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2
CURRENT DIFFERENTIAL PROTECTION PRINCIPLE
Current differential protection is based on Kirchoff’s Law. It generally uses the Merz-Price principle in which the
sum of the currents entering the protected zone should equal the sum of the currents leaving the protected zone.
A difference between these currents is known as differential current. If the differential current exceeds a threshold,
then a protection device may be required to trip. If the differential current is below the threshold then it is expected
to restrain.
Errors caused by mis-match of the current transformers at the different terminals, or saturation of the current
transformers during external faults could lead to false tripping under healthy conditions. For that reason a
restraining quantity is normally applied so that when the magnitude of the current in the system rises, so the level
of differential current necessary to cause a trip rises. The level of restraint applied is called a bias quantity and its
relationship to the operate quantity is called a Biased Differential characteristic.
Current differential protection does not need voltage transformer inputs, but they can be employed to enhance
capacitive charging, current compensation, protection, control, automation, and supervision features of this
product for certain applications.
To provide current differential protection of transmission lines and distribution feeders, it is normal practice to have
similar devices at each terminal with interconnecting communications links to exchange current signal
information between terminals.
When applying numerical current differential to protection of transmission lines and distribution feeders, as well as
communicating details of the local current measurements, the product also communicates timing, status, and
control data to remote terminals. The current, timing, status, and control data are encapsulated into messages
(sometimes referred to as telegrams) which are transmitted frequently and regularly. The timing data is used to
align local and remote current measurements. The control and status data is used for purposes such as
intertripping. Messages are secured by an address field as well as a cyclic redundancy check code (CRC code). The
use of the address field ensures that only the intended receiving device will respond to the message. Corruption of
the data in the messages could potentially cause the product to trip incorrectly. The use of the CRC code together
with other error checking prevents this.
2.1
NUMERICAL CURRENT DIFFERENTIAL PROTECTION
At each terminal in the scheme the power system current input quantities are acquired, converted into numerical
values, filtered, and compared with current input values from the other terminal(s) in the scheme.
For each phase, and at each terminal, the vector sum of the currents entering the protected zone is calculated.
This is known as the Differential current and provides an operating quantity. Also calculated is the scalar sum of
the same currents, of which a proportion is used as a restraining quantity. This is known as the bias current. To
determine whether tripping should occur, the Differential Current is compared with a percentage of the Bias
Current. If it is exceeded then a trip can be initiated.
The Differential and Bias currents are calculated on a per phase basis, and the tripping decision is made on a per
phase basis. However, the Bias current used in the calculation is the same for all three phases and is based on the
highest of the Bias currents calculated for each phase. This is called Maximum Bias and improves discrimination
for single phase faults.
Products are able to protect two to six terminals with a maximum of four junctions. All models have two
communications channels for the multi-end current differential protection function. Where two terminals are
protected with both communications channels, redundancy ensures integrity of the protection in the event of a
single communication link failure. With more than two terminals, the communications channels are ring
connected, which ensures communication if one channel link fails--as communications are in both directions
around the ring.
Line differential protection requires the comparison of power system quantities taken at the different line
terminals. For a meaningful comparison, synchronisation of the current signals is needed so that they are related
to a common time reference. Different methods are used to achieve current signal synchronisation – some
requiring external time reference signals, and some using internal timing signals.
Chapter 6 - Current Differential Protection
P54A/B/C/E
98
P54xMED-TM-EN-1
Summary of Contents for P4A
Page 2: ......
Page 20: ...Contents P54A B C E xviii P54xMED TM EN 1 ...
Page 27: ...CHAPTER 1 INTRODUCTION ...
Page 28: ...Chapter 1 Introduction P54A B C E 2 P54xMED TM EN 1 ...
Page 38: ...Chapter 1 Introduction P54A B C E 12 P54xMED TM EN 1 ...
Page 39: ...CHAPTER 2 SAFETY INFORMATION ...
Page 40: ...Chapter 2 Safety Information P54A B C E 14 P54xMED TM EN 1 ...
Page 52: ...Chapter 2 Safety Information P54A B C E 26 P54xMED TM EN 1 ...
Page 53: ...CHAPTER 3 HARDWARE DESIGN ...
Page 54: ...Chapter 3 Hardware Design P54A B C E 28 P54xMED TM EN 1 ...
Page 86: ...Chapter 3 Hardware Design P54A B C E 60 P54xMED TM EN 1 ...
Page 87: ...CHAPTER 4 SOFTWARE DESIGN ...
Page 88: ...Chapter 4 Software Design P54A B C E 62 P54xMED TM EN 1 ...
Page 99: ...CHAPTER 5 CONFIGURATION ...
Page 100: ...Chapter 5 Configuration P54A B C E 74 P54xMED TM EN 1 ...
Page 120: ...Chapter 5 Configuration P54A B C E 94 P54xMED TM EN 1 ...
Page 121: ...CHAPTER 6 CURRENT DIFFERENTIAL PROTECTION ...
Page 122: ...Chapter 6 Current Differential Protection P54A B C E 96 P54xMED TM EN 1 ...
Page 149: ...CHAPTER 7 AUTORECLOSE ...
Page 150: ...Chapter 7 Autoreclose P54A B C E 124 P54xMED TM EN 1 ...
Page 207: ...CHAPTER 8 CB FAIL PROTECTION ...
Page 208: ...Chapter 8 CB Fail Protection P54A B C E 182 P54xMED TM EN 1 ...
Page 219: ...CHAPTER 9 CURRENT PROTECTION FUNCTIONS ...
Page 220: ...Chapter 9 Current Protection Functions P54A B C E 194 P54xMED TM EN 1 ...
Page 244: ...Chapter 9 Current Protection Functions P54A B C E 218 P54xMED TM EN 1 ...
Page 247: ...CHAPTER 10 VOLTAGE PROTECTION FUNCTIONS ...
Page 248: ...Chapter 10 Voltage Protection Functions P54A B C E 222 P54xMED TM EN 1 ...
Page 261: ...CHAPTER 11 FREQUENCY PROTECTION FUNCTIONS ...
Page 262: ...Chapter 11 Frequency Protection Functions P54A B C E 236 P54xMED TM EN 1 ...
Page 268: ...Chapter 11 Frequency Protection Functions P54A B C E 242 P54xMED TM EN 1 ...
Page 269: ...CHAPTER 12 MONITORING AND CONTROL ...
Page 270: ...Chapter 12 Monitoring and Control P54A B C E 244 P54xMED TM EN 1 ...
Page 300: ...Chapter 12 Monitoring and Control P54A B C E 274 P54xMED TM EN 1 ...
Page 301: ...CHAPTER 13 SUPERVISION ...
Page 302: ...Chapter 13 Supervision P54A B C E 276 P54xMED TM EN 1 ...
Page 312: ...Chapter 13 Supervision P54A B C E 286 P54xMED TM EN 1 ...
Page 323: ...CHAPTER 14 DIGITAL I O AND PSL CONFIGURATION ...
Page 324: ...Chapter 14 Digital I O and PSL Configuration P54A B C E 298 P54xMED TM EN 1 ...
Page 336: ...Chapter 14 Digital I O and PSL Configuration P54A B C E 310 P54xMED TM EN 1 ...
Page 337: ...CHAPTER 15 FIBRE TELEPROTECTION ...
Page 338: ...Chapter 15 Fibre Teleprotection P54A B C E 312 P54xMED TM EN 1 ...
Page 354: ...Chapter 15 Fibre Teleprotection P54A B C E 328 P54xMED TM EN 1 ...
Page 355: ...CHAPTER 16 ELECTRICAL TELEPROTECTION ...
Page 356: ...Chapter 16 Electrical Teleprotection P54A B C E 330 P54xMED TM EN 1 ...
Page 366: ...Chapter 16 Electrical Teleprotection P54A B C E 340 P54xMED TM EN 1 ...
Page 367: ...CHAPTER 17 COMMUNICATIONS ...
Page 368: ...Chapter 17 Communications P54A B C E 342 P54xMED TM EN 1 ...
Page 439: ...CHAPTER 18 CYBER SECURITY ...
Page 440: ...Chapter 18 Cyber Security P54A B C E 414 P54xMED TM EN 1 ...
Page 457: ...CHAPTER 19 INSTALLATION ...
Page 458: ...Chapter 19 Installation P54A B C E 432 P54xMED TM EN 1 ...
Page 471: ...CHAPTER 20 COMMISSIONING INSTRUCTIONS ...
Page 472: ...Chapter 20 Commissioning Instructions P54A B C E 446 P54xMED TM EN 1 ...
Page 513: ...CHAPTER 21 MAINTENANCE AND TROUBLESHOOTING ...
Page 514: ...Chapter 21 Maintenance and Troubleshooting P54A B C E 488 P54xMED TM EN 1 ...
Page 530: ...Chapter 21 Maintenance and Troubleshooting P54A B C E 504 P54xMED TM EN 1 ...
Page 531: ...CHAPTER 22 TECHNICAL SPECIFICATIONS ...
Page 532: ...Chapter 22 Technical Specifications P54A B C E 506 P54xMED TM EN 1 ...
Page 558: ...Chapter 22 Technical Specifications P54A B C E 532 P54xMED TM EN 1 ...
Page 559: ...APPENDIX A ORDERING OPTIONS ...
Page 560: ...Appendix A Ordering Options P54A B C E P54xMED TM EN 1 ...
Page 565: ...APPENDIX B SETTINGS AND SIGNALS ...
Page 566: ...Appendix B Settings and Signals P54A B C E P54xMED TM EN 1 ...
Page 790: ...Appendix B Settings and Signals P54A B C E B224 P54xMED TM EN 1 ...
Page 835: ...APPENDIX C WIRING DIAGRAMS ...
Page 836: ...Appendix C Wiring Diagrams P54A B C E P54xMED TM EN 1 ...
Page 849: ......