b) The single line diagram of a power system is shown in Figure Q2.1 including generator and transformer winding connection and earthing details. The parameters for this system have been calculated on a common 100 MVA base and are given in Table Q2.1. All resistances and shunt susceptances are neglected. This system experiences a single line to ground fault at a point F on line L1. The point F is at a distance d from Bus 4 along the line L1. The total length 1 of the line L1 is 50 km. Note that the location of d is not drawn to scale in Figure Q2.1. The fault current at the fault point F is measured to be 6.106 kA. G1 G2 1 2 IN T1 3 ΔΕ T2 T3 Figure Q2.1 4 L1 (l-d) 5

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
Chapter3: Power Transformers
Section: Chapter Questions
Problem 3.53P: The ratings of a three-phase, three-winding transformer are Primary: Y connected, 66kV,15MVA...
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b) The single line diagram of a power system is shown in Figure Q2.1 including
generator and transformer winding connection and earthing details. The parameters
for this system have been calculated on a common 100 MVA base and are given in
Table Q2.1. All resistances and shunt susceptances are neglected. This system
experiences a single line to ground fault at a point F on line L1. The point F is at a
distance d from Bus 4 along the line LI. The total length of the line L1 is 50 km.
Note that the location of d is not drawn to scale in Figure Q2.1. The fault current at
the fault point F is measured to be 6.106 kA.
G1
G1
G2
i)
G2
T1
T2
T3
L1
11)
2
Rated voltage
(kV)
20
20
20/33
20/33
33/11
11
T1
ΔΕ
T2
T3
Figure Q2.1
Table Q2.1
Zero sequence
reactance Xo (p.u.)
0.20
0.15
0.12
0.20
0.20
1.20
Positive sequence
reactance X₁ (p.u.)
0.30
0.25
0.12
0.20
0.20
0.50
UNIVERSITY OF
LIVERPOOL
L1
(l-d)
5
Negative sequence
reactance X₂ (p.u.)
0.35
0.30
0.12
0.20
0.20
0.50
Determine the zero, positive, and negative sequence Thevenin equivalent
impedances as seen at the fault point F. These should be evaluated in per unit
and shown as a function of d.
Use the sequence impedances calculated in part (i) to determine the distance d
of the fault (in km) from Bus 4.
Transcribed Image Text:b) The single line diagram of a power system is shown in Figure Q2.1 including generator and transformer winding connection and earthing details. The parameters for this system have been calculated on a common 100 MVA base and are given in Table Q2.1. All resistances and shunt susceptances are neglected. This system experiences a single line to ground fault at a point F on line L1. The point F is at a distance d from Bus 4 along the line LI. The total length of the line L1 is 50 km. Note that the location of d is not drawn to scale in Figure Q2.1. The fault current at the fault point F is measured to be 6.106 kA. G1 G1 G2 i) G2 T1 T2 T3 L1 11) 2 Rated voltage (kV) 20 20 20/33 20/33 33/11 11 T1 ΔΕ T2 T3 Figure Q2.1 Table Q2.1 Zero sequence reactance Xo (p.u.) 0.20 0.15 0.12 0.20 0.20 1.20 Positive sequence reactance X₁ (p.u.) 0.30 0.25 0.12 0.20 0.20 0.50 UNIVERSITY OF LIVERPOOL L1 (l-d) 5 Negative sequence reactance X₂ (p.u.) 0.35 0.30 0.12 0.20 0.20 0.50 Determine the zero, positive, and negative sequence Thevenin equivalent impedances as seen at the fault point F. These should be evaluated in per unit and shown as a function of d. Use the sequence impedances calculated in part (i) to determine the distance d of the fault (in km) from Bus 4.
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