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Question

Two inductors L1(inductance 1 mH, internal resistance 3 Ω) and L2(inductance 2 mH, internal resistance 4 Ω), and a resistor R (resistance 12 Ω) are all connected in parallel across a 5 V battery. The circuit is switched on at time t=0. The ratio of the maximum to the minimum current (Imax/Imin) drawn from the battery is

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Solution

As soon as the circuit is switched ON inductor behaves like open circuit due to high impedence of the inductors and hence only 12 Ω resistor will be in the closed circuit.
imin=VR=512 at t=0+
At steady state i.e at t= inductor behaves like short circuit. So the equivalent resistance can be calculated for the parallel connection of the three resistors and that would be 128 Ω.
imax=VR=5×812 at t=
So the ratio
imaximin=8


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