Question

In Fig.30.11 in the textbook, switch S1 is closed while switch S2 is kept open. The...

In Fig.30.11 in the textbook, switch S1 is closed while switch S2 is kept open. The inductance is L= 0.110 H , and the resistance is R = 125 Ω .

Part A

When the current has reached its final value, the energy stored in the inductor is 0.300 J . What is the emf E of the battery?

Part B

After the current has reached its final value, S1 is opened and S2 is closed. How much time does it take for the energy stored in the inductor to decrease to a half of the original value?

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Homework Answers

Answer #1

A) current is given by

energy stored in inductor =

U = 0.5* L*( ε /R)^2 = 0.300 J

0.5*0.110* (ε/125)^2 = 0.300

ε = 291.937 V answer

Part B

discharging current is given by

so

energy stored in the inductor to decrease to a half of the original value ,so

let me know in a comment if there is any problem or doubts


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