Analysis on single-phase short-circuit current in insulated ground wire during ice-melting of EHVAC transmission lines

被引:0
作者
机构
[1] School of Electrical Engineering, Southwest Jiaotong University, Chengdu, 610031, Sichuan Province
[2] Electric Power Research Institute, Yunnan Electric Power Test Institute Co., Ltd., Kunming, 650051, Yunnan Province
[3] China Electric Power Research Institute, Haidian District, Beijing
来源
Chen, Kui | 1600年 / Power System Technology Press卷 / 38期
关键词
ATP-EMTP; DC ice-melting; EHVAC; Ice-melting insulated ground wire; Single-phase short circuit; Step voltage; Substation grounding systems safety;
D O I
10.13335/j.1000-3673.pst.2014.11.050
中图分类号
学科分类号
摘要
For heavily ice-coated overhead transmission lines the full-length isolation design is applied to the ground wire for DC ice-melting, however the isolation design of the ice-melting ground wire impacts the distribution of short-circuit current between the tower and the ice-melting ground wire. Accurate computation of short-circuit current in the ice-melting ground wire is of significance to the analysis on both step voltage and safety of the grounding mesh. Taking actual full-length insulated ice-melting ground wire as research object, the erection mode of insulated ice-melting ground wire is expounded and using ATP-EMTP simulation software a transmission line model with full-length insulated ground wire is established. The distribution characteristics of short-circuit current in ice-melting insulated ground wire system for EHVAC transmission system under different single-phase short-circuit states are researched and the obtained results are compared with those of uninsulated ground wire system for EHVAC transmission lines. Research results show that the induced voltage due to single-phase short-circuit leads to the breakdown of clearance of ice-melting insulated ground wire and the erection of ice-melting insulated ground wire changes the channel of short-circuit current; after the erection of ice-melting insulated ground wire the short-circuit current flowing back to the grounding mesh changes slightly and does not impact on the safety of grounding mesh; the maximum rising of the current flowing into the ground via tower grounding appears at the position where the short-circuit occurs, therefore special consideration should paid to the step voltage at this position. ©, 2014, Power System Technology Press. All right reserved.
引用
收藏
页码:3266 / 3270
页数:4
相关论文
共 19 条
  • [1] Sun C., Jiang X., Xiong Q., Et al., Analysis of critical icing conditions of conductor and wet-dry grown, Proceedings of the CSEE, 23, 3, pp. 141-145, (2003)
  • [2] Li Z., Bai X., Zhou Z., Et al., Prevention and treatment methods of ice coating in power networks and its recent study, Power System Technology, 32, 4, pp. 7-13, (2008)
  • [3] Huang X., Liu J., Cai W., Et al., Present research situation of icing and snowing of overhead transmission lines in China and foreign countries, Power System Technology, 32, 4, pp. 23-28, (2008)
  • [4] Huang Q., Wang J., Ou M., Analysis on accidents caused by icing damage in Hunan power grid in 2005 and its countermeasures, Power System Technology, 29, 24, pp. 16-19, (2005)
  • [5] Hou H., Yin X., Chen Q., Et al., Review on the wide area blackout of 500 kV main power grid in some areas of south China in 2008 snow disaster, Automation of Electric Power Systems, 32, 11, pp. 12-15, (2008)
  • [6] Zhang H., Liu Y., Zhang P., Requirements analysis and framework design for power system security assessment considering extreme ice disasters, Proceedings of the CSEE, 29, 16, pp. 8-14, (2009)
  • [7] Li Q., Fan Z., Wu Q., Et al., Investigation of ice covered transmission lines and analysis on transmission line failures caused by ice-coating in China, Power System Technology, 32, 9, pp. 33-36, (2008)
  • [8] Zhang W., Yu Y., Su Z., Et al., Investigation and analysis of icing and snowing disaster happened in Hunan Power Grid in 2008, Power System Technology, 32, 8, pp. 1-5, (2008)
  • [9] Li B., Yuan Z., Hui X., Et al., Operation mode of ground wire to reduce ground wire loss of HV AC transmission lines, Power System Technology, 35, 3, pp. 98-102, (2011)
  • [10] Zhang Y., Lang X., Yang B., Influences of conductor arrangement and line transposition adopted in 1 000 kV transmission project on power loss in ground wire, Power System Technology, 35, 4, pp. 21-24, (2011)