For the power system of Figure Q4.1, all per unit quantities have been calculated using a common base. The generator delivers power p∞ = 1 p. u. at a lagging power factor of cos= 0.93.   i) Calculate the internal voltage of the generator, the maximum electrical power that the generator can deliver to the system during the steady state operation and the steady state rotor angle, σ0, of the generator. ii) A three-phase fault occurs at busbar 3 and it is cleared by simultaneously disconnecting lines 13 and 23. Following the fault clearing, the system continues to operate with only line 12 in service. Determine the new steady state rotor angle, σ1, of the generator and the maximum power the generator can deliver to the system post fault.

EBK ELECTRICAL WIRING RESIDENTIAL
19th Edition
ISBN:9781337516549
Author:Simmons
Publisher:Simmons
Chapter28: Overcurrent Protection–fuses And Circuit Breakers
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Problem 11R: State four possible combinations of service equipment that meet the requirements of 110.9 and 110.10...
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For the power system of Figure Q4.1, all per unit quantities have been calculated using
a common base. The generator delivers power p∞ = 1 p. u. at a lagging power factor of
cos= 0.93. 

 i) Calculate the internal voltage of the generator, the maximum electrical power
that the generator can deliver to the system during the steady state operation
and the steady state rotor angle, σ0, of the generator.

ii) A three-phase fault occurs at busbar 3 and it is cleared by simultaneously
disconnecting lines 13 and 23. Following the fault clearing, the system
continues to operate with only line 12 in service. Determine the new steady
state rotor angle, σ1, of the generator and the maximum power the generator
can deliver to the system post fault.

G
XG
=
∞
0.3 p.u. XT = 0.1 p. u.
X12 = 0.2 p. u.
X13 = 0.1 p.u.
3
X23
= 0.2 p. u.
P 00
V ∞o
8
Transcribed Image Text:G XG = ∞ 0.3 p.u. XT = 0.1 p. u. X12 = 0.2 p. u. X13 = 0.1 p.u. 3 X23 = 0.2 p. u. P 00 V ∞o 8
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