Table A.2 list values for real power generation and demand (P), reactive power generation and demand (Q) and voltage (V) at each bus. a) Obtain the bus admittance matrix of the 3-bus power system.

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Table A.2 list values for real power generation and demand (P), reactive power generation and demand (Q) and voltage (V) at each bus.

a) Obtain the bus admittance matrix of the 3-bus power system.

 

Bus
1
2
3
P, MW
-
100
Generation
Q, MVar
Table A. 2. Bus data
Load
P, MW
30
100
50
Q, MVar
20
70
30
V, (p.u)
1
Remarks
Slack bus
PQ bus
PQ bus
Transcribed Image Text:Bus 1 2 3 P, MW - 100 Generation Q, MVar Table A. 2. Bus data Load P, MW 30 100 50 Q, MVar 20 70 30 V, (p.u) 1 Remarks Slack bus PQ bus PQ bus
Figure A.1 shows a one-line diagram of a simple 3-bus power system operating at nominal
voltage of 230kV.
Bus 2
Line,
bus to bus
1-2
1-3
2-3
Bus 1
Figure A. 1: A simple 3-bus power system.
Generators are connected at bus (1) and bus (3) while loads are connected at all buses.
Base values for the transmission system to be used in the calculation are 100MVA, 230kV.
Line data in Table A.1 shows per-unit series impedances and shunt admittances for the 3
transmission lines.
Table A. 1. Line data.
Resistance, R
(p.u)
0.05
0
0.01
Bus 3
Reactance, X
(p.u)
0.1
0.25
0.2
Shunt admittance,
Y/2
0.05
0.02
0.01
Transcribed Image Text:Figure A.1 shows a one-line diagram of a simple 3-bus power system operating at nominal voltage of 230kV. Bus 2 Line, bus to bus 1-2 1-3 2-3 Bus 1 Figure A. 1: A simple 3-bus power system. Generators are connected at bus (1) and bus (3) while loads are connected at all buses. Base values for the transmission system to be used in the calculation are 100MVA, 230kV. Line data in Table A.1 shows per-unit series impedances and shunt admittances for the 3 transmission lines. Table A. 1. Line data. Resistance, R (p.u) 0.05 0 0.01 Bus 3 Reactance, X (p.u) 0.1 0.25 0.2 Shunt admittance, Y/2 0.05 0.02 0.01
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