One-terminal fault location for HVDC flexible transmission lines based on wave voltage distribution features

被引:3
作者
机构
[1] School of Electrical Engineering, Xi'an Jiaotong University
[2] Jinan Power Supply Company, Shandong Electric Power Corporation
[3] Shanxi Shuozhou Electric Power Supply Company
来源
Li, D. (lidekun@yeah.net) | 1600年 / Automation of Electric Power Systems Press卷 / 37期
关键词
Fault location; High voltage direct current (HVDC) Flexible; One-terminal data; Wave voltage distribution;
D O I
10.7500/AEPS20130221007
中图分类号
学科分类号
摘要
A one-terminal fault location method for high voltage direct current (HVDC) Flexible transmission lines based on distributed parameter model is proposed. As high-capacity capacitors are connected to both ends of HVDC Flexible transmission lines, in the network of one-mode fault component, the voltage travelling waves have the following two features: total reflection of voltage traveling wave occurring at both DC buses of two-terminal HVDC transmission system and at the fault point the refraction of traveling wave stronger than the reflection; the polarity of voltage traveling wave changed due to reflection rather than refraction. Then, the voltage distribution of the first reflected wave at the measuring point and its forward path can be calculated. Finally, the strongest positive switching point in the voltage distribution can be found, and the distance from this point to the opposite terminal is the fault distance. This method has a satisfactory precision and is not affected by transition resistance theoretically. Besides, there is no need to artificially recognize the wave front of the traveling wave and the automation of fault location is easy to implement by use of the proposed algorithm. Simulation results show this method is applicable to the whole line. © 2013 State Grid Electric Power Research Institute Press.
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页码:83 / 88
页数:5
相关论文
共 15 条
  • [1] Liang X., Zhang P., Chang Y., Recent advances in high-voltage direct-current power transmission and its developing potential, Power System Technology, 36, 4, pp. 1-9, (2012)
  • [2] Liu Z., Song Q., Liu W., VSC-HVDC system based on modular multilevel converters, Automation of Electric Power Systems, 34, 2, pp. 53-58, (2010)
  • [3] Xu Z., Chen H., Review and applications of VSC HVDC, High Voltage Engineering, 30, 1, pp. 1-10, (2007)
  • [4] (2007)
  • [5] Song G., Zhou D., Jiao Z., Et al., A novel fault location principle for HVDC transmission line, Automation of Electric Power Systems, 31, 24, pp. 57-61, (2007)
  • [6] Gao S., Suonan J., Song G., Et al., Fault location method for HVDC transmission lines on the basis of the distributed parameter model, Proceedings of the CSEE, 30, 13, pp. 75-80, (2010)
  • [7] Cai X., Song G., Gao S., Et al., A novel fault-location method for VSC-HVDC transmission lines based on natural frequency of current, Proceedings of the CSEE, 31, 28, pp. 112-119, (2011)
  • [8] Dewe M.B., Sankar S., Arrillaga J., Application of satellite time references to HVDC fault location, IEEE Trans on Power Delivery, 8, 3, pp. 1295-1302, (1993)
  • [9] Zhai Y., Practical fault location method of HVDC power transmission line, Proceedings of the CSU-EPSA, 20, 5, pp. 70-73, (2008)
  • [10] Zhao Y., Wang S., Research of HVDC transmission line traveling-wave fault location method based on wavelet modulus maxima theory, Relay, 35, 1, pp. 13-17, (2007)