8. (20') The circuit has reached steady state for t<0 s. If the switch moves to position B at t=0 s, calculate 1) the natural response v(t) across the parallel RCL for t> 0 s, and 2) i(t) for t> 0 s. A 1=0 i(t) B 4 A 20 Ω 10 mF 10 Ω 0.25 H
8. (20') The circuit has reached steady state for t<0 s. If the switch moves to position B at t=0 s, calculate 1) the natural response v(t) across the parallel RCL for t> 0 s, and 2) i(t) for t> 0 s. A 1=0 i(t) B 4 A 20 Ω 10 mF 10 Ω 0.25 H
Introductory Circuit Analysis (13th Edition)
13th Edition
ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:Robert L. Boylestad
Chapter1: Introduction
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
Transcribed Image Text:8. (20') The circuit has reached steady state for t<0 s. If the switch moves to position B at
t=0 s, calculate 1) the natural response v(t) across the parallel RCL for t> 0 s, and 2) i(t)
for t> 0 s.
A
1=0
i(t)
B
4 A
20 Ω
10 mF
10 Ω
0.25 H
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