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Test Bank — Fundamentals of Electric Circuits, 7th Edition (Alexander & Sadiku, 2020) | Chapters 1–19 Covered

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Original test bank for Fundamentals of Electric Circuits, 7th Edition by Alexander & Sadiku (2020), covering fundamental circuit concepts, DC and AC circuit analysis, circuit laws and theorems, operational amplifiers, energy storage elements, transient response, frequency analysis, and advanced circuit techniques. The test bank includes Chapter 1 Basic Concepts; Chapter 2 Basic Laws; Chapter 3 Methods of Analysis; Chapter 4 Circuit Theorems; Chapter 5 Operational Amplifiers; Chapter 6 Capacitors and Inductors; Chapter 7 First-Order Circuits; Chapter 8 Second-Order Circuits; Chapter 9 Sinusoids and Phasors; Chapter 10 Sinusoidal Steady-State Analysis; Chapter 11 AC Power Analysis; Chapter 12 Three-Phase Circuits; Chapter 13 Magnetically Coupled Circuits; Chapter 14 Frequency Response; Chapter 15 Introduction to the Laplace Transform; Chapter 16 Applications of the Laplace Transform; Chapter 17 The Fourier Series; Chapter 18 Fourier Transform; and Chapter 19 Two-Port Networks, providing complete coverage for electrical engineering coursework and exam preparation.

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, TABLE OF CONTENTS
Test Bank: Fundamentals of Electric Circuits 7th Edition
Authors: Charles Alexander, Matthew Sadiku
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Part One - DC Circuits
1) Basic Concepts
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2) Basic Laws
3) Methods of Analysis
Chapter 4: Circuit Theorems
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5) Operational Amplifiers
6) Capacitors and Inductors
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7) First-Order Circuits
8) Second-Order Circuits

Part Two - AC Circuits
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9) Sinusoids and Phasors
10) Sinusoidal Steady-State Analysis
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11) AC Power Analysis
12) Three-Phase Circuits
13) Magnetically Coupled Circuits
14) Frequency Response
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Part Three - Advanced Circuit Analysis
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15) Introduction to the Laplace Transform
16) Applications of the Laplace Transform
17) The Fourier Series
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18) Fourier Transform
19) Two-Port Networks

, Chapter 1
1. Award: 10.00 points
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How much charge is represented by the given amount of electrons?

a. For 6.482 × 1017 electrons, the charge q = -103.84 ± 3% mC
b. For 3.24 × 1018 electrons, the charge q = -519.05 ± 3% mC
c. For 3.46 × 1019 electrons, the charge q = -5.54 ± 3% C
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20
d. For 2.628 × 10 electrons, the charge q = -42.10 ± 3% C




Explanation:
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The coulomb representations of the given electrons are calculated as shown below:
a. q = 6.482 × 1017 × [–1.602 × 10–19 C] = - 103.84 mC
b. q = 3.24 × 1018 × [–1.602 × 10–19 C] = - 519.05 mC
c. q = 3.46 × 1019 × [–1.602 × 10–19 C] = - 5.54 C
_A
d. q = 2.628 × 1020 × [–1.602 × 10–19 C] = - 42.10 C

The coulomb representations of the given electrons are shown below.
a. q = 6.482 × 1017 = - 103.84 mC
b. q = 3.24 × 1018 = - 519.05 mC
c. q = 3.46 × 1019 = - 5.54 C
PP
d. q = 2.628 × 1020 = - 42.10 C


References

Numeric Response Difficulty: Medium Learning Objective: Understand the different units with
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which engineers work.
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Determine the current flowing through an element if the charge flow is given by the following equation.
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References

Section Break Difficulty: Easy Learning Objective: Understand the relationship
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between charge and current and how to use both in a
variety of applications.

, 2. Award: 10.00 points




q(t) = (8t + 8) mC

The current i flowing through the element for the given charge flow is 8 ± 2% mA.


Explanation:
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For the charge flow q(t) = (8t + 8) mC, the current flowing through the element can be calculated as
dq
i= = 8 mA
dt
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The current i flowing through the element for the given charge flow is 8 mA.


References
IA
Numeric Response Difficulty: Easy Learning Objective: Understand the relationship
between charge and current and how to use both in a
variety of applications.
_A
3. Award: 10.00 points
PP
q(t) = (16t2 + 9t – 2) C
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The current i flowing through the element is ( 32 ± 2% t + 9 ± 2% ) A.


Explanation:


For the charge flow q(t) = (16t2 + 9t – 2) C, the current flowing through the element can be calculated as
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dq
i= = (32t + 9) A
dt



The current i flowing through the element is (9t + 9) A.
D
References
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Numeric Response Difficulty: Easy Learning Objective: Understand the relationship
between charge and current and how to use both in a
variety of applications.




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