Reliable lightning protection of ±1 100 kV UHVDC transmission line is crucial for the safe operation of ±1 100 kV UHVDC project. Based on ±1 100 kV UHVDC transmission line from Zhundong to Huadong, which is under construction, to determine the reference value of flashover rate for this project, the lightning trip out rate of the transmission lines already under operation was studied based on statistics from 6 provinces along the route of this project. According to the given computation conditions of this transmission line, the flashover rates at different shielding angle were estimated. To prove the rationality of the computation method used in ±1 100 kV UHVDC transmission line, the lightning performance obtained from the ±1 100 kV UHVDC transmission line was compared with that of the ±800 kV UHVDC transmission line. Researched results showed that the striking flashover rate of this project will satisfy the requirement of the reference value, and the flashover time will not be over 3 times per year when the shielding angle used in the transmission line is not over -10°. The results from this study have been used in the engineering design of ±1 100 kV UHVDC transmission line from Zhundong to Huadong, and will provide basis for drafting lightning protection standards for ±1 100 kV UHVDC transmission lines.
[1] 刘振亚. 全球能源互联网[M]. 北京: 中国电力出版社, 2005.
[2] 陈仕龙, 张杰, 刘红锐, 等. 特高压直流输电线路单端电流方向暂态保护[J]. 电工技术学报, 2016, 31(2): 171-177.Chen Shilong, Zhang Jie, Liu Hongrui, et al. A single-ended current direction transient protection of UHVDC transmission line[J]. Transactions of China Electrotechnical Society, 2016, 31(2): 171-177.
[3] 刘士利, 王洋, 张力丹, 等. ±800kV特高压直流受端分层接入方式下低端阀厅金具结构设计[J]. 电工技术学报, 2017, 32(14): 238-245. Liu Shili, Wang Yang, Zhang Lidan, et al. Structure design of ±800kV UHVDC receiving end low voltage valve hall fitting for hierarchical connection[J]. Transactions of China Electrotechnical Society, 2017, 32(14): 238-245.
[4] 陈仕龙, 谢佳伟, 毕贵红, 等. 一种特高压直流输电线路神经网络双端故障测距新方法[J]. 电工技术学报, 2015, 30(4): 257-264. Chen Shilong, Xie Jiawei, Bi Guihong, et al. A novel two terminal fault location method used ANN for UHVDC transmission line[J]. Transactions of China Electrotechnical Society, 2015, 30(4): 257-264.
[5] 卢毓欣, 韩永霞, 朱志芳, 等. ±1000kV特高压直流换流站绝缘配合[J]. 电工技术学报, 2014, 29(增刊1): 516-523. Lu Yuxin, Han Yongxia, Zhu Zhifang, et al. The insulation and coordination of ±1000kV UHVDC converter station[J]. Transactions of China Electrotechnical Society, 2014, 29(S1): 516-523.
[6] 杜旭, 韩民晓, 田春筝, 等. ±1100kV特高压多端馈入直流系统协调控制[J]. 电工技术学报, 2016, 31(增刊1): 176-183.Du Xu, Han Minxiao, Tian Chunzheng, et al. Coordinated control research of ±1100kV ultra high voltage multi-terminal direct current system[J]. Transactions of China Electrotechnical Society, 2016, 31(S1): 176-183.
[7] 彭谦, 李军, 卞鹏, 等. 改进电气几何模型法在1000 kV输电线路雷电绕击跳闸率计算中的应用[J]. 电网技术, 2010, 34(9): 155-159. Peng Qian, Li Jun, Bian Peng, et al. Application of improved electrical geometry model in calculation of lightning shielding failure-caused trip-out rate of 1000kV power transmission line[J]. Power System Technology, 2010, 34(9): 155-159.
[8] 卢泽军, 谷山强, 赵淳, 等. 应用电气几何模型的高速铁路接触网防雷性能分析[J]. 电网技术, 2014, 38(3): 812-816. Lu Zejun, Gu Shanqiang, Zhao Chun, et al. Analysis on lightning performance for catenary of high-speed railway based on electro-geometric model[J]. Power System Technology, 2014, 38(3): 812-816.
[9] 陈维江, 贺恒鑫, 何俊佳, 等. 输电线路雷电先导发展三维仿真模型[J]. 中国电机工程学报, 2014, 34(36): 6601-6612. Chen Weijiang, He Hengxin, He Junjia, et al. On the 3-dimentional leader progression model for the lightning shielding failure performance estimation of overhead transmission lines[J] . Proceedings of the CSEE, 2014, 34(36): 6601-6612.
[10] 王志勇, 余占清, 李雨, 等. 基于先导发展法的特高压直流输电线路绕击特性分析[J]. 高电压技术, 2011, 37(9): 2178-2184. Wang Zhiyong, Yu Zhanqing, Li Yu, et al. Lighting shielding failure characteristics of UHVDC transmission line using leader progress method[J]. High Voltage Engineering, 2011, 37(9): 2178-2184.
[11] 曾嵘, 耿屹楠, 李雨, 等. 高压输电线路先导发展绕击分析模型研究[J]. 高电压技术, 2008, 34(10): 2041-2046. Zeng Rong, Geng Yinan, Li Yu, et al. Lighting shielding failure of transmission line based on leader progress method[J]. High Voltage Engineering, 2008, 34(10): 2041-2046.
[12] ±800kV直流架空输电线路设计规范:GB/T 50790—2013[S]#x000b1#800kV直流架空输电线路设计规范:GB/T 50790—2013[S]. 北京: 中国计划出版社, 2013.