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Chapter 15 solutions_to_exercises(engineering circuit analysis 7th)
- 1. Engineering Circuit Analysis, 7th Edition
1.
Chapter Fifteen Solutions
10 March 2006
Note that iL(0+) = 12 mA. We have two choices for inductor model:
= 0.032s Ω
0.032s Ω
= 384 μV
12
mA
s
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- 2. Engineering Circuit Analysis, 7th Edition
2.
Chapter Fifteen Solutions
10 March 2006
iL(0-) = 0, vC(0+) = 7.2 V (‘+’ reference on left). There are two possible circuits, since
the inductor is modeled simply as an impedance:
1
Ω
0.002s
73 Ω
1
Ω
0.002s
7.2
V
s
0.03s Ω
73 Ω
+
V(s)
-
14.4 mA
0.03s Ω
+
V(s)
-
PROPRIETARY MATERIAL. © 2007 The McGraw-Hill Companies, Inc. Limited distribution permitted only to teachers
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- 3. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
3.
(a)
Z m (s) =
2s
2000 / s
20s
1000
+
=
+
20 + 0.1s 2 + 1000 / s s + 200 s + 500
20s 2 + 10, 000s + 1000s + 200, 000
=
=
s 2 + 700s + 100, 000
(b)
Zin(-80) = - 10.95 Ω
(c)
Zin ( j80) =
(d)
YRL =
1 10 s + 200
+
=
20 s
20s
(e)
YRC =
20s 2 + 11, 000s + 200, 000
s 2 + 700s + 100, 000
1
s + 500
+ 0.001s =
2
1000
(f)
−128, 000 + j880, 000 + 200, 000
= 8.095∠54.43° Ω
−6400 + j 56, 000 + 100, 000
s + 200
+ 0.5 + 0.001s
YRL + YRC
s + 200 + 10s + 0.02s 2
= 20s
=
(s + 200)
YRL YRC
0.001s 2 + 0.7s + 100
(0.001s + 0.5)
20s
20s 2 + 11, 000s + 200, 000
=
= Z(s)
s 2 + 700s + 100, 000
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- 4. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
4.
1
2 × 10−3 s
1
2 × 10−3 s
1
1
⎛
⎞ ⎛
⎞
Zin = ⎜ 20 +
= (20 + 500s-1) || (40 + 500s-1)
|| ⎜ 40 +
−3 ⎟
−3 ⎟
2 × 10 s ⎠ ⎝
2 × 10 s ⎠
⎝
=
80s 2 + 3000s +25000
6s 2 + 100s
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- 5. Engineering Circuit Analysis, 7th Edition
Zin =
Zin ( j8) =
(c)
Zin (−2 + j 6) =
(d)
(e)
10 March 2006
50 16(0.2s) 50
16s
16s 2 + 50s + 4000
+
=
+
=
s 16 + 0.2s
s s + 80
s 2 + 80s
(a)
(b)
5.
Chapter Fifteen Solutions
−1024 + 4000 + j 400
= 0.15842 − j 4.666 Ω
−64 + j 640
16(4 − 36 − j 24) − 100 + j 300 + 4000
= 6.850∠ − 114.3° Ω
−32 − j 24 − 160 + j 480
0.2 sR
50
0.2Rs 2 + 10s + 50R
,
+
=
s R + 0.2s
0.2s 2 + Rs
5R − 50 + 50 R
Zin (−5) =
∴ 55R = 50, R = 0.9091 Ω
5 − 5R
Zin =
R = 1Ω
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- 6. Engineering Circuit Analysis, 7th Edition
6.
2 mF →
Chapter Fifteen Solutions
10 March 2006
1
Ω, 1 mH → 0.001s Ω,
2 × 10−3 s
Zin = (55 + 500/ s) || (100 + s/ 1000) =
s ⎞
500 ⎞ ⎛
⎛
⎟
⎜ 55 +
⎟ ⎜100 +
55s 2 + 5.5005 × 106 s + 5 × 107
s ⎠ ⎝
1000 ⎠
⎝
=
s
500
s 2 + 5 × 105 s + 1.55 × 105
155 +
+
s
1000
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and educators for course preparation. If you are a student using this Manual, you are using it without permission.
- 7. Engineering Circuit Analysis, 7th Edition
7.
Chapter Fifteen Solutions
10 March 2006
We convert the circuit to the s-domain:
1/sCμ Ω
Vπ
1/sCπ Ω
Vπ
rπ R B
and
rπ + R B + rπ R BCπ s
ZL = RC || RL = RCRL/ (RC + RL), we next connect a 1-A source to the input and write two
nodal equations:
Defining Zπ = RB || rπ || (1/sCπ) =
1
Solving,
Vπ =
= Vπ/ Zπ + (Vπ – VL)Cμ s
-gmVπ = VL/ ZL + (VL – Vπ)Cμ s
[1]
[2]
rπ R B (1 + Z L C μ s )
Z L rπ R BCπ C μ s 2 + (g m Z L rπ R BC μ + rπ R BCπ + rπ R BC μ + Z L rπ C μ +Z L R BC μ )s + rπ + R B
Since we used a 1-A ‘test’ source, this is the input impedance. Setting both capacitors to
zero results in rπ || RB as expected.
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- 8. Engineering Circuit Analysis, 7th Edition
8.
0.115s Ω
Chapter Fifteen Solutions
10 March 2006
460 μV
I
2
s
V
2
+ 460 × 10−6
2.162
9400
s
+
=
V(s) = 4700
0.115s + 4700
s (0.115s + 4700)
4700 + 0.115s
=
18.8
81740
18.8
a
b
+
=
+
+
s + 40870
s (s + 40870)
s + 40870
s
s + 40870
where a =
Thus, V(s) =
81740
s + 40870
= 2 and b =
s =0
81740
s
= -2
s = -40870
18.8
2
2
. Taking the inverse transform of each term,
+
s + 40870
s s + 40870
v(t) = [16.8 e-40870t + 2] u(t) V
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- 9. Engineering Circuit Analysis, 7th Edition
9.
Chapter Fifteen Solutions
10 March 2006
v(0-) = 4 V
303030
Ω
s
9
s
4
V
s
I(s)
9 4
−
5
4.545 × 10-6
s s
=
=
I(s) =
303030
s +0.2755
1.1 × 106 + 303030
+ 1.1 × 106
s
Taking the inverse transform, we find that i(t) = 4.545 e-0.2755t u(t) μA
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- 10. Engineering Circuit Analysis, 7th Edition
10.
Chapter Fifteen Solutions
10 March 2006
From the information provided, we assume no initial energy stored in the inductor.
(a) Replace the 100 mH inductor with a 0.1s-Ω impedance, and the current source with a
25 × 10−6
A source.
s
0.1s Ω
25
s
V
25 × 10−6 ⎡ 2 (0.1s) ⎤
5 × 10-6
5 × 10-5
=
=
V
⎢ 2 + 0.1s ⎥
0.1s + 2
s
s + 20
⎣
⎦
Taking the inverse transform,
(b) V(s) =
v(t) = 50 e-20t mV
The power absorbed in the resistor R is then p(t) = 0.5 v2(t) = 1.25 e-40t nW
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- 11. Engineering Circuit Analysis, 7th Edition
11.
Chapter Fifteen Solutions
10 March 2006
We transform the circuit into the s-domain, noting the initial condition of the capacitor:
V1
V2
4/s Ω
2/s
6/s
2/s V
Writing our nodal equations,
V1 − 2
s + V1 − V2 +
1
1
2
V1 + 2
4
s =0
[1]
s
V2 − V1 V2
+
=6
1
1
2
[2]
We may solve to obtain
V1 =
and
V1 =
Taking the inverse transforms,
and
−6 ( s − 12 )
s ( 3s + 20 )
2 ( s + 44 )
s ( 3s + 20 )
=
3.6
−5.6
+
s + 6.67 s
=
−3.73 4.4
+
s + 6.67
s
v1(t) = –5.6e–6.67t + 3.6 V, t ≥ 0
v2(t) = –3.73e–6.67t + 4.4 V, t ≥ 0
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- 12. Engineering Circuit Analysis, 7th Edition
12.
Chapter Fifteen Solutions
10 March 2006
We transform the circuit into the s-domain, noting the initial condition of the inductor:
V1
V2
(a) Writing our nodal equations,
4V1 − 3V2 =
and
−3V1 + 3V2 +
2
s
[1]
2/s
4/s A
36 V
V2 + 36 4
=
9s
s
or
9s Ω
[2]
1⎞
⎛
−3V1 + ⎜ 3 + ⎟ V2 = 0
9s ⎠
⎝
We may solve to obtain
and
⎛
⎞
⎜ 1 ⎟ 1 ⎛1⎞
3
V1 =
= ⎜
⎟+ ⎜ ⎟
s ( 27s + 4 ) 2 ⎜ s + 4 ⎟ 2 ⎝ s ⎠
27 ⎠
⎝
54
2
=
V2 =
27s + 4 s + 4
27
Taking the inverse transforms,
and
2 ( 27s + 1)
v1(t) = 1.5–0.1481t + 0.5 V, t ≥ 0
v2(t) = 2e–0.1481t V, t ≥ 0
(b)
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- 13. Engineering Circuit Analysis, 7th Edition
13.
Chapter Fifteen Solutions
10 March 2006
(a) We transform the circuit into the s-domain, noting the initial condition of the
capacitor:
1/s Ω
12/s
I2
I1
9/s V
Writing the two required mesh equations:
1⎞
1
3
⎛
⎜ 6 + ⎟ I1 − I 2 =
s⎠
s
s
⎝
1
1⎞
9
⎛
− I1 + ⎜12 + ⎟ I 2 =
s
s⎠
s
⎝
[1]
[2]
⎛
⎞
2 ⎡ ( 3s + 1) ⎤ 2 1 ⎜ 1 ⎟
Solving yields I1 = ⎢
⎥= −
3 ⎢ s ( 4s + 1) ⎥ 3s 6 ⎜ s + 1 ⎟
⎣
⎦
4⎠
⎝
1 ⎡ ( 9s + 2 ) ⎤ 2 1 ⎛ 1 ⎞
⎟
and I 2 = ⎢
⎥= + ⎜
3 ⎢ s ( 4s + 1) ⎥ 3s 12 ⎜ s + 1 ⎟
⎣
⎦
4⎠
⎝
Thus, taking the inverse Laplace transform, we obtain
i1 (t ) =
2 1 −t4
− e A, t ≥ 0
3 6
and
i2 (t ) =
2 1 − t4
+ e A, t ≥ 0
3 12
(b)
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- 14. Engineering Circuit Analysis, 7th Edition
14.
Chapter Fifteen Solutions
10 March 2006
(a) We transform the circuit into the s-domain, noting the initial condition of the
inductor:
I1
9/s
sΩ
I2
8V
Writing the two required mesh equations:
9
+8
s
−sI1 + (10 + s ) I 2 = −8
( 2 + s ) I1 − sI 2 =
[1]
[2]
⎡
⎤
1 ⎢ ( 89s + 90 ) ⎥ 35 ⎛ 1 ⎞ 4.5
⎟+
Solving yields I1 =
= ⎜
12 ⎢ s s + 5 ⎥ 12 ⎜ s + 5 ⎟ s
3⎠
⎢
⎝
3 ⎥
⎣
⎦
⎡
⎤
⎛
⎞
−7 ⎢ 1
⎥=− 7 ⎜ 1 ⎟
and I 2 =
12 ⎢ s + 5 ⎥
12 ⎜ s + 5 ⎟
3⎠
⎢
⎝
3 ⎥
⎣
⎦
(
(
)
)
Thus, taking the inverse Laplace transform, we obtain
i1 (t ) =
35 −1.667 t
e
+ 4.5 A, t ≥ 0
12
and
i2 (t ) = −
7 −1.667 t
A, t ≥ 0
e
12
(b)
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- 15. Engineering Circuit Analysis, 7th Edition
15.
Chapter Fifteen Solutions
10 March 2006
v(t) = 10e-2t cos (10t + 30o) V
scos30o -10sin30o
0.866s - 5
cos (10t + 30 ) ⇔
= 2
2
s +100
s + 100
-at
L {f(t)e } ⇔ F(s + a), so
o
V(s) = 10
0.866 ( s + 2 ) - 5
(s + 2)
2
+ 100
=
8.66s - 16.34
s + 100
The voltage across the 5-Ω resistor may be found by simple voltage division. We first
50
Ω. Thus,
note that Zeff = (10/s) || 5 =
5s + 10
⎛ 50 ⎞
⎜
⎟ Vs
50 Vs
50 Vs
⎝ 5s + 10 ⎠
=
=
V5Ω =
2
⎛ 50 ⎞
( 0.5s + 5) ( 5s + 10 ) + 50 2.5s + 30s + 100
0.5s + 5 + ⎜
⎟
⎝ 5s + 10 ⎠
V
0.866s - 3.268
34.64s - 130.7
=
(a) Ix = eff = 40
2
2
5
⎡( s + 2 ) + 100 ⎤ ⎡s 2 + 12s + 40 ⎤
⎡( s + 2 ) + 100 ⎤ ⎡( s + 6 )2 + 100 ⎤
⎣
⎦
⎣
⎦
⎦
⎣
⎦⎣
(b) Taking the inverse transform using MATLAB, we find that
ix(t) = e-6t [0.0915cos 2t - 1.5245 sin 2t] - e-2t [0.0915 cos10t - 0.3415 sin 10t] A
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- 16. Engineering Circuit Analysis, 7th Edition
16.
VC1
10 March 2006
2
Ω V2
s
V1
3
s
Chapter Fifteen Solutions
5
Ω
s
8s Ω
5
V
s
Node 1:
0 = 0.2 (V1 – 3/ s) + 0.2 V1 s + 0.5 (V1 – V2) s
Node 2:
0 = 0.5 (V2 – V1) s + 0.125 V2 s + 0.1 (V2 + 5/ s)
Rewriting, (3.5 s 2 + s) V1 + 2.5 s 2 V2 = 3
-4 s 2 V1 + (4 s 2 + 0.8 s + 1) V2 = -4
[1]
[2]
Solving using MATLAB or substitution, we find that
−20s 2 + 16s + 20
40s 4 + 68s3 + 43s 2 + 10s
−20s 2 + 16s + 20
⎛ 1 ⎞
= ⎜ ⎟
⎝ 40 ⎠ s ( s + 0.5457 - j 0.3361)( s + 0.5457 + j 0.3361)( s + 0.6086 )
V1 (s) =
which can be expanded:
a
b
b*
c
V1 (s) =
+
+
+
s
s + 0.5457 - j 0.3361 s + 0.5457 + j 0.3361 s + 0.6086
Using the method of residues, we find that
a = 2, b = 2.511 ∠101.5o, b* = 2.511∠-101.5o and c = -1.003.
Thus,taking the inverse transform,
v1(t) = [2 – 1.003 e-0.6086t + 5.022 e-0.5457t cos (0.3361t – 101.5o)] u(t) V
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- 17. Engineering Circuit Analysis, 7th Edition
17.
Chapter Fifteen Solutions
10 March 2006
With zero initial energy, we may draw the following circuit:
2 s-1 Ω
3
V
s
5 s-1 Ω
8sΩ
5
V
s
Define three clockwise mesh currents I1, I2, and I3 in the left, centre and right meshes,
respectively.
Mesh 1: -3/s + 5I1 + (5/s)I1 – (5/s)I2 = 0
Mesh 2: -(5/s)I1 + (8s + 7/s)I2 – 8s I3 = 0
Mesh 3: -8sI2 + (8s + 10)I3 – 5/s = 0
Rewriting,
(5s + 5) I1 – 5 I2
-5 I1
+ (8s2 +7) I2 – 8s2 I3
- 8s2 I2 + (8s2 + 10s) I3
= 3
= 0
= 5
[1]
[2]
[3]
Solving, we find that
I2(s) =
=
2
20s + 32s + 15
20s 2 + 32s + 15
=⎛ 1 ⎞
⎜ ⎟
2
40s + 68s + 43s + 10 ⎝ 40 ⎠ ( s + 0.6086 )( s + 0.5457 - j 0.3361)( s + 0.5457 + j 0.3361)
3
a
b
b*
+
+
( s + 0.6086 ) ( s + 0.5457 - j 0.3361) ( s + 0.5457 + j 0.3361)
where a = 0.6269, b = 0.3953∠-99.25o, and b* = 0.3955∠+99.25o
Taking the inverse tranform, we find that
o
o
i2(t) = [0.6271e-0.6086t + 0.3953e-j99.25 e(-0.5457 + j0.3361)t + 0.3953ej99.25 e(-0.5457 - j0.3361)t ]u(t)
= [0.6271e-0.6086t + 0.7906 e-0.5457t cos(0.3361t + 99.25o)] u(t)
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- 18. Engineering Circuit Analysis, 7th Edition
18.
Chapter Fifteen Solutions
10 March 2006
We choose to represent the initial energy stored in the capacitor with a current source:
V1
3
V
s
5
Ω
s
•
2
Ω
s
↑ 1.8 A
V2
5
V
s
8s Ω
•
Node 1:
Node 2:
Rewriting,
3
s + s V + s (V - V )
1.8 =
1
1
2
5
5
2
5
V2 +
1
s
s
0 =
(V2 - V1 ) +
V2 +
2
8s
10
V1 -
(5s2 + 4s) V1 – 5s2 V2 = 18s + 6
-4s2 V1 + (4s2 + 0.8s + 1)V2 = -4
Solving, we find that V1(s) =
[1]
[2]
360s3 + 92s 2 + 114s + 30
s(40s3 + 68s 2 + 43s + 10)
a
b
c
c*
+
+
+
=
s
s + 0.6086 s + 0.5457 - j 0.3361 s + 0.5457 + j 0.3361
where a = 3, b = 30.37, c = 16.84 ∠136.3o and c* = 16.84 ∠-136.3o
Taking the inverse transform, we find that
o
v1(t) = [3 + 30.37e-0.6086t + 16.84 ej136.3 e-0.5457t ej0.3361t
o
+ 16.84 e-j136.3 e-0.5457t e-j0.3361t ]u(t) V
= [3 + 30.37e-0.6086t + 33.68e-0.5457t cos (0.3361t + 136.3o]u(t) V
PROPRIETARY MATERIAL. © 2007 The McGraw-Hill Companies, Inc. Limited distribution permitted only to teachers
and educators for course preparation. If you are a student using this Manual, you are using it without permission.
- 19. Engineering Circuit Analysis, 7th Edition
19.
Chapter Fifteen Solutions
10 March 2006
We begin by assuming no initial energy in the circuit and transforming to the s-domain:
V1
20
10
Ω
s
2s Ω
s+3
A
(s + 3) 2 + 16
(a) via nodal analysis, we write:
V
20s + 60
s
=
( V1 - Vx ) + 1
2
(s + 3) + 16
10
5
V
120
s
= x +
( Vx − V1 )
2
(s + 3) + 16
2s
10
Vx
30
4
A
(s + 3)2 + 16
[1] and
[2]
Collecting terms and solving for Vx(s), we find that
Vx(s) =
=
200s(s 2 + 9s + 12)
2s 4 + 17s3 + 90s 2 + 185s + 250
200s(s 2 + 9s + 12)
( s + 3 - j 4 )( s + 3 + j 4 )( s + 1.25 - j1.854 )( s + 1.25 + j1.854 )
(b) Using the method of residues, this function may be rewritten as
a
a*
b
b*
+
+
+
( s + 3 - j 4 ) ( s + 3 + j 4 ) ( s + 1.25 - j1.854 ) ( s + 1.25 + j1.854 )
with a = 92.57 ∠ -47.58o, a* = 92.57 ∠ 47.58o, b = 43.14 ∠106.8o, b* = 43.14 ∠-106.8o
Taking the inverse transform, then, yields
o
o
vx(t) = [92.57 e-j47.58 e-3t ej4t + 92.57 ej47.58 e-3t e-j4t
o
o
+ 43.14ej106.8 e-1.25t ej1.854t + 43.14e-j106.8 e-1.25t e-j1.854t] u(t)
= [185.1 e-3t cos (4t - 47.58o) + 86.28 e-1.25t cos (1.854t + 106.8o)] u(t)
PROPRIETARY MATERIAL. © 2007 The McGraw-Hill Companies, Inc. Limited distribution permitted only to teachers
and educators for course preparation. If you are a student using this Manual, you are using it without permission.
- 20. Engineering Circuit Analysis, 7th Edition
20.
Chapter Fifteen Solutions
10 March 2006
We model the initial energy in the capacitor as a 75-μA independent current source:
0.005s Ω
162.6s
V
s 2 + 4π 2
106
Ω
s
First, define Zeff = 106/s || 0.005s || 20 =
↑
V
75 μA
s
Ω
10 s + 0.005s + 200
-6 2
Then, writing a single KCL equation, 75 ×10-6 =
V (s)
1 ⎛
162.6s ⎞
+
⎜ V (s) - 2
⎟
Zeff
20 ⎝
s + 4π 2 ⎠
which may be solved for V(s):
V(s) =
=
75s ( s 2 + 1.084 × 105s + 39.48 )
s 4 + 5.5 × 104s3 + 2 × 108s 2 + 2.171× 106s + 7.896 × 109
75s s 2 + 1.084 ×105s + 12.57
(
)
( s + 51085)( s + 3915)( s - j 6.283)( s + j 6.283)
(NOTE: factored with higher-precision denominator coefficients using MATLAB to
obtain accurate complex poles: otherwise, numerical error led to an exponentially
growing pole i.e. real part of the pole was positive)
a
b
c
c*
=
+
+
+
( s + 51085 ) ( s + 3915 ) ( s - j 2π ) ( s + j 2π )
where a = -91.13, b = 166.1, c = 0.1277∠89.91o and c* = 0.1277∠-89.91o.
Thus, consolidating the complex exponential terms (the imaginary components cancel),
v(t) = [-91.13e-51085t + 166.1e-3915t + 0.2554 cos (2πt + 89.91o)] u(t) V
(b) The steady-state voltage across the capacitor is V = [255.4 cos(2πt + 89.91o)] mV
This can be written in phasor notation as 0.2554 ∠89.91o V. The impedance across
which this appears is Zeff = [jωC + 1/jωL + 1/20]-1 = 0.03142 ∠89.91o Ω, so
Isource = V/ Zeff = 8.129∠-89.91o A.
Thus, isource = 8.129 cos 2πt A.
(c) By phasor analysis, we can use simple voltage division to find the voltage division to
find the capacitor voltage:
(162.6∠0 ) ( 0.03142∠89.91o )
VC(jω) =
= 0.2554∠89.92o V which agrees with
20 + 0.03142∠89.91o
our answer to (a), assuming steady state. Dividing by 0.03142 ∠89.91o Ω, we find
isource = 8.129 cos 2πt A.
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- 21. Engineering Circuit Analysis, 7th Edition
21.
Chapter Fifteen Solutions
10 March 2006
Only the inductor appears to have initial energy, so we model that with a voltage source:
I1
I2
I4
0.001s Ω
1 mV
5.846s + 2.699
V
s2 + 4
1333/s Ω
1000/s Ω
I1
I3
6s
V
s +4
2
5.846s + 2.699
1333 ⎞
1333
⎛
= ⎜2 +
I 2 - 2I 3
⎟ I1 2
s +4
s ⎠
s
⎝
0 = 0.005I1 – 0.001 + (0.001s + 1333/s) I2 – (1333/s)I1 – 0.001sI4
6s
0 = (2 + 1000/s)I3 – 2I1 – (1000/s)I4 + 2
s +4
0 = (0.001s + 1000/s) I4 - 0.001sI2 – (1000/s)I3 + 0.001
Mesh 1:
Mesh 2:
Mesh 3:
Mesh 4:
154s − 2699
and
s2 + 4
154s 4 - 7.378 × 107 s3 - 1.912 × 1010s 2 - 4.07 × 1013s + 7.196 × 1014
I2 = 0.001
2333s 4 + 6.665 × 105s3 + 1.333 × 109s 2 + 5.332 × 109
0.4328∠ − 166.6o
0.4328∠ + 166.6o
=
+
s + 142.8 + j 742
s + 142.8 - j 742
Solving, we find that I1 = −0.2
135.9∠ − 96.51o 135.9∠ + 96.51o
+
+ 6.6 ×10-5
s - j2
s + j2
Taking the inverse transform of each,
+
i1(t) = 271.7 cos (2t – 96.51o) A and
i2(t) = 0.8656 e-142.8t cos (742.3t + 166.6o) + 271.8 cos (2t – 96.51o) + 6.6×10-5 δ(t) A
Verifying via phasor analysis, we again write four mesh equations:
6∠-13o = (2 – j666.7)I1 + j667I2 – 2I3
0
= (0.005 + j666.7)I1 + (j2x10-3 – j666.7)I2 – j2×10-3I4
-6∠0
= -2I1 + (2 – j500)I3 + j500I4
0
= -j2×10-3I2 + j500I3 + (j2×10-3 – j500)I4
Solving, we find I1 = 271.7∠-96.5o A and I2 = 272∠-96.5o A. From the Laplace analysis,
we see that this agrees with our expression for i1(t), and as t → ∞, our expression for i2(t)
→ 272 cos (2t – 96.5o) in agreement with the phasor analysis.
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- 22. Engineering Circuit Analysis, 7th Edition
22.
Chapter Fifteen Solutions
10 March 2006
With no initial energy storage, we simply convert the circuit to the s-domain:
V2
I2
V2
1667/s Ω
s
-2
I1
2000/s Ω
V2 I3
0.002s Ω
Writing a supermesh equation,
1
1
2000
2000
= 100I1 +
I1 +
I 3 + 0.002sI 3 I2
2
−4
6 × 10 s
s
s
s
we next note that I2 = -5V2 = -5(0.002s)I3 = -0.01sI3
and I3 – I1 = 3V2 = 0.006sI3, or I1 = (1 – 0.006s)I3, we may write
I3 =
1
−0.598s + 110s 2 + 3666s
3
1
−0.0012s + 0.22s3 + 7.332s 2
7.645 ×10−5
4.167 × 10−3
4.091×10−3
0.1364
−
+
=−
+
s − 212.8
s + 28.82
s
s2
Taking the inverse transform,
v2(t) = -7.645×10-5 e212.8t + 4.167×10-3 e-28.82t – 4.091×10-3 + 0.1364 t] u(t) V
V2(s) = I3/ 0.002s =
(a) v2(1 ms) =
(b) v2(100 ms) =
(c) v2(10 s) =
4
-5.58×10-7 V
-1.334×105 V
-1.154×10920 V. This is pretty big- best to start running.
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- 23. Engineering Circuit Analysis, 7th Edition
23.
Chapter Fifteen Solutions
10 March 2006
We need to write three mesh equations:
Mesh 1:
5.846s + 2.699
1333 ⎞
⎛
= ⎜2 +
⎟ I1 - 2I 3
2
s +4
s ⎠
⎝
Mesh 3:
0 = (2 + 1000/s)I3 – 2I1 – (1000/s)I4 +
6s
s +4
0 = (0.001s + 1000/s) I4 – (1000/s)I3 + 10-6
Mesh 4:
Solving,
I1 = −0.001s
(154s
3
2
- 2.925 ×106s 2 + 1.527 × 108s - 2.699 × 109 )
2333s 4 + 6.665 ×105s3 + 1.333 × 109s 2 + 2.666 × 106s + 5.332 × 109
0.6507∠12.54o
0.6507∠ − 12.54o
=
+
s + 142.8 − j 742.3 s + 142.8 + j 742.3
0.00101∠ − 6.538o 0.00101∠6.538o
− 6.601× 10-5
+
+
s − j2
s + j2
which corresponds to
i1(t) = 1.301 e-142.8t cos (742.3t + 12.54o) + 0.00202 cos (2t – 6.538o) – 6.601×10-5 δ(t) A
and
I3 =
(154s
−0.001
=
4
+ 3.997 × 106s3 + 1.547 × 108s 2 + 3.996 × 1012s - 2.667 ×106
(s
2
)(
+ 4 2333s + 6.665 ×10 s + 1.333 ×10
2
5
9
)
)
0.7821∠ − 33.56o
0.7821∠33.56o
+
s + 142.8 − j 742.3 s + 142.8 + j 742.3
1.499∠179.9o 1.499∠ − 179.9o
+
s − j2
s + j2
which corresponds to
i3(t) = 1.564 e-142.8t cos (742.3t – 33.56o) + 2.998 cos (2t + 179.9o) A
+
2
The power absorbed by the 2-Ω resistor, then, is 2 ⎡i1 (t ) − i3 (t ) ⎤ or
⎣
⎦
p(t) = 2[1.301 e-142.8t cos (742.3t + 12.54o) + 0.00202 cos (2t – 6.538o) – 6.601×10-5 δ(t)
- 1.564 e-142.8t cos (742.3t – 33.56o) - 2.998 cos (2t + 179.9o)]2 W
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- 24. Engineering Circuit Analysis, 7th Edition
24.
Chapter Fifteen Solutions
(a) We first define Zeff = RB || rπ || (1/sCπ) =
10 March 2006
rπ R B
. Writing two nodal
rπ + R B + rπ R B Cπ s
equations, then, we obtain:
and
0 = (Vπ – VS)/ RS + Vπ (rπ + RB + rπ RBCπs)/rπRB + (Vπ – Vo)Cμ s
-gmVπ = Vo(RC + RL)/RCRL + (Vo – Vp) Cμ s
Solving using MATLAB, we find that
Vo
= rπ R B R C R L (-g m + C μ s) [R s rπ R B R C R L Cπ C μ s 2 + (R s rπ R B R C Cπ + R s rπ R B R C C μ
Vs
+ R s rπ R B R L Cπ + R s rπ R B R L C μ + rπ R B R C R L C μ + R s rπ R C R L C μ
+ R s R B R C R L C μ + g m R s rπ R B R C R L C μ )s
+ rπ R B R C + R s rπ R C + R s R B R C + rπ R B R L + R s rπ R L + R s R B R L ]−1
(b) Since we have only two energy storage elements in the circuit, the maximum number
of poles would be two. The capacitors cannot be combined (either series or in parallel),
so we expect a second-order denominator polynomial, which is what we found in part (a).
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- 25. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
25.
(a)
IC
I
500/s Ω
3/s
0.001s Ω
(b) ZTH = (5 + 0.001s) || (500/ s) =
VTH = (3/ s)ZTH
2500s + 0.5
Ω
0.001s 2 + 5s + 500
7.5 × 106s + 1500
=
V
s s 2 + 5000s + 5 × 105
(
)
7.5 ×106s + 1500
2500s + 0.5
⎛
⎞
s ( s 2 + 505000 ) ⎜1 +
⎟
0.001s 2 + 5s + 500 ⎠
⎝
2.988
10.53∠-89.92o 10.53∠+89.92o
=−
+
+
s + 2.505 × 106
s + j 710.6
s − j 710.6
(c) V1Ω = VTH
1
=
1 + Z TH
+
2.956
2.967 × 10-3
+
s + 0.1998
s
6
Thus, i1Ω = v1Ω(t) = [-2.988 e-2.505×10 t + 2.956 e-0.1998t + 2.967×10-3
+ 21.06 cos(710.6t + 89.92o)] u(t)
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- 26. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
26.
(a)
IC
I
20/s
±
500/s Ω
0.001s Ω
(b) ZTH = 0, VTH = 20/ s V so IN = ∞
⎛ 20 ⎞
⎜ ⎟
s
(c) IC = ⎝ ⎠ = 0.04 A . Taking the inverse transform, we obtain a delta function:
⎛ 500 ⎞
⎜
⎟
⎝ s ⎠
iC(t) = 40δ(t) mA.
This “unphysical” solution arises from the circuit above
attempting to force the voltage across the capacitor to change in zero time.
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- 27. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
VTH
⎛ ⎛ 1⎞
⎞⎛ 1 ⎞
⎜ ⎜ 3 + s ⎟ ||10s ⎟ ⎜
⎟
70
⎛7⎞
⎠
⎟⎜ s ⎟ =
V
= ⎜ ⎟⎜ ⎝
2
⎝ s ⎠ ⎜ 3 + ⎛ 3 + 1 ⎞ ||10s ⎟ ⎜ 3 + 1 ⎟ 60s + 19s + 3
⎜
⎟
⎜
⎟⎝
s⎠
s⎠
⎝
⎝
⎠
ZTH
27.
10 March 2006
⎛ 1 ⎞⎛ 9 + 60s ⎞
⎜ ⎟⎜
⎟
30s ⎞ ⎝ s ⎠⎝ 3 + 10s ⎠
9 + 60s
⎛1⎞ ⎛
Ω
= ⎜ ⎟ || ⎜ 3 +
=
=
⎟
1 9 + 60s
3 + 10s ⎠
60s 2 + 19s + 3
⎝s⎠ ⎝
+
s 3 + 10s
ZTotal =
9 + 60s
420s 4 + 133s3 + 21s 2 + 60s + 9
+7s 2 =
Ω
60s 2 + 19s + 3
60s 2 + 19s + 3
Thus,
⎞
70
60s 2 + 19s + 3
⎛
⎞⎛
I (s) = ⎜
⎟A
⎟⎜
2
4
3
2
⎝ 60s + 19s + 3 ⎠ ⎝ 420s + 133s + 21s + 60s + 9 ⎠
70
=
A
4
3
420s + 133s + 21s 2 + 60s + 9
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- 28. Engineering Circuit Analysis, 7th Edition
28.
Chapter Fifteen Solutions
10 March 2006
We begin by noting that the source is not really a dependent source – it’s value is not
based on a voltage or current parameter. Therefore, we should treat it as an independent
source.
2
(2s + 10)
2
2s + 10
s
Zth = || (2s + 10) =
Ω
= 2
2
s
+ (2s + 10) s + 5s + 1
s
2
⎛
⎞
⎜
⎟ ⎡⎛ 9 ⎞
⎤
90
s
V
Vth = ⎜
⎟ ⎢⎜ ⎟ (10) ⎥ = 2
2 ⎟ ⎣⎝ s ⎠
⎦ s(s + 5s + 1)
⎜ 10 + 2s +
s⎠
⎝
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- 29. Engineering Circuit Analysis, 7th Edition
29.
Chapter Fifteen Solutions
10 March 2006
Beginning with the source on the left (10/s V) we write two nodal equations:
′
V1′ − V2
s
⎛ ′ 10 ⎞ 1
V1′ +
+
= 0
⎜ V1 ⎟
s ⎠ 47000
30303
56 + 336 × 10-6s
⎝
V2′
V2′ − V1′
s
V2′ +
+
= 0
47000 10870
56 + 336 × 10-6s
Solving,
303030(0.3197 ×1013 + 0.1645 ×1011s + 98700s 2 )
′=
V1
s(0.4639 × 1010s3 + 0.7732 ×1015s 2 + 0.5691×1018s + 0.1936 ×1018 )
V2′ =
0.9676 ×1018
s(0.4639 ×1010s3 + 0.7732 ×1015s 2 + 0.5691×1018s + 0.1936 ×1018 )
Shorting out the left source and activating the right-hand source (5 – 3/s) V:
V1′′ − V2′′
1
s
V1′′ +
V1′′ +
= 0
47000
30303
56 + 336 ×10-6s
V2′′ - 5 +
47000
3
s +
V2′′ − V1′′
s
V2′′ +
= 0
10870
56 + 336 ×10-6s
Solving,
V1′′ =
0.9676 ×1017 (5s − 3)
s(0.4639 ×1010s3 + 0.7732 ×1015s 2 + 0.5691×1018s + 0.1936 ×1018 )
7609(705000s3 + 0.1175 × 1012s 2 + 0.6359 × 1014s - 0.3819 ×1014 )
s(0.4639 × 1010s3 + 0.7732 ×1015s 2 + 0.5691×1018s + 0.1936 ×1018 )
Adding, we find that
30303(0.2239 ×1013 + 0.1613 ×1013s + 98700s 2 )
V1 =
s(0.4639 ×1010s3 + 0.7732 ×1015s 2 + 0.5691×1018s + 0.1936 ×1018 )
V2′′ =
V2 =
7609(705000s3 + 0.1175 ×1012s 2 + 0.6359 ×1014s + 0.8897 ×1014 )
s(0.4639 ×1010s3 + 0.7732 × 1015s 2 + 0.5691×1018s + 0.1936 ×1018 )
(b) Using the ilaplace() routine in MATLAB, we take the inverse transform of each:
v1(t) = [3.504 + 0.3805×10-2 e-165928t – 0.8618 e-739t – 2.646 e-0.3404t] u(t) V
v2(t) = [3.496 – 0.1365×10-2 e-165928t + 0.309 e-739t – 2.647 e-0.3404t] u(t) V
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- 30. Engineering Circuit Analysis, 7th Edition
30.
Chapter Fifteen Solutions
10 March 2006
(10/ s)(1/47000) = 2.128×10-4/ s A
(5 – 3/s)/ 47000 = (1.064 – 0.6383/ s)×10-4 A
1.424 ×109
Ω
47000s + 30303
5.109 ×108
Ω
ZR = 47000 || (10870/ s) =
47000s + 10870
ZL = 47000 || (30303/ s) =
Convert these back to voltage sources, one on the left (VL) and one on the right (VR):
⎛ 1.424 ×109 ⎞
3.0303 × 105
-4
VL = (2.128×10 / s ) ⎜
V
⎟ =
⎝ 47000s + 30303 ⎠ s ( 47000s + 30303)
⎛ 5.109 ×108 ⎞
VR = (1.064 – 0.6383/ s)×10-4 ⎜
⎟
⎝ 47000s + 10870 ⎠
54360
32611
=
47000s + 10870 s ( 47000s + 10870 )
Then, I56Ω =
VL − VR
Z L + Z R + 336 × 10-6s +56
= −6250
=
2.555 × 109s 2 - 1.413 × 1010s - 4.282 × 109
s 4.639 × 109 s3 + 7.732 × 1014s 2 + 5.691× 1017s + 1.936 ×1017
(
)
−18
0.208
0.0210 1.533 × 10
−
−
5
s + 1.659 ×10 s + 739 s + 0.6447
2.658 ×10-5 2.755 × 10−18 1.382 ×10−4
+
+
+
s + 0.3404 s + 0.2313
s
Thus,
i56Ω(t) = [0.208 exp(-1.659×105t) – 0.0210 exp(-739t) – 1.533×10-18 exp(-.06447t)
+ 2.658×10-5 exp(-0.3404t) + 2.755×10-18 exp(-0.2313t) + 1.382×10-4] u(t) A.
The power absorbed in the 56-Ω resistor is simply 56 [i56Ω(t)]2 or
56 [0.208 exp(-1.659×105t) – 0.0210 exp(-739t) – 1.533×10-18 exp(-.06447t)
+ 2.658×10-5 exp(-0.3404t) + 2.755×10-18 exp(-0.2313t) + 1.382×10-4]2 W
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- 31. Engineering Circuit Analysis, 7th Edition
31.
Chapter Fifteen Solutions
10 March 2006
(a) Begin by finding ZTH = ZN:
ZTH = 47000 + (30303/ s) || [336×10-6 s + 56 + (10870/ s) || 47000]
=
4.639 ×109s3 + 7.732 ×1014s 2 + 5.691×1017s + 1.936 ×1017
Ω
98700s3 + 1.645 ×1010s 2 + 1.21×1013s + 2.059 ×1012
To find the Norton source value, define three clockwise mesh currents I1, I2 and I3 in the
left, centre and right hand meshes, such that IN(s) = -I1(s) and the 10/s source is replaced
by a short circuit.
(47000 + 30303/ s) I1 - (30303/ s) I2
(10870/ s + 56 + 336×10-6 s + 30303/ s) I2 - (30303/ s) I1 – (10870/ s)I3
(47000 + 10870/ s) I3 - (10870/ s)I2 = -5 + 3/ s
Solving,
2.059 ×1012 (5s - 3)
IN = -I1 =
s(4.639 ×109s3 + 7.732 ×1014s 2 + 5.691×1017s + 1.936 ×1017 )
=0
=0
(b) Isource = (10/ s) (1/ ZTH) - IN(s)
= 0.001(0.4579 × 1013s6 + 0.1526 ×1019s5 + 0.1283 ×10 24s 4 + 0.1792 × 1027s3
+ 0.6306 × 1029s 2 + 0.3667 × 1029s + 0.5183 ×1028 )[s(4639s3 + 0.7732 ×109s 2
+ 0.5691×1012s + 0.1936 ×1012 )(0.4639 ×1010s3 +0.7732 × 1015s 2 + 0.5691× 1018s
+ 0.1936 × 1018 )]-1
Taking the inverse transform using the MATLAB ilaplace() routine, we find that
isource(t) = 0.1382×10-3 + 0.8607×10-8 exp(-165930t) + 0.8723×10-7exp(-739t)
+ 0.1063×10-3 exp(-0.3403t) – 0.8096×10-7 exp(-165930t)
+ 0.1820×10-4 exp(-739t) – 0.5×10-4 exp(-0.3404t)
isource(1.5 ms) = 2.0055×10-4 A = 200.6 μA
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- 32. Engineering Circuit Analysis, 7th Edition
32.
Chapter Fifteen Solutions
10 March 2006
5s
.
s +4
(a) Define four clockwise mesh currents I1, I2, I3 and Ix in the top left, top right, bottom
left and bottom right meshes, respectively. Then,
We begin by shorting the 7 cos 4t source, and replacing the 5 cos 2t source with
5s
s +4
0
0
0
V1′
2
= (12 + 1/2s) I3 – 7 I1 – (1/ 2s) Ix
[1]
=
=
=
=
2
[2]
[3]
[4]
[5]
-4 Ix + (9.5 + s) I1 – s I2 – 7 I3
(3 + s + 2/ s) I2 – s I1 – 3 Ix
(4 + 3s + 1/2s) Ix – 3 I2 – (1/2s) I3
(I3 – Ix) (2s)
Solving all five equations simultaneously using MATLAB, we find that
V1′ =
20s3 (75s3 + 199s 2 + 187s + 152)
1212s6 + 3311s5 + 7875s 4 + 15780s3 + 12408s 2 + 10148s + 1200
7s
.
s + 16
Define four clockwise mesh currents I1, I2, I3 and Ix in the bottom left, top left, top right
and bottom right meshes, respectively (note order changed from above). Then,
Next we short the 5 cos 2t source, and replace the 7 cos 4t source with
0 = (12 + 1/2s) I1 – 7 I2 – (1/ 2s) Ix
0 = -4 Ix + (9.5 + s) I2 – s I3 – 7 I1
−
7s
= (3 + s + 2/ s) I3 – s I2 – 3 Ix
s + 16
0 = (4 + 3s + 1/2s) Ix – 3 I3 – (1/2s) I1
V1′′ = (I1 – Ix) (2s)
2
2
[1]
[2]
[3]
[4]
[5]
Solving all five equations simultaneously using MATLAB, we find that
V1′′ =
-56s 4 (21s 2 - 8s - 111)
1212s 6 + 3311s5 + 22420s 4 + 55513s3 + 48730s 2 + 40590s + 4800
(
)
The next step is to form the sum V1(s) = V1′ + V1′′ , which is accomplished in MATLAB
using the function symadd(): V1 = symadd(V1prime, V1doubleprime);
V1(s) =
(
4s3 (81s5 + 1107s 4 + 7313s3 + 17130s 2 + 21180s + 12160)
s 2 + 4 1212s 6 + 3311s5 + 22420s 4 + 55513s 3 + 48730s 2 + 40590s + 4800
)(
)
(b) Using the ilaplace() routine from MATLAB, we find that
v1(t) = [0.2673 δ(t) + 6.903×10-3 cos 2t – 2.403 sin 2t – 0.1167 e-1.971t
– 0.1948 e-0.3315t cos 0.903t + 0.1611 e-0.3115t sin 0.903t – 0.823×10-3 e-0.1376t
+ 3.229 cos 4t + 3.626 sin 4t] u(t) V
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- 33. Engineering Circuit Analysis, 7th Edition
33.
Chapter Fifteen Solutions
10 March 2006
(a) We can combine the two sinusoidal sources in the time domain as they have the same
frequency. Thus, there is really no need to invoke source transformation as such to find
the current.
65 cos 103t ⇔
65s
, and 13 mH → 0.013s Ω
s + 106
2
We may therefore write
1
5000s
⎛ 65s ⎞ ⎛
⎞
I(s) = ⎜ 2
⎟ = 2
6 ⎟⎜
⎝ s + 10 ⎠ ⎝ 83 + 0.013s ⎠ ( s + 106 ) ( s + 6385 )
=−
0.7643
0.3869∠ − 8.907 o 0.3869∠8.907o
+
+
( s + 6385)
s - j103
s + j103
(
)
(
)
(b) Taking the inverse transform,
i(t) = [-0.7643 e-6385t + 0.7738 cos (103t – 8.907o)] u(t) A
(c) The steady-state value of i(t) is simply 0.7738 cos (103t – 8.907o) A.
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- 34. Engineering Circuit Analysis, 7th Edition
34.
Chapter Fifteen Solutions
10 March 2006
(a)
7s
7
=
2
2
s 3s − 9s + 4
3 s − 3s + 4
(
Poles at
)
(
3
)
=
7
3
⎛ 3
11 ⎞ ⎛ 3
11 ⎞
⎟
⎜s − +
⎟⎜s − −
12 ⎠ ⎝ 2
12 ⎠
⎝ 2
3
11
±
, double zero at ∞ .
2
12
( s + 1)( s − 1)
s2 − 1
(b) 2
=
( s + 2s + 4 )( s2 + 1) s + 1 + j 3 s + 1 − j 3 ( s + j )(s − j )
(
)(
)
Zeroes at s = –1, + 1, ∞
Poles at −1 + j 3, − 1 − j 3, ± j
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- 35. Engineering Circuit Analysis, 7th Edition
35.
Chapter Fifteen Solutions
10 March 2006
(a)
3s 2
3s
=
2
s s + 4 ( s − 1) ( s + j 2 )( s − j 2 )( s − 1)
(
)
Poles at ± j 2, 1 ; zeroes at s = 0, ∞ .
s 2 + 2s − 1
=
(b) 2
s 4s 2 + 2s + 1 s 2 − 1
(
)(
)
(s + 1 + 2 )(s + 1 − 2 )
⎛ 1
3 ⎞⎛ 1
3⎞
s2 ⎜ s + + j
⎟⎜ s + − j
⎟ ( s + 1)( s − 1)
4
4 ⎠⎝ 4
4 ⎠
⎝
1
3
Poles at s = ±1, − ± j
, double at s = 0
4
4
Zeroes at −1 ± j 2, ∞
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- 36. Engineering Circuit Analysis, 7th Edition
36.
(a)
Chapter Fifteen Solutions
10 March 2006
5⎞
⎛
⎜ 5 + ⎟ (2 + 5s) (5s + 5)(2 + 5s) 25s 2 + 35s + 10
s⎠
Z in = ⎝
=
=
5s + 7 + 5 / s
5s 2 + 7s + 5
5s 2 + 7s + 5
5s 2 + 7s + 5
∴ Yin (s) =
25s 2 + 35s + 10
−1.4 ± 1.96 − 1.6
= −1, − 0.4s −1
2
−1.4 ± 1.96 − 4
Zeros: s 2 + 1.4s + 1 = 0, s =
= −0.7 ± j 0.7141s −1
2
(b)
Poles: s 2 + 1.4s + 0.2 = 0, s =
(c)
Poles: same; s = -1, -0.4 s-1
(d)
Zeros: same; s = −0.7 ± j 0.7141 s −1
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- 37. Engineering Circuit Analysis, 7th Edition
37.
Chapter Fifteen Solutions
10 March 2006
(a) Regarding the circuit of Fig. 15.45, we replace each 2-mF capacitor with a 500/ s Ω
impedance. Then,
500 ⎞⎛
500 ⎞
⎛
⎜ 20 +
⎟⎜ 40 +
⎟
(s + 25)(s + 12.5)
s ⎠⎝
s ⎠
⎝
Zin(s) =
= 13.33
100
s(s + 1.667)
60 +
s
Reading from the transfer function, we have
zeros at s = -25 and -12.5 s-1, and
poles at s = 0 and s = -1.667 s-1.
(b) Regarding the circuit of Fig. 15.47, we replace the 2-mF capacitor with a 500/ s Ω
impedance and the 1-mH inductor with a 0.001s-Ω impedance. Then,
500 ⎞
⎛
500
(s +
)(s + 105 )
⎜ 55 +
⎟ (100 + 0.001s )
s ⎠
⎝
55
= 55
Zin(s) =
500
s + 1.55 ×105 ) (s + 3.226)
(
155 +
+ 0.001s
s
Reading from the transfer function, we have
zeros at s = -9.091 and -105 s-1,
and
5
poles at s = -1.55×10 and s = -3.226 s-1.
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- 38. Engineering Circuit Analysis, 7th Edition
38.
Y(s) : zeros at s = 0; − 10;
(a)
Y (s) =
Chapter Fifteen Solutions
10 March 2006
poles at s = −5, − 20 s −1 ; Y(s) → 12 S as s → ∞
Ks(s + 10)
, K = 12 ∴
(s + 5)(s + 20)
12s(s + 10)
12s 2 + 120s
= 2
(s + 5)(s + 20) s + 25s + 100
−1200 + j1200
∴ Y ( j10) =
= 4.800 + j 4.800 = 6.788∠45° S
−100 + j 250 + 100
Y (s) =
(b)
Y ( − j10) = 6.788∠ − 45° S
(c)
Y(−15) =
(d)
5 + Y (s) = 5 +
12(−15)(−5)
= − 18 S
(−10)5
−245 ± 2452 − 68(500)
12s 2 + 120s
17s 2 + 245s + 500
=
,s=
(s + 5)(s + 20)
34
s 2 + 25s + 100
Zeros: s = −2.461 and − 11.951 s -1 ; Poles: s = −5, − 20 s -1
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- 39. Engineering Circuit Analysis, 7th Edition
39.
Chapter Fifteen Solutions
10 March 2006
1
1
0.2(6s + 9)
5(s + 1)(s + 4)
+
=
∴ Zin =
4 + s 5 + 5s (4 + s)(1 + s)
6(s + 1.5)
(a)
Yin =
(b)
Poles: s = − 1.5, ∞; Zeros: s = -1, -4 s-1
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- 40. Engineering Circuit Analysis, 7th Edition
40.
H(s) =
Chapter Fifteen Solutions
10 March 2006
s+2
(s + 5)(s 2 + 6s + 25)
(a) δ(t) ⇔ 1, so the output is
s+2
(s + 5)(s 2 + 6s + 25)
(b) e-4t u(t) ⇔ 1 / (s + 4), so the output is
(c) 2 cos 15t u(t) ⇔
s+2
(s + 4)(s + 5)(s 2 + 6s + 25)
2s ( s + 2 )
2s
, so the output is 2
(s + 225)(s + 5)(s 2 + 6s + 25)
s + 225
2
(d) t e-t u(t) ⇔ 1/ (s + 1), so the output is
s+2
(s + 1)(s + 5)(s 2 + 6s + 25)
(e) poles and zeros of each:
(a): zero at s = -2, poles at s = -5, -3 ± j4
(b): zero at s = -2, poles at s = -4, -5, -3 ± j4
(c): zeros at s = 0, -2, poles at s = ± j15, -5, -3 ± j4
(d): zero at s = -2, poles at s = -1, -5, -3 ± j4
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- 41. Engineering Circuit Analysis, 7th Edition
41.
h(t) = 5 [u(t) – u(t – 1)] sin πt
y(t) =
∫
∞
0−
Chapter Fifteen Solutions
10 March 2006
x(t) = 2[u(t) – u(t – 2)]
h(λ ) x ( t − λ ) d λ
t < 0: y(t) = 0
0 < t < 1: y(t) =
1 < t < 2: y(t) =
2 < t < 3: y(t) =
t
∫ 10sin πλ d λ
0
1
∫ 10sin πλ d λ
0
∫
1
t −2
= =
10
λ
t
cos πλ
=
0
10
π
(1 − cos π t )
20
π
10sin πλ d λ = -
10
π
1
cos πλ
= t −2
10
π
[ −1 − cos(π t − 2π )]
= (10/ π) (1 + cos πt)
t > 3: y(t) = 0
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- 42. Engineering Circuit Analysis, 7th Edition
42.
Chapter Fifteen Solutions
10 March 2006
f1(t) = e-5t u(t), f2(t) = (1 – e-2t) u(t)
(a) f1 * f2 =
∫
∞
0-
f1 ( λ ) f 2 ( t − λ ) d λ
t < 0: f1 * f2 = 0
t > 0: f1 * f2 =
∫
t
-
0
(
)
e −5λ 1 − e2λ − 2t d λ =
1
= − e−5λ
5
t
0
1
+ e−2t e−3λ
3
t
0
∫ (e
t
0-
−5 λ
)
− e−2t e−3λ d λ
1
⎛1 2
⎞
= ⎜ + e−5t − e −2t ⎟ u (t )
3
⎝ 5 15
⎠
(b) F1(s) = 1/ (s + 5), F2(s) = 1/s – 1/ (s + 2)
1
1
a
b
c
−
=
+
+
F1(s) F2(s) =
s ( s + 5)
s
s+2
s+5
( s + 5)( s + 2 )
Where a = 0.2, b = -1/3, and c = -1/5 + 1/3 = 2/15.
1
⎛1 2
⎞
Taking the inverse transform, we find that f1 * f2 = ⎜ + e −5t − e −2t ⎟ u (t )
3
⎝ 5 15
⎠
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- 43. Engineering Circuit Analysis, 7th Edition
43.
Chapter Fifteen Solutions
10 March 2006
The impulse response is vo(t) = 4u(t) – 4u(t – 2) V,
so we know that h(t) = 4u(t) – 4u(t – 2). vi(t) = 2u(t - 1), and vo(t) = h(t) * vi(t).
∞
∞
∫ h(λ )v ( t − λ ) d λ = 8∫ [u(λ ) − u(λ − 2)] u ( t − λ − 1) d λ
8∫ [1 − u (λ − 2)] u ( t − λ − 1) d λ .
[1]
Thus, vo(t) =
or vo(t) =
i
0
∞
0
0
For λ > 2, this integral is zero.
Also, the second step function results in a zero value for the integral except
when t – λ – 1 > 0, or λ < t – 1.
With a lower limit of λ = 0, this means that t > 1. When t > 3, however, we do not must
be careful to constrain λ to less than 2, so we split the integration into two parts:
1 < t < 3: vo =
t > 3: vo =
∫
2
0
∫
t −1
0
8 d λ = 8t − 8 V
8 d λ = 16 V
vo (V)
16
and, of course, for t < 1, the output is zero.
1
3
t (s)
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- 44. Engineering Circuit Analysis, 7th Edition
44.
Chapter Fifteen Solutions
10 March 2006
h(t) = 2e-3t u(t), x(t) = u(t) – δ(t)
(a) y(t) =
∫
∞
0−
h(λ ) x(t − λ )d λ
t < 0 : y (t ) = 0
t
⎡ 1
t
t > 0 : y (t ) = 2 ∫ − e −3λ [1 − δ (t − λ ) ] d λ = 2 ⎢ - e −3λ u (t )
0
⎢ 3
0
⎣
2
⎛2 8
⎞
= (1 − e −3t )u (t ) − 2e−3t u (t ) = ⎜ − e−3t ⎟ u (t )
3
⎝3 3
⎠
(b)
H (s) =
2
s+3
thus, Y(s) =
⎤
- e−3t u (t ) ⎥
⎥
⎦
1
-1
s
2 ⎛1⎞
8⎛ 1 ⎞
= ⎜ ⎟ - ⎜
⎟
3⎝s⎠
3⎝ s + 3⎠
X(s) =
2 (1 - s )
s ( s + 3)
Taking the inverse transform, we find that y(t) =
2
8 −3 t
u (t ) −
e u (t )
3
3
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- 45. Engineering Circuit Analysis, 7th Edition
45.
Chapter Fifteen Solutions
h(t) = 5 u(t) - 5 u(t – 2), so H(s) =
10 March 2006
5
- 5e-2s
s
(a) vin(t) = 3δ(t), so Vin(s) = 3
Vout(s) = Vin(s) H(s) =
15
- 15e-2s . vout(t) = L-1{Vout(s)} = 15 u(t) – 15 u(t - 2)
s
(b) vin(t) = 3u(t), so Vin(s) =
3
s
⎛ 3⎞⎛ 5
⎞ 15 15 -2s
Vout(s) = Vin(s) H(s) = ⎜ ⎟ ⎜ - 5e-2s ⎟ = 2 e .
s
⎝ s ⎠⎝ s
⎠ s
vout(t) = L-1{Vout(s)} = 15 t u(t) – 15 u2(t - 2) = 15 t u(t) – 15 u (t - 2)
(c) vin(t) = 3u(t) – 3u(t – 2), so Vin(s) =
3
- 3e-2s
s
⎛3
⎞⎛ 5
⎞ 15 30 -2s
Vout(s) = Vin(s) H(s) = ⎜ - 3e -2s ⎟ ⎜ - 5e-2s ⎟ = 2 e + 15e −4s .
s
⎝s
⎠⎝ s
⎠ s
-1
2
2
vout(t) = L {Vout(s)} = 15 t u(t) – 30 u (t - 2) + 15 u (t – 4)
= 15 t u(t) – 30 u (t - 2) + 15 u(t)
(d) vin(t) = 3 cos 3t, so Vin(s) =
3s
s +9
2
15
15s -2s
- 2
e .
s +9 s +9
vout(t) = L-1{Vout(s)} = 5 sin 3t u(t) – 15 cos [3(t – 2)] u(t - 2)
Vout(s) = Vin(s) H(s) =
2
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- 46. Engineering Circuit Analysis, 7th Edition
46.
Chapter Fifteen Solutions
10 March 2006
(a) Since vo(t) = vin(t), H(s) = 1. Thus, h(t) = δ(t).
∞
∞
−∞
−∞
(b) vo (t ) = ∫ vin ( x)h(t − x)dx = ∫ vin ( x)δ (t − x)dx = vin (t ) = 8u (t ) V
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- 47. Engineering Circuit Analysis, 7th Edition
47.
Chapter Fifteen Solutions
10 March 2006
(a) Since vo(t) = vin(t), H(s) = 1. Thus, h(t) = δ(t).
∞
∞
−∞
−∞
(b) vo (t ) = ∫ vin ( x)h(t − x)dx = ∫ vin ( x)δ (t − x)dx = vin (t ) = 8e−t u (t ) V
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- 48. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
48.
I in =
Vin
=
Vin
10 20(20 + 10 / s)
+
s
40 + 10 / s
10
10 ⎞
⎛
+ 20 20 ⎜ 20 + ⎟
s
s ⎠
⎝
Vin
Vin
40s 2 + s
=
=
= Vin
10 40s + 20 40s 2 + 60s + 10
40s 2 + 60s + 10
+
s
4s + 1
4s 2 + s
20
2s
2s 2
;
∴ I top = I in
= I in
= Vin
10
4s + 1
40s 2 + 60s + 10
40 +
s
⎡ 4s + 1
⎤
10
4s 2
Vout =
I in + 20I top = Vin ⎢ 2
+ 2
⎥∴
s
4s + 6s + 1 4s + 6s + 1 ⎦
⎣
H (s) =
Vout 4s 2 + 4s + 1
s 2 + s + 0.25
(s + 0.5) 2
= 2
= 2
=
∴
Vin
4s + 6s + 1 s + 1.5s + 0.25 (s + 0.19098)(s + 1.3090)
zeros: s = −0.5, s = −0.5; poles: s = −1.3090, − 0.19098
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- 49. Engineering Circuit Analysis, 7th Edition
49.
(a)
Chapter Fifteen Solutions
10 March 2006
H (s) = V2 (s) / V1 (s), H(0) = 1
∴ H(s) =
K(s + 2)
K(s + 2)
= 2
(s + 1 + j 4)(s + 1 − j 4) s + 2s + 17
K
, so K=8.5
17
8.5(s + 2)
Thus, H(s) = 2
s + 2s + 17
8.5(σ + 2)
Let ω = 0 ∴ H (σ) = 2
σ + 2σ + 17
1= 2
(b)
(c)
H ( j ω) = 8.5
ω2 + 4
(17 − ω2 ) 2 + 4ω2
By trial & error: H ( jω) max = 4.729 at ω = 4.07 rad/s
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and educators for course preparation. If you are a student using this Manual, you are using it without permission.
- 50. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
50. (a) pole-zero constellation
10 March 2006
(b) elastic-sheet model
jω
X
(2 zeros)
3
2
σ
O
-1
X
−
3
2
( s + 1)
( s + 1)
2
⎛
3 ⎞⎛
3⎞
⎜ s + 0.5 + j
⎟ ⎜ s + 0.5 - j
⎟
(c) H(s) =
2 ⎠⎝
2 ⎠
⎝
s 2 + 2s + 1
s
= 2
=1+ 2
s + s+1
s + s+1
=
2
s2 + s + 1
We can implement this with a 1-Ω resistor in series with a network having the impedance
given by the second term. There are two energy storage elements in that network (the
denominator is order 2). That network impedance can be rewritten as
s
1
, which can be seen to be equal to the parallel combination of a 1-Ω
=
2
s + s + 1 s +1+ 1
s
resistor, a 1-H inductor, and a 1-F capacitor.
1Ω
1Ω
1H
1F
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- 51. Engineering Circuit Analysis, 7th Edition
51.
(a)
Chapter Fifteen Solutions
10 March 2006
H (s) = (10s 2 + 55s + 75) /(s 2 + 16)
H (s) = 10
(s + 3)(s + 2.5)
. Critical frequencies: zeros at –3, -2.5; poles at ± j4.
( s + j 4 )( s − j 4 )
jω
X 4
OO
3 2
σ
1
X -4
75
= 4.688, H (∞ ) = 10
16
(b)
H (0) =
(c)
H (0) = 4.679 K = 3, so K = 0.64
∴ H ( j 3) = 0.64
−90 + 75 + j165 0.64
=
−15 + j165 = 15.15 cm
7
7
(d)
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- 52. Engineering Circuit Analysis, 7th Edition
52.
Chapter Fifteen Solutions
10 March 2006
( s + 0.5 + j 0.3873)( s + 0.5 - j 0.3873)
5s 2 + 5s + 2
(a) Y (s) =
=
2
5s + 15s + 2
( s + 2.86 )( s + 0.1399 )
Zeros: s = -0.5 ± j0.3873
Poles: s = -2.86, s = -0.1399
jω
+1
O
X
-3
X
-2
-1 O
σ
-1
(b) elastic sheet model
(c) lattitude 5o5’2”, longitude 5o15’2” puts it a little off the coast of Timbuktu.
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- 53. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
I0
; H(−2) = 6
IM
53.
H(s) =
(a)
(s − 1)(s + 1)(s + 3)
(s + 3 + j 2)(s + 3 − j 2)
(−3)(−1)K
3K
=
∴ K = 10,
H (−2) = 6 =
(1 + j 2)(1 − j 2)
5
H (s) = K
Thus, H (s) = 10
(b)
(c)
H (0) = −
(s 2 − 1)(s + 3) 10s3 + 30s 2 − 10s − 30
=
s 2 + 6s + 13
s 2 + 6s + 13
30
= −2.308, H (∞ ) = ∞
13
1: ( s − 1) = ( j 2 − 1) = 2.236∠116.57°
−1: ( s + 1) = ( j 2 + 1) = 2.236∠63.43°
−3 : ( s + 3) = j 2 + 3 = 3.606∠33.69°
−3 − j 2 : j 2 + 3 + j 2 = 5.000∠53.13°
−3 + j 2 : j 2 + 3 − j 2 = 3∠0°
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- 54. Engineering Circuit Analysis, 7th Edition
54.
Chapter Fifteen Solutions
10 March 2006
Z A : zero at s = −10 + j 0; Z A + 20 : zero at s = −3.6 + j 0
R/sC
R
1/ C
5s + 5 / RC + 1/ C
= 5+
= 5+
=
sCR + 1
s + 1/ RC
s + 1/ RC
R + 1/ SC
5(s + 1/ RC + 1/ 5C)
∴ ZA =
s + 1/ RC
1
1
+
= 10
Thus, using the fact that Z A = 0 at s = -10, we may write
RC 5C
25 1 25 ⎛ s + 1 + 1 ⎞
+
25s +
⎜
⎟
1/ C
RC 25C ⎠
RC C = ⎝
=
Also, Z B = 25 +
1
s + 1/ RC
s + 1/ RC
s+
RC
1
1
4
∴
+
= 3.6 or
= 6.4,
RC 25C
25C
1
C=
= 25 mF,
40
40 40
40
+
= 10,
= 2, so R = 20 Ω
R
5
R
∴ ZA = 5 +
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- 55. Engineering Circuit Analysis, 7th Edition
55.
zero at s = -2, poles at s =
10 March 2006
H (s) = 100(s + 2) /(s 2 + 2s + 5)
(a)
Chapter Fifteen Solutions
−2 ± 4 − 20
= −1 ± j 2
2
X
j2
1
X
-j2
O
3 2
100(2 + j ω)
(5 − ω2 ) + j 2ω
(b)
H ( j ω) =
(c)
H( j ω) = 100
ω2 + 4
ω4 − 6ω2 + 25
(d)
(e)
H ( j ω)
2
2
d H ( j ω)
ω2 + 4
(ω4 − 6ω2 + 25)2ω − (ω2 + 4)(4ω3 − 12ω)
= 4
=
,
10 000
dω
etc
ω − 6ω2 + 25
4
2
2
2
4
2
4
∴ ω − 6ω + 25 = (ω + 4)(2ω − 6), ω − 6ω + 25 = 2ω + 2ω2 − 24, ω4 + 8ω2 − 49 = 0
∴ ω2 =
−8 ± 64 + 196
= 4.062 ∴ ωmar = 2.016 rad/s, H( j 2.016) = 68.61
2
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- 56. Engineering Circuit Analysis, 7th Edition
10 March 2006
5s + 20
Ω
s+2
56.
Z in (s) =
(a)
vab (0) = 25 V; Zin (s) =
∴ H (s) =
(b)
Chapter Fifteen Solutions
5(s + 4)
, Vab = Zin I in
s+2
5(s + 4)
, single pole at s = −2 ∴ vab (t ) = 25e −2t V, t > 0
s+2
iab (0) = 3A ∴ I ab =
Vs
I
s+2
1
∴ H (s) = ab =
=
single pole at s = −4
Zin
Vin Zin 5(s + 4)
∴ iab (t ) = 3e−4t A, t > 0
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- 57. Engineering Circuit Analysis, 7th Edition
57.
10 March 2006
Z in (s) = 5(s 2 + 4s + 20) /(s + 1)
(a)
Chapter Fifteen Solutions
vab = 160e−6t V ∴ Vab = 160 V, s = −6
Ia =
(b)
Vab
160(s + 1)
32(−5)
=
=
= −5 A ∴ ia (t ) = −5e−6t A (all t )
2
Zin 5(s + 4s + 20) 3b − 24 + 20
vab = 160e−6t u (t ), ia (0) = 0, ia′ (0) = 32 A/s ∴ H (s) =
s=
Ia
1
s +1
=
=
2
Vs Zin 5(s + 4s + 20)
−4 ± 16 − 80
= −2 ± j 4 ∴ ia (t ) = −5e −6t + e−2t (A cos 4t + Bsin 4t ) ∴ 0 = −5 + A, A = 5
2
ia′ (0) = 32 = 30 − 10 + 4B ∴ B = 3 ∴ ia (t ) = [−5e −6t + e−2t (5cos 4t + 3sin 4t )] u (t ) A
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- 58. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
58.
0.5
250s
= 2
0.5 + 0.002s + 500 / s s + 250s + 25 000
(a)
H (s) = I c / I s =
(b)
s=
1
(−250 ± 62 500 − 106 ) = −125 ± j 484.1s −1
2
(c)
α=
R
0.5
=
= 125 s -1 , ωo = 106 /4= 500 s -1 , ωd = 25×104 -15,625 = 484.1 s -1
2L 0.004
(d)
I s = 1, s = 0 ∴ I c = 0 ∴ icf = 0
(e)
ic ,n = e−125t ( A cos 484t + Bsin 484t )
(f)
iL (0) = 0 ∴ ic (0+ ) = 0, vc (0) = 0 ∴1×
(g)
∴ A = 0, 484B = 250, B = 0.5164 ∴ ic (t ) = (0.5164e −125t sin 484.1t ) u (t ) A
1
= 2 × 10−3 i (0+ ) + 0 ∴ i (0+ ) = 250 A/s
2
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- 59. Engineering Circuit Analysis, 7th Edition
59.
(a)
H (s) = I in / Vin =
∴s =
(b)
Chapter Fifteen Solutions
10 March 2006
1
1
10s + 20
=
=
2
Zin 50 + 6s(4s + 20) 24s + 620s + 1000
10s + 20
1
(−620 ± 6202 − 96, 000) = −1.729 and − 24.10 s-1
48
Note that the element labeled 6 H should be an inductor, as is suggested by the context of
the text (i.e. initial condition provided). Convert to s-domain and define a clockwise mesh
current I2 in the right-hand mesh.
Iin
500
V
s
4s Ω
6s Ω
-30 V
Mesh 1: 0 = -500/ s + (50 + 6s) Iin – 30 - 6s I2
Mesh 2: 0 = 30 + (20 + 10s) I2 – 6s Iin – 8
Solving, we find that
I in =
=
-8 V
[1]
[2]
42s 2 + 1400s + 2500
7s 2 + 233.3s + 416.7
=
s ( s + 24.10 )( s + 1.729 )
s 6s 2 + 155s + 250
(
)
a
b
c
+
+
s ( s + 24.10 ) ( s + 1.729 )
where a = 10, b = -2.115 and c = -0.8855. Thus, we may write
iin(t) = [10 – 2.115 e-24.10t – 0.885 e-1.729t] u(t) A
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- 60. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
60.
(a)
H (s) =
V
50(1000 / s)
1000
=
=
I s 50 + (1000 / s) s + 20
(b)
Is =
a=
2
2000
a
b
⎛ 2 ⎞ ⎛ 1000 ⎞
so V (s) = ⎜ ⎟ ⎜
⎜ ( s + 20 ) ⎟ = s ( s + 20 ) = s + s + 20
⎟
s
⎝ s ⎠⎝
⎠
2000
2000
= 100; b = a =
= −100
( s + 20 ) s=0
( s ) s=−20
Thus, V (s) =
(c)
100
100
and v (t ) = 100 ⎡1 - e-20t ⎤ u (t ) V
⎣
⎦
s
s + 20
This function as written is technically valid for all time (although that can’t be possible
physically). Therefore, we can’t use the one-sided Laplace technique we’ve been
studying. We can, however, use simple s-domain/ complex frequency analysis:
is = 4e −10t A ∴ I s = 4 A, s = 10 ∴ V = 4H (−10) = 4 ×
1000
= 400 V ∴
10
v(t ) = 400e −10t V (all t )
(d)
4e-10t u(t) ⇔
a
b
4
⎛ 4 ⎞ ⎛ 1000 ⎞
, so V(s) = ⎜
+
⎟⎜
⎟ =
s + 10
s + 20
s + 10
⎝ s + 10 ⎠ ⎝ s + 20 ⎠
a = 400 and b = -400, so v(t) = 400 [e-10t – e-20t] u(t) V
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- 61. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
61.
(a)
(b)
100 ⎞ 25
⎛
100
⎜ 20 +
⎟
V
(20s + 100)25 ⎤
s ⎠ s ⎡
s
/ ⎢50 +
×⎝
H (s) = c 2 =
125
Vs 20 + 100
s(20s + 125) ⎥
⎣
⎦
20 +
s
s
2500
s(20s + 125)
∴ H (s) =
2
s(20s + 125) 1000s + 6250s + 500s + 2500
2.5
∴ H (s) = 2
s + 6.75s + 2.5
1
No initial energy stored in either capacitor. With vs = u(t), Vs(s) = , so
s
2.5
a
b
c
= +
VC2 =
+
s ( s + 6.357 )( s + 0.3933) s
s + 6.357
s + 0.3933
Where a = 1, b = 0.06594 and c = -1.066. Thus,
vC2(t) = [1 + 0.06594 e-6.357t – 1.066 e-0.3933t ] u(t) V
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- 62. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
62.
Zin (s) =
1
=
1
1
0.05s
0.1 + 0.025s +
20 + (80 / s)
s+4
40(s + 4)
40(s + 4)
s+4
=
= 2
=
Ω
2
0.025s + 0.25s + 0.4 s + 10s + 16 (s + 2)(s + 8)
0.1 + 0.025s +
20u(t) ⇔
20
b
c
⎛ 20 ⎞ ⎡ 40(s + 4) ⎤ a
, so Vin(s) = ⎜ ⎟ ⎢
⎥= s + s+2 + s+8
s
⎝ s ⎠ ⎣ (s + 2)(s + 8) ⎦
a = 200, b = -133.3 and c = -66.67, so vin(t) = [200 – 133.3 e-2t – 66.67 e-8t] u(t) V
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- 63. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
63.
H (s) = −
Zf
Z1
(a)
108
5000
5000s
, Z f = 5000 ∴ H(s) = −
=−
8
s
1000 + (10 / s)
1000s + 108
−5s
∴ H( s) =
s + 105
(b)
Z1 = 5000, Z f = 103 + 108 / s ∴ H(s) = −
(c)
Z1 = 103 + 108 / s, Z f = 104 + 108 / s ∴ H(s) = −
Z1 = 103 +
103 + 108 / s
1000s + 108
R + 105
=−
=−
5000
5000s
5s
104 + 108 / s
104 s + 108
10s + 105
=−
=−
1000 + 108 / s
1000s + 108
s + 105
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- 64. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
64.
R f = 20 kΩ, H (s) =
⎛
Vout
1 ⎞
= − R f C1 ⎜ s +
⎟
R1C1 ⎠
Vin
⎝
⎛
1 ⎞
∴ H (s) = − 2 × 104 C1 ⎜ s +
⎟
R1C1 ⎠
⎝
(a)
(b)
(c)
2 × 104
H (s) = −50 ∴ C1 = 0,
= 50, R1 = 400 Ω
R1
⎛
1 ⎞
4
−3
H (s) = −10−3 (s + 104 ) = −2 × 104 C1 ⎜ s +
⎟ ∴ 2 × 10 C1 = 10
R1C1 ⎠
⎝
1
∴ C1 = 50 nF;
= 104 , so R1 = 2 k Ω
−9
50 × 10 R1
⎛
1 ⎞
4
−4
H (s) = −10−4 (s + 1000) = −2 ×104 C1 ⎜ s +
⎟ ∴ 2 × 10 C1 =10 , C1 = 5 nF
⎝ R1C1 ⎠
1
1
= 103 ∴ R 1 =
= 200 kΩ
-9
R1C1
5 ×10 103
(
(d)
)( )
Stage 1:
Need a simple inverting amplifier with gain of –1, so select C1 = 0, and
R1 = Rf = 20 kΩ.
Stage 2:
-103 = -2‰104C1 C1 =
1
= 105
R1C1
∴ R1 =
103
= 50 mF
2 ×104
(
1
50 ×10-3 105
)( )
= 200 μΩ
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- 65. Engineering Circuit Analysis, 7th Edition
65.
(a)
H (s) =
H (s) =
Vout
Vin
−1/ R1C f
s + 1/ R f C f
H (s) = −
Cf =
(c)
10 March 2006
= −50,
, R f = 20 kΩ
set C f = 0 ∴ −50 = −
(b)
Chapter Fifteen Solutions
Rf
R1
∴ R1 =
20 × 103
= 400 Ω
50
1/ R1C f
1000
1
=
∴10 000 =
20 000 C f
s + 10 000 s + 1/ 20 000 C f
1
1
= 5 nF We may then find R1 : 1000 =
∴ R1 = 200 kΩ
8
2 × 10
5 × 10−9 R1
H (s) = −
1/ R1C f
10 000
1
C f = 50 nF
=
∴1000 =
20 000 C f
s + 1000 s + 1/ 20 000 C f
1
= 1000, R1 = 200 kΩ
5 × 10−9 R1
(d)
H (s) =
Vout
100
=
Vin
s + 105
1
⎡
R1A CfA
⎢=
⎢ s+ 1
R fA CfA
⎢
⎣
1
⎤⎡
⎤
R1B CfB ⎥
⎥ ⎢=
⎥⎢ s + 1
⎥
R fB CfB ⎥
⎥⎢
⎦⎣
⎦
R fB
= 100
We may therefore set
R1B R1A CfA
and 1
R fA CfA
1
⎡
R1A CfA
⎢⎢ s+ 1
R fA CfA
⎢
⎣
⎤
⎥ ⎡ - R fB ⎤
⎥ ⎢ R1B ⎥
⎦
⎥⎣
⎦
= 105. Arbitrarily choosing R fA = 1 kΩ, we find that CfA = 10 nF.
Arbitrarily selecting R fB = 100 Ω, we may complete the design by choosing
R1B = R1A = 10 kΩ
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- 66. Engineering Circuit Analysis, 7th Edition
Chapter Fifteen Solutions
10 March 2006
66.
−10−4 s(s + 100) [−K A s][− K B (s + 100)]
=
H (s) =
KC ⎞
s + 1000
⎛
⎜ − s + 1000 ⎟
⎝
⎠
Let H A (s) = −K A s . Choose inverting op amp with parallel RC network at inverting input.
0=
V
-Vi
(1+ sC1A ) - o
R1A
Rf a
∴ H A (s) = −
R fA
R1 A
(1 + sR1 A C1 A ) =
−
R fA
R1 A
− sR fA C1 A = −K A s. Set R1A = ∞. Then
− R fA C1 A s = −104 C1 A s
Same configuration for H B (s) ∴ H B (s) = − K B (s + 100) = −
R fB
R1B
(1 + sR1B C1B )
For the last stage, choose an inverting op amp circuit with a parallel RC circuit in the feedback loop.
R fC
1
1
= −
Let H C (s) = − K C
R1C (1 + sR FC C FC )
s + 1000
Cascading these three tranfer functions, we find that
⎡ ⎛
R ⎞⎤ ⎡ ⎛ R
HA HB HC = ⎡ −sR fA C1 A ⎤ ⎢ − ⎜ R fB C1B s + fB ⎟ ⎥ ⎢ − ⎜ fC
⎣
⎦
R 1B ⎠ ⎦ ⎢ ⎝ R 1C
⎣ ⎝
⎣
⎤
⎞
1
⎥
⎟
⎠ R fc Cfc s + 1 ⎥
⎦
Choosing all remaining resistors to be 10 kΩ, we compare this to our desired transfer function.
(Rfc Cfc)-1 = 1000 so Cfc = 100 nF
R fB
= 100 so C1B = 1 μF.
Next,
R1B R fB C1B
Finally, RfAC1ARfBC1BRfC (R1CRfCCfC) = 10-4, so C1A = 1 nF
Rfa
Rfc
Rfb
R1a
R1b
C1a
C1b
Cfc
R1c
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- 67. Engineering Circuit Analysis, 7th Edition
67.
Chapter Fifteen Solutions
10 March 2006
Design a Wien-bridge oscillator for operation at 1 kHz, using only standard resistor
values. One possible solution:
ω = 2πf = 1/RC, so set (2πRC)-1 = 1000
If we use a 1-μF capacitor, then R = 159 Ω. To construct this using standard resistor
values, connect a 100-Ω, 56-Ω and 3-Ω in series.
To complete the design, select Rf = 2 kΩ and R1 = 1 kΩ.
PSpice verification:
The feedback resistor was set to
2.05 kΩ to initiate oscillations
in the simulation. The output
waveform shown below exhibits
a frequency of 1 kHz as desired.
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- 68. Engineering Circuit Analysis, 7th Edition
68.
Chapter Fifteen Solutions
10 March 2006
Design a Wien-bridge oscillator for operation at 60 Hz. One possible solution:
ω = 2πf = 1/RC, so set (2πRC)-1 = 60
If we use 10-nF capacitors, then R = 265.3 kΩ.
To complete the design, select Rf = 200 kΩ and R1 = 100 kΩ.
PSpice verification:
The simulated output of the circuit
shows a sinusoidal waveform
having period 54.3 ms – 37.67 ms =
0.01663 ms, which corresponds to a
frequency of 60.13 Hz, as desired.
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- 69. Engineering Circuit Analysis, 7th Edition
69.
Chapter Fifteen Solutions
10 March 2006
Design a Wien-bridge oscillator for operation at 440 Hz, using only standard resistor
values. One possible solution:
ω = 2πf = 1/RC, so set (2πRC)-1 = 440
If we use 100-nF capacitors, then R = 3.167 kΩ. To construct this using standard resistor
values, connect a 3.6-kΩ, 16-Ω and 1-Ω in series. (May not need the 1-Ω, as we’re using
5% tolerance resistors!). This circuit will produce the musical note, ‘A.’
To complete the design, select Rf = 2 kΩ and R1 = 1 kΩ.
PSpice verification:
Simulation results show a sinusoidal
output having a period of approximately
5.128 – 2.864 = 2.264 ms, or a frequency
of approximately 442 Hz. The error is
likely to uncertainty in cursor placement;
a higher-resolution time simulation
would enable greater precision.
PROPRIETARY MATERIAL. © 2007 The McGraw-Hill Companies, Inc. Limited distribution permitted only to teachers
and educators for course preparation. If you are a student using this Manual, you are using it without permission.
- 70. Engineering Circuit Analysis, 7th Edition
70.
Chapter Fifteen Solutions
10 March 2006
Design a Wien-bridge oscillator for 440 Hz: ω = 2πf = 1/RC, so set (2πRC)-1 = 440
If we use 100-nF capacitors, then R = 3.167 kΩ.
Design a Wien-bridge oscillator for 220 Hz:ω = 2πf = 1/RC, so set (2πRC)-1 = 220
If we use 100-nF capacitors, then R = 7.234 kΩ.
Using a summing stage to add the two waveforms together:
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and educators for course preparation. If you are a student using this Manual, you are using it without permission.