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Simulation analysis on lightning strike characteristics of 35kV overhead lines in mountainous area |
ZHANG Wenfeng1, LI Zhiwei1, ZHANG Guojian1, LIN Gan2,3 |
1. Dali Power Supply Bureau, Yunnan Power Grid Co., Ltd, Dali, Yunnan 671000; 2. Hubei Provincial Engineering Technology Research Center for Power Transmission Line (China Three Gorges University), Yichang, Hubei 443002; 3. College of Electrical Engineering & New Energy, China Three Gorges University, Yichang, Hubei 443002 |
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Abstract The typical terrains characteristics of Dali mountainous area overhead lines are analyzed in this paper. Based on the lightning activity data of lines collected by the lightning location system, the lightning resistance level and the trip rate of direct and induced lightning are calculated under typical terrain conditions such as ridge, hillside, valley and plain. The variation law of lightning trip rate of overhead line under mountainous terrain is obtained. The results show that the lightning trip rate varies greatly under different terrain conditions. The direct lightning trip rate of the line located on the ridge is larger and decreases with the decrease of the slope on both sides. However, the induced lightning trip rate of the line located in the valley is larger, which increases with the increase of the slope. Compared with plain areas, the lightning trip rate of mountainous lines is increased by about 64%.
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Received: 05 May 2022
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Cite this article: |
ZHANG Wenfeng,LI Zhiwei,ZHANG Guojian等. Simulation analysis on lightning strike characteristics of 35kV overhead lines in mountainous area[J]. Electrical Engineering, 2022, 23(9): 19-28.
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URL: |
http://dqjs.cesmedia.cn/EN/Y2022/V23/I9/19
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[1] 交流电气装置的过电压保护和绝缘配合设计规范: GB/T 50064—2014[S] GB/T 50064—2014[S]. 北京: 中国计划出版社, 2014. [2] 王录亮, 韩来君, 黄松. 海南强雷区典型配电线路差异化防雷措施研究[J]. 电气技术, 2022, 23(3): 103-108. [3] 梁开旺, 冯珊. 10kV线路穿刺型避雷器安装配置方式实验与仿真研究[J]. 电气技术, 2022, 23(4): 102-108. [4] 黎鹏, 肖盼, 屈莹莹, 等. 带长连续电流多重回击作用下500kV避雷器温升特性分析[J]. 电工技术学报, 2020, 35(增刊2): 603-611. [5] 代杰杰, 刘亚东, 姜文娟, 等. 基于雷电行波时域特征的输电线路雷击类型辨识方法[J]. 电工技术学报, 2016, 31(6): 242-250. [6] 李新, 武利会, 范心明, 等. 复杂地形条件下超高压错层塔上坡位上相绕击跳闸率计算[J]. 电瓷避雷器, 2020(5): 60-67. [7] 杨跃光, 张建刚, 徐剑伟, 等. 基于改进EGM的±800kV输电雷电屏蔽性能优化配置研究[J]. 电瓷避雷器, 2020(1): 71-75, 81. [8] 姚尧, 李健, 李涵, 等. 基于山区雷电先导发展的改进电气几何模型仿真研究[J]. 高电压技术, 2015, 41(5): 1550-1557. [9] 赵国伟, 白洁, 李承, 等. 微地形环境下10kV配网雷害分析及防护措施优化配置[J]. 智慧电力, 2020, 48(4): 112-118. [10] 王建军, 唐谟懿, 周力行. 地形地貌对配电线路雷害影响分析[J]. 电力科学与技术学报, 2017, 32(1): 151-156. [11] 李瑞芳, 陶鑫, 杨雪, 等. 山区典型地形雷击地闪密度分布差异研究[J]. 高压电器, 2020, 56(5): 107-113. [12] 匡福志, 李霞, 钟湘平, 等. 山区配电线路塔位地形雷击风险分类[J]. 电力科学与技术学报, 2021, 36(4): 66-72. [13] 傅景伟, 李小平, 姚尧, 等. 10kV架空配电线路常用防雷措施防雷性能对比研究[J]. 水电能源科学, 2019, 37(12): 132-135, 139. [14] 黎鹏, 肖盼, 谌洪, 等. 地闪长连续电流对500kV直流输电线路故障重启动特性的影响[J]. 电网技术, 2021, 45(4): 1596-1604. [15] 卢泽军, 赵淳, 王宇, 等. 地闪长连续电流对±500kV直流输电线路动作特性的影响[J]. 电瓷避雷器, 2020(6): 29-35. [16] 曾程, 杨廷方, 李既明, 等. 某山区大跨越10kV线路分流系数量化分析及防雷改造[J]. 电瓷避雷器, 2020(4): 1-6. [17] 祁汭晗, 蔡汉生, 廖民传, 等. 计及架空地线的配电线路雷电感应过电压模型及应用[J]. 电网技术, 2021, 45(6): 2413-2419. [18] HOIDALEN H K.Calculation of lightning-induced voltages in MODELS including lossy ground effects[C]// International Conference on Power Systems Transients, New Orleans, USA, 2003. [19] HOIDALEN H K.Analytical formulation of lightning-induced voltages on multiconductor overhead lines above lossy ground[J]. IEEE Transactions on Electro-magnetic Compatibility, 2003, 45(1): 92-100. [20] 张金波, 彭晓宇, 王磊, 等. 复杂地形下架空线雷电感应过电压特性仿真研究[J]. 高电压技术, 2019, 45(11): 3708-3714. [21] 马御棠, 王磊, 马仪, 等. 云南高海拔地区雷电活动分布规律的研究[J]. 电瓷避雷器, 2012(3): 46-50, 56. [22] IEEE guide for improving the lightning performance of electric power overhead distribution lines: IEEE Std1410—2010[S]. |
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