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直流/交流电压下锥形绝缘子表面电荷积聚特性

李大雨 侯易岑 张贵新 刘伟

高电压技术2019,Vol.45Issue(4):1086-1092,7.
高电压技术2019,Vol.45Issue(4):1086-1092,7.DOI:10.13336/j.1003-6520.hve.20190329010

直流/交流电压下锥形绝缘子表面电荷积聚特性

Surface Charge Accumulation Characteristics of Cone-shape Insulator Under DC/AC

李大雨 1侯易岑 1张贵新 1刘伟2

作者信息

  • 1. 清华大学电机工程与应用电子技术系, 北京 100084
  • 2. 国网安徽省电力有限公司电力科学研究院, 合肥 230022
  • 折叠

摘要

Abstract

In order to investigate the charge accumulation characteristics of a basin-type insulator in GIL under DC and AC voltages, a downsized cone-shape insulator of epoxy material was designed. Based on the electrostatic probe method, the surface potential of insulator was measured, and the charge distribution was obtained by a charge inversion algorithm.Moreover, the law of charge accumulation characteristics and transformation under DC and AC voltages were analyzed, and a method of extracting the phase of AC voltage truncation time was also proposed. The relationship between charge distribution and the development of AC voltage can be obtained by combining the macroscopic measurement results with the microscopic discharge process. It is shown that, in this coaxial electrode configuration, the charge accumulation on insulator surface is mainly caused by bulk current under DC voltage, while it is caused by partial discharge under AC voltage. Under DC voltage, the charge polarity is the same as the applied voltage, and the surface charge density is mainly affected by the voltage amplitude and applying time of voltage. However, the charge polarity under AC voltage is related to the phase of voltage truncation moment. The surface charge density is affected by repeated neutralization between positive and negative charges, and its value is about two to three orders of magnitude smaller than that under the DC voltage.

关键词

直流/交流电压/锥形绝缘子/表面电荷/积聚机理/电压截断相位

Key words

DC/AC voltage/cone-shape insulator/surface charge/accumulation mechanism/voltage truncation phase

引用本文复制引用

李大雨,侯易岑,张贵新,刘伟..直流/交流电压下锥形绝缘子表面电荷积聚特性[J].高电压技术,2019,45(4):1086-1092,7.

基金项目

国家重点研发计划 (2017YFB0902500) (2017YFB0902500)

国家电网公司总部科技项目 (环保型管道输电关键技术) (环保型管道输电关键技术)

高电压技术

OA北大核心CSCDCSTPCD

1003-6520

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