Consider the single-line diagram of the power system shown in Figure 3.38. Equipment ratings are Generator 1: 1000 MVA, 18 kV, X" = 0 .2 per unit Generator 2: 1000 MVA, 18 kV, X" = 0 .2 p .u . Synchronous motor 3: 1500 MVA, 20 kV, X" = 0 .2 p .u . Three-phase Δ-Y transformers T 1 , T 2 , T 3 , T 4 , : 1000 MVA, 500 kV, Y/20 kV Δ , X = 0 .1 p .u . Three-phase Y − Y transformer T 5 : 1500 MVA, 500 kV, Y/20 kV Δ Y, X = 0 .1 p .u . Neglecting resistance, transformer phase shift, and magnetizing reactance, draw the equivalent reactance diagram. Use a base of 100 MA and 500 kV for the 50-ohm line. Determine the per-unit reactances.
Consider the single-line diagram of the power system shown in Figure 3.38. Equipment ratings are Generator 1: 1000 MVA, 18 kV, X" = 0 .2 per unit Generator 2: 1000 MVA, 18 kV, X" = 0 .2 p .u . Synchronous motor 3: 1500 MVA, 20 kV, X" = 0 .2 p .u . Three-phase Δ-Y transformers T 1 , T 2 , T 3 , T 4 , : 1000 MVA, 500 kV, Y/20 kV Δ , X = 0 .1 p .u . Three-phase Y − Y transformer T 5 : 1500 MVA, 500 kV, Y/20 kV Δ Y, X = 0 .1 p .u . Neglecting resistance, transformer phase shift, and magnetizing reactance, draw the equivalent reactance diagram. Use a base of 100 MA and 500 kV for the 50-ohm line. Determine the per-unit reactances.
Solution Summary: The author explains how to draw a per unit equivalent reactance diagram.
Consider the single-line diagram of the power system shown in Figure 3.38. Equipment ratings are
Generator 1:
1000
MVA,
18
kV,
X"
=
0
.2
per
unit
Generator 2:
1000
MVA,
18
kV,
X"
=
0
.2
p
.u
.
Synchronous motor 3:
1500
MVA,
20
kV,
X"
=
0
.2
p
.u
.
Three-phase
Δ-Y
transformers
T
1
,
T
2
,
T
3
,
T
4
,
:
1000
MVA,
500
kV,
Y/20
kV
Δ
,
X
=
0
.1
p
.u
.
Three-phase
Y
−
Y
transformer
T
5
:
1500
MVA,
500
kV,
Y/20
kV
Δ
Y,
X
=
0
.1
p
.u
.
Neglecting resistance, transformer phase shift, and magnetizing reactance, draw the equivalent reactance diagram. Use a base of 100 MA and 500 kV for the 50-ohm line. Determine the per-unit reactances.
2. Design the boost converter with the following specifications:
Vin = 28 V, Vo = 48 V, Po = 100 W, fs = 110 kHz
Sketch the inductor current.
The converter is in CCM.
I need help with this problem and an explanation of the solution for the image described below. (Introduction to Signals and Systems)
Chapter 3 Solutions
Power System Analysis and Design (MindTap Course List)
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