• CSCD核心库收录期刊
  • 中文核心期刊
  • 中国科技核心期刊

电力建设 ›› 2014, Vol. 35 ›› Issue (7): 115-120.doi: 10.3969/j.issn.1000-7229.2014.07.020

• 输配电技术 • 上一篇    下一篇

±800 kV与±500 kV换流站共用接地极时入地电流对极址附近电位分布的影响

张富春1,郭婷2,黎晓辰1,周文俊2,黄海1,喻剑辉2   

  1. 1. 中国南方电网有限责任公司超高压输电公司广州局,广州市 510400;2. 武汉大学电气工程学院,武汉市 430072
  • 出版日期:2014-07-01
  • 作者简介:张富春(1982),男,学士,工程师,研究方向为输电线路运行维护及管理,E-mail:tomzzffcc@163.com; 郭婷(1987),女,博士研究生,研究方向为电力系统过电压与接地技术,E-mail:guoting1017@126.com; 黎晓辰(1988),男,从事线路运行与维护工作,E-mail:crlxc@163.com; 周文俊(1959),男,二级教授,博导,IEEE高级会员,主要从事防雷接地、高电压绝缘与测试的研究,本文通讯作者,E-mail:wjzhou@whu.edu.cn; 黄海(1990),男,大专,从事线路运行与维护工作,E-mail:605084148@qq.com; 喻剑辉(1954),男,三级教授,硕士生导师,长期从事高电压技术的研究与教学工作,E-mail:jhyu@whu.edu.cn。
  • 基金资助:

    南方电网公司科技项目(K-GY2012-031)。

Influence of Ground-Return Current of ±800 kV and ±500 kV Converter Stations Sharing a Common Grounding Electrode on Potential Distribution

ZHANG Fuchun1,GUO Ting2,LI Xiaochen1,ZHOU Wenjun2,HUANG Hai1,YU Jianhui2   

  1. 1. Extra Voltage Power Transmission Company, China Southern Power Grid Co., Ltd., Guangzhou 510400, China;2. School of Electrical Engineering of Wuhan University, Wuhan 430072, China
  • Online:2014-07-01

摘要:

±800 kV楚穗直流换流站与±500 kV兴安直流换流站所共用的鱼龙岭接地极其中一回线路检修,另一回线路单极大地回路运行时,极地附近10 km范围内的电位分布决定了检修线路的检修措施;利用CDEGS软件计算了接地极附近电位分布,并与该极址投运前系统调试期间的测量结果进行了对比。结果表明:单回线路检修,另一回线路单极大地回路运行时,接地极内外环上方呈地表电位峰值,且接地极内环上方地电位高于外环,接地极外环地电位衰减迅速;跨步电压也在极环处达到峰值,但小于设计值,接触电压按标准采取措施后可满足限值要求;实测结果与计算结果基本一致;因土壤电阻率较低使得跨步电压偏高的部分区域,检修作业时应采取相应的防护措施。

关键词: 共用接地极, 单极大地回路运行, 地表电位分布, 跨步电压, 接触电压, 线路检修

Abstract:

The potential distribution near the Yulongling electrode site within 10 km when a grounding line in converter stations sharing a DC common grounding electrode is being maintaining while the other one is under monopolar ground-return mode, has a directly relationship to the maintenance work of Chusui ±800 kV DC transmission engineering and Xingan ±500 kV DC transmission engineering. The potential distribution near the grounding electrode site was researched by using software CDEGS and the research results were compared with the actual measurements during the system debugging. The results show that in the above operating case, the peak distribution occurs above the electrode sites inner ring and outer ring, and the ground potential above the inner ring is higher than that above the outer ring, which decays rapidly. The step voltage peak is also at the rings but less than the design value, and the contact voltage can meet the limit requirement according to the standard measures. The actual measurements and calculated results are basically consistent except that the step voltage value in some area is high due to the low soil resistivity, so the maintenance operation in this area should take appropriate protective measures.

Key words: common grounding electrode, monopolar ground-return mode, ground surface potential distribution, step voltage, contact voltage, line maintenance