Claims
- 1. A method for locating a fault in a transmission line, the transmission line comprising a sending end and a receiving end, a tapped load connected to the transmission line at a tap node, the tap node dividing the transmission line into a sending side and a receiving side, the sending end comprising a measuring device, the receiving end comprising a measuring device, the method comprising:
obtaining measured circuit parameters including measured current and voltage values at the sending end and at the receiving end of the transmission line; calculating a load impedance of the tapped load; calculating a first fault location assuming that the fault is located on the sending side of the tap node; calculating a second fault location assuming that the fault is located on the receiving side of the tap node; and selecting the calculated fault location from one of either the first fault location and the second fault location, by selecting the fault location having a value within a predetermined range.
- 2. The method of claim 1 further comprising calculating a phase angle difference due to unsynchronized measurement using the measured pre-fault current and the measured pre-fault voltage values.
- 3. The method of claim 2 wherein the obtaining measured circuit parameters further comprises obtaining measured circuit parameters from the sending end measuring device and the receiving end measuring device.
- 4. The method of claim 2 wherein the obtaining measured circuit parameters further comprises obtaining the values, Vp1S Ip1S,T1, Vp1R, Ip1R,T1, V1S, I1S,T1, V1R, and I1R,T1 where:
Vp1S is the positive sequence pre-fault complex voltage from the sending end to ground, Ip1S,T1 is the positive sequence pre-fault complex current from the sending end to the tap node, Vp1R is the positive sequence pre-fault complex voltage from the receiving end to ground, IP1R,T1 is the positive sequence pre-fault complex current from the receiving end to the tap node, V1S is the positive sequence faulted complex voltage from the sending end to ground, I1S,T1 is the positive sequence faulted complex current from the sending end to the tap node, V1R is the positive sequence faulted complex voltage from the receiving end to ground, and I1R,T1 is the positive sequence faulted complex current from the receiving end to the tap node, and the transmission line is a three phase transmission line.
- 5. The method of claim 4 wherein the calculating a phase angle further comprises calculating the phase angle, 8, according to the following equation:
- 6. The method of claim 4 wherein the measured data is synchronized and the phase angle, δ, is zero.
- 7. The method of claim 5 wherein the calculating a load impedance of the tapped load comprises calculating the load impedance of the tapped load according to the following equation:
- 8. The method of claim 7 wherein the calculating a first fault location comprises calculating a first fault location according to the following equation:
- 9. The method of claim 8 wherein the calculating a second fault location comprises calculating a second fault location according to the following equation:
- 10. The method of claim 9 wherein the selecting the calculated fault location comprises selecting the calculated fault location from one of either mS,T1 and mR,T1 by selecting the one having a value within a predetermined range representing a full distance between two nodes.
- 11. The method of claim 10 wherein the predetermined range is from zero to one.
- 12. A system for locating a fault in a transmission line having a sending end and a receiving end and a tapped load connected to the transmission line at a tap node, the tap node dividing the transmission line into a sending side and a receiving side, the system comprising:
a processor for calculating a fault location in the transmission line; a sending end measuring device connected to the processor for taking pre-fault and faulted measurements of the sending end of the transmission line; a receiving end measuring device connected to the processor for taking pre-fault and faulted measurements of the receiving end of the transmission line; and wherein the processor is adapted to obtain measured circuit parameters including measured current and voltage values from the sending end measuring device and the receiving end measuring device, calculate a load impedance of the tapped load, calculate a first fault location assuming that the fault is located on the sending side of the tap node, calculate a second fault location assuming that the fault is located on the receiving side of the tap node; and select the calculated fault location from one of the first fault location and the second fault location, by selecting the fault location having a value within a predetermined range.
- 13. The system of claim 12 wherein the processor is further adapted to calculate a phase angle difference due to unsynchronized measurement using the measured pre-fault current and the measured pre-fault voltage values.
- 14. The system of claim 13 wherein the sending end measuring device comprises a voltage sensor.
- 15. The system of claim 13 wherein the sending end measuring device comprises a current sensor.
- 16. The system of claim 13 wherein the receiving end measuring device comprises a voltage sensor.
- 17. The system of claim 13 wherein the receiving end measuring device comprises a current sensor.
- 18. The system of claim 13 wherein the sending end measuring device is connected to the processor through a data link.
- 19. The system of claim 13 wherein the receiving end measuring device is connected to the processor through a data link.
- 20. The system of claim 13 wherein the sending end measuring device comprises a memory for storing pre-fault measurements.
- 21. The system of claim 13 wherein the receiving end measuring device comprises a memory for storing pre-fault measurements.
- 22. The system of claim 13 wherein the processor is adapted to obtain the values, Vp1S, IP1S,T1, Vp1R Ip1R,T1, V1S, I1S,T1, V1R, and I1R,T1 where:
Vp1S is the positive sequence pre-fault complex voltage from the sending end to ground, IpS,T1 is the positive sequence pre-fault complex current from the sending end to the tap node, Vp1R is the positive sequence pre-fault complex voltage from the receiving end to ground, Ip1R,T1 is the positive sequence pre-fault complex current from the receiving end to the tap node, V1S is the positive sequence faulted complex voltage from the sending end to ground, I1S,T1 is the positive sequence faulted complex current from the sending end to the tap node, V1R is the positive sequence faulted complex voltage from the receiving end to ground, and I1R,T1 is the positive sequence faulted complex current from the receiving end to the tap node, and the transmission line is a three phase transmission line.
- 23. The system of claim 22 wherein the processor is adapted to calculate the phase angle, 6, according to the following equation:
- 24. The system of claim 22 wherein the measured data is synchronized and the phase angle, δ, is zero.
- 25. The system of claim 23 wherein the processor is adapted to calculate a first fault location according to the following equation:
- 26. The system of claim 25 wherein the processor is adapted to calculate a second fault location according to the following equation:
- 27. The system of claim 26 wherein the processor is adapted to select the calculated fault location from one of either mS,T1 and mR,T1 by selecting the one having a value within a predetermined range representing a full distance between two nodes.
- 28. The system of claim 27 wherein the predetermined range is from zero to one.
- 29. The system of claim 12 wherein the transmission line is a single phase transmission line.
- 30. A computer-readable medium having instructions stored thereon for locating a fault in a transmission line, the transmission line comprising a sending end and a receiving end, a tapped load connected to the transmission line at a tap node, the tap node dividing the transmission line into a sending side and a receiving side, the sending end comprising a measuring device, the receiving end comprising a measuring device, the instructions, when executed on a processor, causing the processor to perform the following:
obtaining measured circuit parameters including measured current and voltage values at the sending end and at the receiving end of the transmission line; calculating a load impedance of the tapped load; calculating a first fault location assuming that the fault is located on the sending side of the tap node; calculating a second fault location assuming that the fault is located on the receiving side of the tap node; and selecting the calculated fault location from one of either the first fault location and the second fault location, by selecting the fault location having a value within a predetermined range.
- 31. The computer readable medium of claim 30 further comprising calculating a phase angle difference due to unsynchronized measurement using the measured pre-fault current and the measured pre-fault voltage values;
- 32. The computer-readable medium of claim 30 wherein the obtaining measured circuit parameters further comprises obtaining measured circuit parameters from the sending end measuring device and the receiving end measuring device.
- 33. The computer-readable medium of claim 31 wherein the obtaining measured circuit parameters further comprises obtaining the values, Vp1S, Ip1S,T1, Vp1R, Ip1R,T1, V1S, I1S,T1, V1R, and I1R,T1 where:
Vp1 S is the positive sequence pre-fault complex voltage from the sending end to ground, Ip1S,T1 is the positive sequence pre-fault complex current from the sending end to the tap node, Vp1R is the positive sequence pre-fault complex voltage from the receiving end to ground, IP1R,T1 is the positive sequence pre-fault complex current from the receiving end to the tap node, V1S is the positive sequence faulted complex voltage from the sending end to ground, I1S,T1 is the positive sequence faulted complex current from the sending end to the tap node, V1R is the positive sequence faulted complex voltage from the receiving end to ground, and I1R,T1 is the positive sequence faulted complex current from the receiving end to the tap node, and the transmission line is a three phase transmission line.
- 34. The computer-readable medium of claim 33 wherein the calculating a phase angle further comprises calculating the phase angle, δ, according to the following equation:
- 35. The computer-readable medium of claim 33 wherein the measured data is synchronized and the phase angle, δ, is zero.
- 36. The computer-readable medium of claim 34 wherein the calculating a load impedance of the tapped load comprises calculating the load impedance of the tapped load according to the following equation:
- 37. The computer-readable medium of claim 36 wherein the calculating a first fault location comprises calculating a first fault location according to the following equation:
- 38. The computer-readable medium of claim 37 wherein the calculating a second fault location comprises calculating a second fault location according to the following equation:
- 39. The computer-readable medium of claim 38 wherein the selecting the calculated fault location comprises selecting the calculated fault location from one of either mS,T1 and mR,T1 by selecting the one having a value within a predetermined range representing a full distance between two nodes.
- 40. The computer-readable medium of claim 39 wherein the predetermined range is from zero to one.
- 41. The computer-readable medium of claim 30 wherein the transmission line is a single phase transmission line.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to co-pending and commonly assigned U.S. patent application Ser. No. ______, filed herewith entitled “Systems and Methods for Locating Faults on a Transmission Line with Multiple Tapped Loads” (Attorney Docket No.: ABTT-0231/B000580).