2.3 For the circuit shown in Figure 2.4, find the node voltages VA, VB, and Vc using either nodal analysis or supernode approach. + 10ix G₂=0.2ʊ B A ww G₁=0.87 ww C G=0.10 G=0.20 I₁ =2A(↑ G=0.057 Figure 2.4. (Ans: V₁ = 38 V, VB = -20 V, Vc = -18 V) 0.25V
2.3 For the circuit shown in Figure 2.4, find the node voltages VA, VB, and Vc using either nodal analysis or supernode approach. + 10ix G₂=0.2ʊ B A ww G₁=0.87 ww C G=0.10 G=0.20 I₁ =2A(↑ G=0.057 Figure 2.4. (Ans: V₁ = 38 V, VB = -20 V, Vc = -18 V) 0.25V
Power System Analysis and Design (MindTap Course List)
6th Edition
ISBN:9781305632134
Author:J. Duncan Glover, Thomas Overbye, Mulukutla S. Sarma
Publisher:J. Duncan Glover, Thomas Overbye, Mulukutla S. Sarma
Chapter6: Power Flows
Section: Chapter Questions
Problem 6.61P
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
Transcribed Image Text:2.3 For the circuit shown in Figure 2.4, find the node voltages VA, VB, and Vc using
either nodal analysis or supernode approach.
+
10ix
G₂=0.2ʊ B
A
ww
G₁=0.87
ww
C
G=0.10
G=0.20
I₁ =2A(↑
G=0.057
Figure 2.4.
(Ans: V₁ = 38 V, VB = -20 V, Vc = -18 V)
0.25V
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