4) Consider the electric circuit given in Figure 4 below where the input voltage is x(t) = te-tu(t). 10 1 II W x(1) 1F ΤΩ y(t) Figure 4. a) Draw the corresponding circuit in the frequency domain using Laplace transform. b) Write the loop equations directly in the frequency domain. c) Write the two equations in the matrix-vector form. d) Use Cramer's rule to find the current in the two loops Y₁ (s) and Y₂ (s). e) Find the zero-state response y(t) of the network by computing Laplace inverse of Y₂ (s) using partial fraction expansion.

Introductory Circuit Analysis (13th Edition)
13th Edition
ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:Robert L. Boylestad
Chapter1: Introduction
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4) Consider the electric circuit given in Figure 4 below where the input voltage is x(t) = te-tu(t).
10
1 II
ww
x(1)
1F
ΤΩ
y(t)
Figure 4.
a) Draw the corresponding circuit in the frequency domain using Laplace transform.
b) Write the loop equations directly in the frequency domain.
c) Write the two equations in the matrix-vector form.
d) Use Cramer's rule to find the current in the two loops Y₁ (s) and Y₂ (s).
e)
Find the zero-state response y(t) of the network by computing Laplace inverse of Y₂ (s) using
partial fraction expansion.
Transcribed Image Text:4) Consider the electric circuit given in Figure 4 below where the input voltage is x(t) = te-tu(t). 10 1 II ww x(1) 1F ΤΩ y(t) Figure 4. a) Draw the corresponding circuit in the frequency domain using Laplace transform. b) Write the loop equations directly in the frequency domain. c) Write the two equations in the matrix-vector form. d) Use Cramer's rule to find the current in the two loops Y₁ (s) and Y₂ (s). e) Find the zero-state response y(t) of the network by computing Laplace inverse of Y₂ (s) using partial fraction expansion.
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