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Question

An inductor of inductance 5.0 H, having a negligible resistance, is connected in series with a 100 Ω resistor and a battery of emf 2.0 V. Find the potential difference across the resistor 20 ms after the circuit is switched on.

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Solution

Given:
Self-inductance, L = 5.0 H
Resistance, R = 100 Ω
Emf of the battery = 2.0 V

At time, t = 20 ms (after switching on the circuit)
t = 20 ms = 20 × 10−3 s = 2 × 10−2 s
The steady-state current in the circuit is given by
i0=2100
The time constant is given by
τ=LR=5100 s
The current at time t is given by
i = i0(1 − e−t)
i=21001-e-2×10-2×1005 =2100(1-e-2/5) =2100(1-0.670)
= 0.00659 = 0.0066
Now,
V = iR = 0.0066 × 100
= 0.66 V

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