
⎯
56
⎯
6 F 2 S 0 8 4 6
CRL will last for the TREBK setting even after the condition above ceases to exist.
≥
1
TREBK
[ZONESEL]
CRL
Z2
Z3
Z4
&
0.01 – 10.00s
0 t
20ms
t 0
"Z3"
"Z2"
214:REV_BLK
Figure 2.4.3.8 Current Reversal Logic
The operation of the current reversal logic and its effect in the event of a fault shown in Figure
2.4.3.7 (a) are as follows. As shown in Figure 2.4.3.7 (b), the current reversal logic of terminal A2
operates (CRL = 1) immediately after the fault occurs. This operation lasts for TREBK setting
even after the current is reversed and Z3 operates, continuously blocking the local tripping and
transmitting a trip block signal to the terminal B2.
Even if overlap arises due to current reversal on the operation of Z3 at terminal A2 and terminal
B2, it will disappear while the current reversal logic is operating, thus avoiding false tripping of
the healthy line of parallel lines. When a current reversal occurs in the direction opposite to the
above, the current reversal logic at terminal B2 will respond similarly.
Current reversal logic is not picked up for internal faults, thus not obstructing high-speed
operation of any protection scheme.
2.4.3.7 Phase Selection Logic
Every command protection has phase selection logic for single-phase tripping. Figure 2.4.3.9
gives details of the phase selection logic displayed in blocks in Figures 2.4.3.1 to 2.4.3.4.
Tripping command signal TRIP of each command protection can be classified by the phase
selection logic as a single-phase tripping command or a three-phase tripping command. If the
distance measuring element for earth fault Z3G (or Z2G depending on the setting of the scheme
switch [ZONESEL]) is operating when a TRIP is input, a single-phase tripping command S-TRIP
is output to the phase in which the phase selection element UVC is operating. If the UVC is
operating with two or more phases, a three-phase tripping command M-TRIP is output.
The undervoltage detection element UVLS, not shown in Figure 2.4.3.9, is used for the phase
selection logic as phase fault detector. The UVLS is also used for fault location.
If the distance measuring element for phase fault Z3S (or Z2S) is operating when a TRIP is input,
a three-phase tripping command M-TRIP is output.
Summary of Contents for GRZ100 B Series
Page 264: ... 263 6 F 2 S 0 8 4 6 Appendix A Block Diagram ...
Page 271: ... 270 6 F 2 S 0 8 4 6 ...
Page 272: ... 271 6 F 2 S 0 8 4 6 Appendix B Signal List ...
Page 307: ... 306 6 F 2 S 0 8 4 6 ...
Page 308: ... 307 6 F 2 S 0 8 4 6 Appendix C Variable Timer List ...
Page 310: ... 309 6 F 2 S 0 8 4 6 Appendix D Binary Input Output Default Setting List ...
Page 321: ... 320 6 F 2 S 0 8 4 6 ...
Page 322: ... 321 6 F 2 S 0 8 4 6 Appendix E Details of Relay Menu and LCD Button Operation ...
Page 331: ... 330 6 F 2 S 0 8 4 6 ...
Page 340: ... 339 6 F 2 S 0 8 4 6 Appendix G Typical External Connections ...
Page 377: ... 376 6 F 2 S 0 8 4 6 ...
Page 384: ... 383 6 F 2 S 0 8 4 6 Appendix J Return Repair Form ...
Page 388: ... 387 6 F 2 S 0 8 4 6 Customer Name Company Name Address Telephone No Facsimile No Signature ...
Page 389: ... 388 6 F 2 S 0 8 4 6 ...
Page 390: ... 389 6 F 2 S 0 8 4 6 Appendix K Technical Data ...
Page 401: ... 400 6 F 2 S 0 8 4 6 ...
Page 402: ... 401 6 F 2 S 0 8 4 6 Appendix L Symbols Used in Scheme Logic ...
Page 405: ... 404 6 F 2 S 0 8 4 6 ...
Page 406: ... 405 6 F 2 S 0 8 4 6 Appendix M Example of Setting Calculation ...
Page 417: ... 416 6 F 2 S 0 8 4 6 ...
Page 418: ... 417 6 F 2 S 0 8 4 6 Appendix N IEC60870 5 103 Interoperability and Troubleshooting ...
Page 434: ... 433 6 F 2 S 0 8 4 6 Appendix P Inverse Time Characteristics ...
Page 437: ... 436 6 F 2 S 0 8 4 6 ...
Page 438: ... 437 6 F 2 S 0 8 4 6 Appendix Q Failed Module Tracing and Replacement ...
Page 444: ... 443 6 F 2 S 0 8 4 6 Appendix R Ordering ...
Page 447: ......