Suzhou Electric Appliance Research Institute
期刊号: CN32-1800/TM| ISSN1007-3175

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雷击造成的线路短路点识别和定位方法

来源:电工电气发布时间:2016-04-05 16:05 浏览次数:778

雷击造成的线路短路点识别和定位方法 

韩志锟 
江苏省电力设计院,江苏 南京 211102 
 

摘 要: 雷击造成线路故障后,故障点的及时识别和定位有利于电力系统稳定运行。对故障性雷击进行仿真,根据故障行波的特点提出判断故障点与雷击点位置异同的方法。并提出利用相关分析法处理故障行波,根据相关法的定义得到相关峰含义,推导得出测距公式,利用测距公式,对仿真模型进行故障测距。测距结果验证表明,该方法对近距离复杂波头的识别准确有效,可有效进行故障性雷击的故障测距。
关键词: 雷击;输电线路;故障测距;相关分析法;相关峰
中图分类号:TM855 文献标识码:A 文章编号:1007-3175(2013)11-0010-05


Identifying and Positioning of Line Short Circuit PointCaused by Lightning Stroke 

HAN Zhi-kun 
Jiangsu Electric Power Design Institute, Nanjing 211102, China 
 

Abstract: After line fault caused by lightning stroke, in-time identifying and positioning of fault point is favorable for stable operation of power system. This paper carried out simulation for fault lightning stroke point. According to the features of fault waves, a method to judge the difference between fault point and lightning stroke point was raised and the correlation analysis method was proposed to deal with fault travelling wave. According to the definition of correlation, the correlation peak definition was obtained, thus to derive distance measuring formula. The formula was used to carry fault distance measurement for simulation model. The result of distance measurement shows that the method is correct and valid for the identification of short distance complicated peak wave head identification, can effectively carry out fault distance measurement of lightning stroke.
           Key words: lightning stroke; transmission line; fault distance measurement; correlation analysis; correlation peak


参考文献
[1] 葛耀中.新型继电保护和故障测距的原理与技术[M].西安:西安交通大学出版社,2007.
[2] 周鑫,吕飞鹏,吴飞,等. 基于小波变换的T 型线路故障测距新算法[J]. 电力系统保护与控制,2010,38(2):8-11.
[3] 李强,王银乐.高压输电线路的故障测距方法[J].电力系统保护与控制,2009,37(23):192-197.
[4] 成乐祥,李扬,唐瑜.基于改进形态Haar小波在输电线路故障测距中的应用研究[J].电力系统保护与控制,2010,38(6):30-34.
[5] Poisson Q, Rioual P,Meunier M.New signal processing tools applied to power quality analysis[J].IEEE Transactions on Power Delivery, 1999, 14(2):561-566.
[6] 王钢,李海锋,赵建仓,等.基于小波多尺度分析的输电线路直击雷暂态识别[J].中国电机工程学报,2004,24(4):139-144.
[7] Chanda D, Kishore N K, Sinha A K, et al. A wavelet, multiresolution-based analysis for location of the point of strike of a lightning overvoltage on a transmission line[J].IEEE Transactions on Power Delivery, 2004, 19(4):1727-1733.
[8] Imece A F, Durbak D W, Elahi H, et al. Modeling guidelines for fast front transients[J].IEEE Transactions on Power Delivery, 1996, 11(1):493-506.
[9] 郭宁明.行波故障测距中的雷击识别及定位研究[D].北京:中国电力科学研究院,2008.
[10] 黄雄,王志华,尹项根,等. 高压输电线路行波测距的行波波速确定方法[J]. 电网技术,2004,28(19):34-37.
[11] 卢毅,韩志锟,汪燚春,等.T 型输电线路行波故障测距的改进算法[J]. 电力系统保护与控制,2011,39(5):17-21.
[12] Omologo M, Svaizer P.Use of the crosspower-spectrum phase in acoustic event localization[J].IEEE Transactions on Speechand Audio Progressing, 1997, 5(3):288-292.
[13] LU Y, TAN X, HU X.PD detection and localization by acoustic measurements in an oilfilled transformer[J].IEE Proceeding-Science Measurement Technology, 2000, 147(2):81-85.
[14] 李友军,王俊生,郑玉平,等.几种行波测距算法的比较[J].电力系统自动化,2001,25(14):36-39.
[15] 林福昌. 高电压工程[M]. 北京:中国电力出版社,2006.
[16] 郭宁明,覃剑. 输电线路雷击故障情况下的短路点定位方法[J]. 电力系统自动化,2009,33(10):74-77.