10-30
L90 LINE CURRENT DIFFERENTIAL SYSTEM – INSTRUCTION MANUAL
DISTANCE ELEMENTS
CHAPTER 10: THEORY OF OPERATION
10
After the memory expires the relay uses the actual voltage for polarization.
I
A
×
Z + I_0
×
K0
×
Z + I
G
×
K0M
×
Z – V
A
= 103.33 V
∠
–3.9°
V
A
_1 = 58.83 V
∠
–2.1°
I
A
_2
×
Z
D
= 1.37 V
∠
19.8°
I_0
×
Z = 19.11 V
∠
19.8°
I_0
×
Z
D
= 1.37 V
∠
19.8°
•
Overcurrent supervision = | 3
×
I_0 | = 4.09 A > 3 A
•
Mho difference angle = | –3.9° – (–2.1°) | = 1.8° < 75°
•
Reactance difference angle = | –3.9° – 19.8° | = 23.7° < 75°
•
Zero-sequence directional difference angle = | 19.8° – (–2.1°) | = 21.9° < 75°
•
Negative-sequence directional difference angle = | 19.8° – (–2.1°) | = 21.9° < 75°
•
Fault-type comparator difference angle = | 19.8° – 19.8° | = 0.0° < 50°
All four comparators and the overcurrent supervision are satisfied, so the Zone 1 MHO phase A ground element operates
for this fault.
•
Zero-sequence directional difference angle for zones 2 and higher (phase A) = | 19.8° – 8.4° | = 11.4° < 90°
Zones 2 and higher phase A ground elements pick-up, time-out, and operate.
10.3.6.4 Mho AB phase element
(I
A
– I
B
)
×
Z – (V
A
– V
B
) = 88.65 V
∠
–78.7°
(V
A
– V
B
)_1M = 112.08 V
∠
30.0°
(I
A
– I
B
)
×
Z = 103.50 V
∠
–21.2°
(I
A
– I
B
)
×
Z
D
= 7.39 V
∠
–21.2°
•
Overcurrent supervision: | (I
A
– I
B
) /
| = 4.27 A > 3 A
•
Mho difference angle = | –78.7° – 30.0° | = 108.7° > 75°
•
Reactance difference angle = | –78.7° – (–21.2°) | = 57.5° < 75°
•
Directional difference angle = | –21.2° – 30.0° | = 51.2° < 75°
The mho comparator is not satisfied, so the MHO AB phase element does not operate for this fault.
Repeating this analysis, one concludes that out of the six distance elements only the ground element in phase A operates
for this fault.
10.3.6.5 Quad phase A to ground element (before memory expires)
I
A
×
Z + I_0
×
K0
×
Z + I
G
×
K0M
×
Z – V
A
= 103.33 V
∠
–3.9°
V
A
_1M = 64.71 V
∠
0.0°
j
×
I_0
×
e
j3
= 1.37 A
∠
24.8°
I
A
_2
×
Z
D
= 1.37 V
∠
19.8°
I_0
×
Z
D
= 1.37 V
∠
19.8°
I
A
×
Z
R
+ I_0
×
K0
×
Z
R
+ I
G
×
K0M
×
Z
R
– V
A
= 87.6 V
∠
–109.2°
I
A
×
Z
R
+ I_0
×
K0
×
Z
R
= 91.5 V
∠
–93.0°
I
A
×
Z
L
+ I_0
×
K0
×
Z
L
+ I
G
×
K0M
×
Z
L
– V
A
= 57.0 V
∠
108.7°
I
A
×
Z
L
+ I_0
×
K0
×
Z
L
= 45.8 V
∠
82.9°
•
Overcurrent supervision: | 3
×
I_0 | = 4.09 A > 3 A
•
Reactance difference angle = | –3.9° – 24.8° | = 28.7° < 75°
•
Zero-sequence difference angle = | –19.8° – 0.0° | = 19.8° < 75°
•
Negative-sequence directional difference angle = | –19.8° – 0.0° | = 19.8° < 75°
Содержание L90
Страница 14: ...1 4 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL FOR FURTHER ASSISTANCE CHAPTER 1 INTRODUCTION 1 ...
Страница 68: ...2 54 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL SPECIFICATIONS CHAPTER 2 PRODUCT DESCRIPTION 2 ...
Страница 136: ...3 68 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL CONNECT TO D400 GATEWAY CHAPTER 3 INSTALLATION 3 ...
Страница 224: ...4 88 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL FLEXLOGIC DESIGN USING ENGINEER CHAPTER 4 INTERFACES 4 ...
Страница 692: ...6 36 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL PRODUCT INFORMATION CHAPTER 6 ACTUAL VALUES 6 ...
Страница 708: ...7 16 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL TARGETS MENU CHAPTER 7 COMMANDS AND TARGETS 7 ...
Страница 742: ...9 6 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL TESTING CHAPTER 9 COMMISSIONING 9 ...
Страница 804: ...10 62 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL FAULT LOCATOR CHAPTER 10 THEORY OF OPERATION 10 ...
Страница 872: ...C 6 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL COMMAND LINE INTERFACE APPENDIX C COMMAND LINE INTERFACE C ...
Страница 878: ...D 6 L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL REVISION HISTORY APPENDIX D MISCELLANEOUS D ...
Страница 882: ...iv L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL ABBREVIATIONS ...
Страница 900: ...xviii L90 LINE CURRENT DIFFERENTIAL SYSTEM INSTRUCTION MANUAL INDEX ...