i_(1)` `=(10)/(10)=1 A` At `t=oo`, inductor behave as short circuit, so `i_(2)` `=(10)(8)=(5)/(4)A` Hence, `(i_(1))/(i_(2))=(1)/(5//4)=(4)/(5)=0.8`

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In the given circuit, let `i_(10)` be the current drawn battery at time `t=0` and `i_(20)` be steady current at `t=oo` then the ratio `(i_(1))/(i_(2))` is A. `1.0`B. `0.8`C. `1.2`D. `1.5`

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