Passvibes
, APPENDIX A
Exercises
EA.1 Given Z 1 2 j 3 and Z 2 8 j 6, we have:
Z 1 Z 2 10 j 3
Z 1 Z 2 6 j 9
Z1 Z 2 16 j 24 j 12 j 2 18 34 j 12
2 j 3 8 j 6 16 j 12 j 24 j 2 18
Z1 / Z2 0.02 j 0.36
8 j6 8 j6 100
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
or ill d
k ide an art egr
is
w
pr d s as f th y o
EA.2 Z 1 1545 15 cos( 45 ) j 15 sin(45 ) 10.6 j 10.6
ot ole se is f t
ec ly s w he
te fo sin or w
Z 2 10 150 10 cos( 150 ) j 10 sin(150 ) 8.66 j 5
d
d o it
by r th g s (in ork
U e u tud clu an
ni s en d d
Z 3 590 5 cos(90 ) j 5 sin(90 ) j 5
te e
d of t le ng is n
St in ar on ot
at st ni t p
es ru ng he er
k
co cto . D W mit
py rs is or ted
EA.3 Notice that Z1 lies in the first quadrant of the complex plane.
rig in se ld .
i
ht te min Wi
la ach at de
Z 1 3 j 4 32 42 arctan( ) 553.13
w
s ing ion We
Notice that Z2 lies on the negative imaginary axis.
Z 2 j 10 10 90
b)
Notice that Z3 lies in the third quadrant of the complex plane.
Z 3 5 j 5 52 52 (180 arctan( 5 / 5)) 7.07 225 7.07 135
EA.4 Notice that Z1 lies in the first quadrant of the complex plane.
Z 1 10 j 10 10 2 10 2 arctan() 14.1445 14.14 exp( j 45 )
Pa
Notice that Z2 lies in the second quadrant of the complex plane.
ss
Z 2 10 j 10 10 2 10 2 (180 arctan( ))
14.14 135 14.14 exp( j 135 )
vi
be
1
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s
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,EA.5 Z 1Z 2 (1030 )(20135 ) (10 20)(30 135 ) 200 (165 )
Z1 / Z 2 (1030 ) /(20135 ) ()(30 135 ) 0.5(105 )
Z 1 Z 2 (10 30 ) (20135 ) (8.66 j 5) (14.14 j 14.14)
22.8 j 9.14 24.6 21.8
Z 1 Z 2 (10 30 ) (20135 ) (8.66 j 5) (14.14 j 14.14)
5.48 j 19.14 19.9106
Problems
PA.1 Given Z 1 2 j 3 and Z 2 4 j 3, we have:
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
Z1 Z2 6 j 0
or ill d
k ide an art egr
is
w
pr d s as f th y o
ot ole se is f t
ec ly s w he
te fo sin or w
Z 1 Z 2 2 j 6
d
d o it
by r th g s (in ork
U e u tud clu an
ni s en d d
te e
d of t le ng is n
St in ar on ot
at st ni t p
Z 1 Z 2 8 j 6 j 12 j 2 9 17 j 6
es ru ng he er
k
co cto . D W mit
py rs is or ted
rig in se ld .
i
ht te min Wi
2 j 3 4 j 3 1 j 18
la ach at de
w
Z1 / Z2 0.04 j 0.72
s ing ion We
4 j3 4 j3 25
b)
PA.2 Given that Z 1 1 j 2 and Z 2 2 j 3, we have:
Z1 Z2 3 j 1
Z 1 Z 2 1 j 5
Z1 Z2 2 j 3 j 4 j 2 6 8 j 1
Pa
1 j2 2 j3 4 j 7
Z1 / Z2 0.3077 j 0.5385
ss
2 j3 2 j3 13
vi
be
2
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s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
,PA.3 Given that Z 1 10 j 5 and Z 2 20 j 20, we have:
Z 1 Z 2 30 j 15
Z 1 Z 2 10 j 25
Z1 Z 2 200 j 200 j 100 j 2 100 300 j 100
10 j 5 20 j 20 100 j 300
Z1 / Z2 0.125 j 0.375
20 j 20 20 j 20 800
PA.4 (a) Z a 5 j 5 7.071 45 7.071 exp j 45
Th d co of y th
is is p urs an e
an eir le tro
Z b 10 j 5 11.18153 .43 11.18 exp j 153 .43
w ro es y p int
th sa es
(b)
or v
or ill d
k ide an art egr
is
w
pr d s as f th y o
ot ole se is f t
ec ly s w he
Zc 3 j 4 5 126 .87 5 exp j 126 .87
te fo sin or w
(c)
d
d o it
by r th g s (in ork
U e u tud clu an
ni s en d d
te e
d of t le ng is n
Zd j 12 12 90 12 exp j 90
St in ar on ot
(d)
at st ni t p
es ru ng he er
k
co cto . D W mit
py rs is or ted
rig in se ld .
i
ht te min Wi
la ach at de
w
s ing ion We
PA.5 (a) Z a 545 5 exp j 45 3.536 j 3.536
(b) Z b 10120 10 exp j 120 5 j 8.660
b)
(c) Zc 15 90 15 exp j 90 j 15
(d) Zd 1060 10 exp j 120 5 j 8.660
Pa
PA.6 (a) Z a 5e j 30 530 4.330 j 2.5
(b) Z b 10e j 45 10 45 7.071 j 7.071
ss
(c) Zc 100e j 135 100 135 70.71 j 70.71
vi
be
3
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s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
, (d) Zd 6e j 90 690 j 6
PA.7 (a) Z a 5 j 5 1030 13.66 j 10
(b) Z b 545 j 10 3.536 j 6.464
1045 1045
(c) Zc 2 8.13 1.980 j 0.283
3 j4 553.13
15
(d) Zd 3 90 j 3
590
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
or ill d
k ide an art egr
is
w
pr d s as f th y o
ot ole se is f t
ec ly s w he
te fo sin or w
d
d o it
by r th g s (in ork
U e u tud clu an
ni s en d d
te e
d of t le ng is n
St in ar on ot
at st ni t p
es ru ng he er
k
co cto . D W mit
py rs is or ted
rig in se ld .
i
ht te min Wi
la ach at de
w
s ing ion We
b)
Pa
ss
vi
be
4
© 2018 Pearson Education, Inc., Hoboken, NJ. All rights reserved. This material is protected under all copyright laws as they currently
s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
, CHAPTER 1
Exercises
E1.1 Charge = Current Time = (2 A) (10 s) = 20 C
dq (t ) d
E1.2 i (t ) (0.01sin(20 0t) 0.01 200cos(200 t ) 2cos(200t ) A
dt dt
E1.3 Because i2 has a positive value, positive charge moves in the same
direction as the reference. Thus, positive charge moves downward in
element C.
Because i3 has a negative value, positive charge moves in the opposite
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
direction to the reference. Thus positive charge moves upward in
or v
or ill d
k ide an art egr
is
w
element E.
pr d s as f th y o
ot ole se is f t
ec ly s w he
te fo sin or w
d
d o it
by r th g s (in ork
U e u tud clu an
E1.4 Energy = Charge Voltage = (2 C) (20 V) = 40 J
ni s en d d
te e
d of t le ng is n
St in ar on ot
at st ni t p
es ru ng he er
k
Because vab is positive, the positive terminal is a and the negative
co cto . D W mit
py rs is or ted
rig in se ld .
i
terminal is b. Thus the charge moves from the negative terminal to the
ht te min Wi
la ach at de
w
positive terminal, and energy is removed from the circuit element.
s ing ion We
E1.5 iab enters terminal a. Furthermore, vab is positive at terminal a. Thus
b)
the current enters the positive reference, and we have the passive
reference configuration.
E1.6 (a) pa (t ) v a (t )ia (t ) 20t 2
10 10 10
20t 3 20t 3
w a pa (t )dt 20t dt 2
6667 J
0 0
3 0
3
(b) Notice that the references are opposite to the passive sign
Pa
convention. Thus we have:
pb (t ) v b (t )ib (t ) 20t 200
ss
10 10
10
w b pb (t )dt (20t 200 )dt 10t 2 200t 1000 J
vi
0
0 0
be
1
© 2018 Pearson Education, Inc., Hoboken, NJ. All rights reserved. This material is protected under all copyright laws as they currently
s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
,E1.7 (a) Sum of currents leaving = Sum of currents entering
ia = 1 + 3 = 4 A
(b) 2 = 1 + 3 + ib ib = -2 A
(c) 0 = 1 + ic + 4 + 3 ic = -8 A
E1.8 Elements A and B are in series. Also, elements E, F, and G are in series.
E1.9 Go clockwise around the loop consisting of elements A, B, and C:
-3 - 5 +vc = 0 vc = 8 V
Then go clockwise around the loop composed of elements C, D and E:
- vc - (-10) + ve = 0 ve = -2 V
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
E1.10 Elements E and F are in parallel; elements A and B are in series.
or ill d
k ide an art egr
is
w
pr d s as f th y o
ot ole se is f t
ec ly s w he
te fo sin or w
ρL
d
d o it
by r th g s (in ork
E1.11 The resistance of a wire is given by R . Using A d and
U e u tud clu an
A
ni s en d d
te e
d of t le ng is n
St in ar on ot
substituting values, we have:
at st ni t p
es ru ng he er
k
co cto . D W mit
py rs is or ted
rig in se ld .
i
1.12 10 6 L
ht te min Wi
la ach at de
9.6 L = 17.2 m
w
s ing ion We
(1.6 10 3 )
E1.12 P V 2 R R V 2 / P 144 I V / R 0.833 A
b)
E1.13 P V 2 R V PR 0.25 1000 15.8 V
I V / R 15. 15.8 mA
E1.14 Using KCL at the top node of the circuit, we have i1 = i2. Then, using KVL
going clockwise, we have -v1 - v2 = 0; but v1 = 25 V, so we have v2 = -25 V.
Next we have i1 = i2 = v2/R = -1 A. Finally, we have
Pa
PR v 2i2 (25) (1) 25 W and Ps v 1i1 (25) (1) 25 W.
ss
E1.15 At the top node we have iR = is = 2A. By Ohm’s law we have vR = RiR = 80
V. By KVL we have vs = vR = 80 V. Then ps = -vsis = -160 W (the minus sign
is due to the fact that the references for vs and is are opposite to the
vi
passive sign configuration). Also we have PR v R iR 160 W.
be
2
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s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
, Problems
P1.1 Broadly, the two objectives of electrical systems are:
1. To gather, store, process, transport and present information.
2. To distribute, store, and convert energy between various forms.
P1.2 Four reasons that non-electrical engineering majors need to learn the
fundamentals of EE are:
1. To pass the Fundamentals of Engineering Exam.
2. To be able to lead in the design of systems that contain
electrical/electronic elements.
3. To be able to operate and maintain systems that contain
electrical/electronic functional blocks.
Th d co of y th
4. To be able to communicate effectively with electrical engineers.
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
or ill d
k ide an art egr
is
w
pr d s as f th y o
P1.3 Eight subdivisions of EE are:
ot ole se is f t
ec ly s w he
te fo sin or w
d
d o it
by r th g s (in ork
U e u tud clu an
1. Communication systems.
ni s en d d
te e
d of t le ng is n
St in ar on ot
2. Computer systems.
at st ni t p
es ru ng he er
k
co cto . D W mit
3. Control systems.
py rs is or ted
rig in se ld .
i
4. Electromagnetics.
ht te min Wi
la ach at de
w
s ing ion We
5. Electronics.
6. Photonics.
7. Power systems.
b)
8. Signal Processing.
P1.4 Responses to this question are varied.
P1.5 (a) Electrical current is the time rate of flow of net charge through a
conductor or circuit element. Its units are amperes, which are equivalent
to coulombs per second.
Pa
(b) The voltage between two points in a circuit is the amount of energy
transferred per unit of charge moving between the points. Voltage has
ss
units of volts, which are equivalent to joules per coulomb.
vi
be
3
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s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
, APPENDIX A
Exercises
EA.1 Given Z 1 2 j 3 and Z 2 8 j 6, we have:
Z 1 Z 2 10 j 3
Z 1 Z 2 6 j 9
Z1 Z 2 16 j 24 j 12 j 2 18 34 j 12
2 j 3 8 j 6 16 j 12 j 24 j 2 18
Z1 / Z2 0.02 j 0.36
8 j6 8 j6 100
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
or ill d
k ide an art egr
is
w
pr d s as f th y o
EA.2 Z 1 1545 15 cos( 45 ) j 15 sin(45 ) 10.6 j 10.6
ot ole se is f t
ec ly s w he
te fo sin or w
Z 2 10 150 10 cos( 150 ) j 10 sin(150 ) 8.66 j 5
d
d o it
by r th g s (in ork
U e u tud clu an
ni s en d d
Z 3 590 5 cos(90 ) j 5 sin(90 ) j 5
te e
d of t le ng is n
St in ar on ot
at st ni t p
es ru ng he er
k
co cto . D W mit
py rs is or ted
EA.3 Notice that Z1 lies in the first quadrant of the complex plane.
rig in se ld .
i
ht te min Wi
la ach at de
Z 1 3 j 4 32 42 arctan( ) 553.13
w
s ing ion We
Notice that Z2 lies on the negative imaginary axis.
Z 2 j 10 10 90
b)
Notice that Z3 lies in the third quadrant of the complex plane.
Z 3 5 j 5 52 52 (180 arctan( 5 / 5)) 7.07 225 7.07 135
EA.4 Notice that Z1 lies in the first quadrant of the complex plane.
Z 1 10 j 10 10 2 10 2 arctan() 14.1445 14.14 exp( j 45 )
Pa
Notice that Z2 lies in the second quadrant of the complex plane.
ss
Z 2 10 j 10 10 2 10 2 (180 arctan( ))
14.14 135 14.14 exp( j 135 )
vi
be
1
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s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
,EA.5 Z 1Z 2 (1030 )(20135 ) (10 20)(30 135 ) 200 (165 )
Z1 / Z 2 (1030 ) /(20135 ) ()(30 135 ) 0.5(105 )
Z 1 Z 2 (10 30 ) (20135 ) (8.66 j 5) (14.14 j 14.14)
22.8 j 9.14 24.6 21.8
Z 1 Z 2 (10 30 ) (20135 ) (8.66 j 5) (14.14 j 14.14)
5.48 j 19.14 19.9106
Problems
PA.1 Given Z 1 2 j 3 and Z 2 4 j 3, we have:
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
Z1 Z2 6 j 0
or ill d
k ide an art egr
is
w
pr d s as f th y o
ot ole se is f t
ec ly s w he
te fo sin or w
Z 1 Z 2 2 j 6
d
d o it
by r th g s (in ork
U e u tud clu an
ni s en d d
te e
d of t le ng is n
St in ar on ot
at st ni t p
Z 1 Z 2 8 j 6 j 12 j 2 9 17 j 6
es ru ng he er
k
co cto . D W mit
py rs is or ted
rig in se ld .
i
ht te min Wi
2 j 3 4 j 3 1 j 18
la ach at de
w
Z1 / Z2 0.04 j 0.72
s ing ion We
4 j3 4 j3 25
b)
PA.2 Given that Z 1 1 j 2 and Z 2 2 j 3, we have:
Z1 Z2 3 j 1
Z 1 Z 2 1 j 5
Z1 Z2 2 j 3 j 4 j 2 6 8 j 1
Pa
1 j2 2 j3 4 j 7
Z1 / Z2 0.3077 j 0.5385
ss
2 j3 2 j3 13
vi
be
2
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s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
,PA.3 Given that Z 1 10 j 5 and Z 2 20 j 20, we have:
Z 1 Z 2 30 j 15
Z 1 Z 2 10 j 25
Z1 Z 2 200 j 200 j 100 j 2 100 300 j 100
10 j 5 20 j 20 100 j 300
Z1 / Z2 0.125 j 0.375
20 j 20 20 j 20 800
PA.4 (a) Z a 5 j 5 7.071 45 7.071 exp j 45
Th d co of y th
is is p urs an e
an eir le tro
Z b 10 j 5 11.18153 .43 11.18 exp j 153 .43
w ro es y p int
th sa es
(b)
or v
or ill d
k ide an art egr
is
w
pr d s as f th y o
ot ole se is f t
ec ly s w he
Zc 3 j 4 5 126 .87 5 exp j 126 .87
te fo sin or w
(c)
d
d o it
by r th g s (in ork
U e u tud clu an
ni s en d d
te e
d of t le ng is n
Zd j 12 12 90 12 exp j 90
St in ar on ot
(d)
at st ni t p
es ru ng he er
k
co cto . D W mit
py rs is or ted
rig in se ld .
i
ht te min Wi
la ach at de
w
s ing ion We
PA.5 (a) Z a 545 5 exp j 45 3.536 j 3.536
(b) Z b 10120 10 exp j 120 5 j 8.660
b)
(c) Zc 15 90 15 exp j 90 j 15
(d) Zd 1060 10 exp j 120 5 j 8.660
Pa
PA.6 (a) Z a 5e j 30 530 4.330 j 2.5
(b) Z b 10e j 45 10 45 7.071 j 7.071
ss
(c) Zc 100e j 135 100 135 70.71 j 70.71
vi
be
3
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s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
, (d) Zd 6e j 90 690 j 6
PA.7 (a) Z a 5 j 5 1030 13.66 j 10
(b) Z b 545 j 10 3.536 j 6.464
1045 1045
(c) Zc 2 8.13 1.980 j 0.283
3 j4 553.13
15
(d) Zd 3 90 j 3
590
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
or ill d
k ide an art egr
is
w
pr d s as f th y o
ot ole se is f t
ec ly s w he
te fo sin or w
d
d o it
by r th g s (in ork
U e u tud clu an
ni s en d d
te e
d of t le ng is n
St in ar on ot
at st ni t p
es ru ng he er
k
co cto . D W mit
py rs is or ted
rig in se ld .
i
ht te min Wi
la ach at de
w
s ing ion We
b)
Pa
ss
vi
be
4
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s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
, CHAPTER 1
Exercises
E1.1 Charge = Current Time = (2 A) (10 s) = 20 C
dq (t ) d
E1.2 i (t ) (0.01sin(20 0t) 0.01 200cos(200 t ) 2cos(200t ) A
dt dt
E1.3 Because i2 has a positive value, positive charge moves in the same
direction as the reference. Thus, positive charge moves downward in
element C.
Because i3 has a negative value, positive charge moves in the opposite
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
direction to the reference. Thus positive charge moves upward in
or v
or ill d
k ide an art egr
is
w
element E.
pr d s as f th y o
ot ole se is f t
ec ly s w he
te fo sin or w
d
d o it
by r th g s (in ork
U e u tud clu an
E1.4 Energy = Charge Voltage = (2 C) (20 V) = 40 J
ni s en d d
te e
d of t le ng is n
St in ar on ot
at st ni t p
es ru ng he er
k
Because vab is positive, the positive terminal is a and the negative
co cto . D W mit
py rs is or ted
rig in se ld .
i
terminal is b. Thus the charge moves from the negative terminal to the
ht te min Wi
la ach at de
w
positive terminal, and energy is removed from the circuit element.
s ing ion We
E1.5 iab enters terminal a. Furthermore, vab is positive at terminal a. Thus
b)
the current enters the positive reference, and we have the passive
reference configuration.
E1.6 (a) pa (t ) v a (t )ia (t ) 20t 2
10 10 10
20t 3 20t 3
w a pa (t )dt 20t dt 2
6667 J
0 0
3 0
3
(b) Notice that the references are opposite to the passive sign
Pa
convention. Thus we have:
pb (t ) v b (t )ib (t ) 20t 200
ss
10 10
10
w b pb (t )dt (20t 200 )dt 10t 2 200t 1000 J
vi
0
0 0
be
1
© 2018 Pearson Education, Inc., Hoboken, NJ. All rights reserved. This material is protected under all copyright laws as they currently
s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
,E1.7 (a) Sum of currents leaving = Sum of currents entering
ia = 1 + 3 = 4 A
(b) 2 = 1 + 3 + ib ib = -2 A
(c) 0 = 1 + ic + 4 + 3 ic = -8 A
E1.8 Elements A and B are in series. Also, elements E, F, and G are in series.
E1.9 Go clockwise around the loop consisting of elements A, B, and C:
-3 - 5 +vc = 0 vc = 8 V
Then go clockwise around the loop composed of elements C, D and E:
- vc - (-10) + ve = 0 ve = -2 V
Th d co of y th
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
E1.10 Elements E and F are in parallel; elements A and B are in series.
or ill d
k ide an art egr
is
w
pr d s as f th y o
ot ole se is f t
ec ly s w he
te fo sin or w
ρL
d
d o it
by r th g s (in ork
E1.11 The resistance of a wire is given by R . Using A d and
U e u tud clu an
A
ni s en d d
te e
d of t le ng is n
St in ar on ot
substituting values, we have:
at st ni t p
es ru ng he er
k
co cto . D W mit
py rs is or ted
rig in se ld .
i
1.12 10 6 L
ht te min Wi
la ach at de
9.6 L = 17.2 m
w
s ing ion We
(1.6 10 3 )
E1.12 P V 2 R R V 2 / P 144 I V / R 0.833 A
b)
E1.13 P V 2 R V PR 0.25 1000 15.8 V
I V / R 15. 15.8 mA
E1.14 Using KCL at the top node of the circuit, we have i1 = i2. Then, using KVL
going clockwise, we have -v1 - v2 = 0; but v1 = 25 V, so we have v2 = -25 V.
Next we have i1 = i2 = v2/R = -1 A. Finally, we have
Pa
PR v 2i2 (25) (1) 25 W and Ps v 1i1 (25) (1) 25 W.
ss
E1.15 At the top node we have iR = is = 2A. By Ohm’s law we have vR = RiR = 80
V. By KVL we have vs = vR = 80 V. Then ps = -vsis = -160 W (the minus sign
is due to the fact that the references for vs and is are opposite to the
vi
passive sign configuration). Also we have PR v R iR 160 W.
be
2
© 2018 Pearson Education, Inc., Hoboken, NJ. All rights reserved. This material is protected under all copyright laws as they currently
s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
, Problems
P1.1 Broadly, the two objectives of electrical systems are:
1. To gather, store, process, transport and present information.
2. To distribute, store, and convert energy between various forms.
P1.2 Four reasons that non-electrical engineering majors need to learn the
fundamentals of EE are:
1. To pass the Fundamentals of Engineering Exam.
2. To be able to lead in the design of systems that contain
electrical/electronic elements.
3. To be able to operate and maintain systems that contain
electrical/electronic functional blocks.
Th d co of y th
4. To be able to communicate effectively with electrical engineers.
is is p urs an e
an eir le tro
w ro es y p int
th sa es
or v
or ill d
k ide an art egr
is
w
pr d s as f th y o
P1.3 Eight subdivisions of EE are:
ot ole se is f t
ec ly s w he
te fo sin or w
d
d o it
by r th g s (in ork
U e u tud clu an
1. Communication systems.
ni s en d d
te e
d of t le ng is n
St in ar on ot
2. Computer systems.
at st ni t p
es ru ng he er
k
co cto . D W mit
3. Control systems.
py rs is or ted
rig in se ld .
i
4. Electromagnetics.
ht te min Wi
la ach at de
w
s ing ion We
5. Electronics.
6. Photonics.
7. Power systems.
b)
8. Signal Processing.
P1.4 Responses to this question are varied.
P1.5 (a) Electrical current is the time rate of flow of net charge through a
conductor or circuit element. Its units are amperes, which are equivalent
to coulombs per second.
Pa
(b) The voltage between two points in a circuit is the amount of energy
transferred per unit of charge moving between the points. Voltage has
ss
units of volts, which are equivalent to joules per coulomb.
vi
be
3
© 2018 Pearson Education, Inc., Hoboken, NJ. All rights reserved. This material is protected under all copyright laws as they currently
s
Passvibes
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
