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Solution Manual For Power System Analysis and Design 7th Edition by J. Duncan Glover, Mulukutla S. Sarma, Thomas Overbye, Adam Birchfield

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Solution Manual For Power System Analysis and Design 7th Edition by J. Duncan Glover, Mulukutla S. Sarma, Thomas Overbye, Adam Birchfield

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Power System Analysis And Design
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J. Duncan Glover, Mulukutla S. Sarma, Thomas Overbye, Adam Birchfield Power System Analysis and Design
  • 2022
  • 9780357676189
  • Unknown

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Institution
Power System Analysis and Design
Course
Power System Analysis and Design

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Uploaded on
October 9, 2025
Number of pages
141
Written in
2025/2026
Type
Exam (elaborations)
Contains
Questions & answers

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  • solution manual for power system analysis and desi

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SOLUTION MANUAL
FOR POWER
SYSTEM ANALYSIS
AND DESIGN 7TH
EDITION BY J.
DUNCAN GLOVER,
MULUKUTLA S.
SARMA, THOMAS
OVERBYE, ADAM
BIRCHFIELD

, Contents
Chapter 2 1

Chapter 3 27

Chapter 4 71

Chapter 5 95

Chapter 6 137

Chapter 7 175

Chapter 8 195

Chapter 9 231

Chapter 10 303

Chapter 11 323

Chapter 12 339

Chapter 13 353

Chapter 14 379

,Chapter 2
Fundamentals

ANSWERS TO MULTIPLE-CHOICE TYPE QUESTIONS
2.1 B 2.19 A
2.2 A 2.20 A. C
2.3 C B. A
2.4 A C. B
2.5 B 2.21 A
2.6 C 2.22 A
2.7 A 2.23 B
2.8 C 2.24 A
2.9 A 2.25 A
2.10 C 2.26 B
2.11 A 2.27 A
2.12 B 2.28 B
2.13 B 2.29 A
2.14 C 2.30 (I) C
2.15 A (Ii) B
2.16 B (Iii) A
2.17 A. A (Iv) D
B. B 2.31 A
C. A 2.32 A
2.18 C




1

, 2.1 (A A1  530  5Cos30  J Sin 30 4.33  J 2.5
)
4
9  16 Tan
1
(b) A2  3  J4  5126.87  5ej126.87
 3
(c) A3  4.33  J2.5  3  J4   1.33 J 6.5  6.63578.44
(d) A4  5305126.87  25156.87  22.99  J9.821
(e) A  530 / 5  126.87  1156.87  1ej156.87

2.2 (A) I  400  30  346.4  J200
(b) I(T)  5sinT  15  5cosT  15  90  5cosT  75

 
I  5 2   75  3.536  75  0.9151 J3.415

(c) I  4 2   30  5  75  2.449  J1.414  1.294  J4.83
 3.743  J 6.244  7.28  59.06

2.3 (A Vmax  359.3 V; Imax  100 A
)
(b) V  359.3 2  254.1V; I  100 2  70.71A
(c) V  254.115V; I  70.71  85A
 J6 6  90
2.4 (A I  100  10  7.5  90A
)
8  J6  J6
1
8
I2  I  I1  100  7.3  90  10  J7.5  12.536.87A
V  I2  J6  12.536.87 6  90  75  53.13V
(B)




2.5 (A) (T)  277 2 CosT  30  391.7 CosT  30V
(B) I  V / 20  13.8530A
I(T)  19.58cosT  30A




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