EBK FUNDAMENTALS OF ELECTRIC CIRCUITS
6th Edition
ISBN: 8220102801448
Author: Alexander
Publisher: YUZU
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Textbook Question
Chapter 14, Problem 62P
The filter in Fig. 14.90(b) has a 3-dB cutoff frequency at 1 kHz. If its input is connected to a 120-mV variable frequency signal, find the output voltage at:
- (a) 200 Hz
- (b) 2 kHz
- (c) 10 kHz
Figure 14.90
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4. a) Given the circuit shown below in figure P4, compute the inductor current, iL(t), for t≥ 0 utilizing the
generalized equation presented in lecture. Assume the "make-before-break" switch shown in figure P4 is
ideal and makes the transition from position A to position B in zero time. The current and voltage
conventions shown must be used in the analysis to receive any credit.
b) Use your answer to part 4(a) above and the relationship between the inductor current, i₁(t), and the inductor
voltage, VL(t), shown below in equation P4 to compute VL(t) for t≥0.
Equation P4: V₁ (t) = L
diL(t)
dt
V₁(t)
+
R₁ = 100[2]
i₁(t)
VS1 = 100[V]
A
t=0
B
t = 0
+
R₂ = 100[2]
V2(t)
+
Tiz(t)
V3(t) = vc(t)
+
VS2 = 200[V]
+
C
Figure P4
| iz(t)
R3 = 100[2]
+
↓iL(t)
VL(t)
L = 1[H]
For the network in Figure 2, determine currents 14 and I, and voltage V2.
R₁
6.8 ΚΩ
+
R
8.2 ΚΩ
E 12 V
R₁₂
18 k≤2 Vs
R₁ 2 ks
Figure 2: Circuit diagram for Q.1(b')
2.
a) Given the circuit shown below in figure P2, compute the inductor current, iL(t), for t≥ 0 utilizing the
generalized equation method presented in lecture. Assume the switch shown in figure P2 is ideal and
opens in zero time at t = 0[s]. The current and voltage conventions shown must be used in the analysis
to receive any credit.
b) Use your answer to part 2(a) above and the relationship between the inductor current, iL(t), and the inductor
voltage, VL(t), shown below in equation P2 to compute VL(t) for t≥ 0.
Equation P2: v₁ (t) = L
di(t)
dt
Vs = 100[V]
+
I₁
R₁ = 100[2]
+
ww
ས་
t=0
१) 1
V₂(t)
+
i2(t)
R₂ = 200[2]
VL(t)
B
Figure P2
iL(t)
V3(t)
L = 1[H]
+
↓ iz(t)
R3 = 200[2]
Chapter 14 Solutions
EBK FUNDAMENTALS OF ELECTRIC CIRCUITS
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