首页> 外文期刊>IEEE Transactions on Dielectrics and Electrical Insulation >Conditions of Discharge-Free Operation of XLPE Insulated Power Cable Systems
【24h】

Conditions of Discharge-Free Operation of XLPE Insulated Power Cable Systems

机译:XLPE绝缘电力电缆系统无放电操作的条件

获取原文
获取原文并翻译 | 示例

摘要

A coherent methodology was developed for analysing the risk of partial discharge inception in the insulation of high voltage cables containing spherical voids located at the conductor screen interface and fissures located at the insulation screen interface. These two types of insulation defects present the two most important cases from the point of view of insulation integrity in high voltage cable systems. Our approach was based on the notion of sensitivity of dielectric stress to dimensional change of cable insulation and the notion of sensitivity of the size of discharge free defect to the change of electric field intensity. We investigated how modifications of insulation dimensions can affect the risk of discharge in typical defects. The obtained results revealed that so called slim design of HV cables requires that the size of voids is reduced by approximately a third to ensure discharge free operation. The size of fissures must be reduced approximately tenfold in comparison to the permissible size of similar fissures in a standard design to ensure discharge free operation at the interface with accessories. This poses a very high technological demand on new cable system designs of this type. Increasing the size of cable core creates an increased risk of partial discharge, mainly in fissures. Based on the dimensions of a typical 110 kV cable we showed that a reduction of fissure dimensions by approximately a quarter is required for a discharge free operation if the conductor size increases from 1000 mm2 to 2000 mm2. We have quantified this way the extent to which quality of the insulation extrusion process as well as precision of accessories assembly must improve, in order to assure discharge free operation of cable systems after typical design modifications.
机译:开发了一种连贯的方法,用于分析高压电缆绝缘中局部放电开始的风险,该高压电缆包含位于导体屏蔽层界面的球形空隙和位于绝缘屏蔽层界面的裂缝。从高压电缆系统中的绝缘完整性的观点来看,这两种类型的绝缘缺陷代表了两个最重要的情况。我们的方法基于介电应力对电缆绝缘尺寸变化的敏感性概念以及无放电缺陷的大小对电场强度变化的敏感性概念。我们研究了绝缘尺寸的修改如何影响典型缺陷中放电的风险。获得的结果表明,所谓的超薄高压电缆设计要求将空隙尺寸减小大约三分之一,以确保无放电运行。与标准设计中类似裂缝的允许尺寸相比,裂缝的尺寸必须减小大约十倍,以确保在与附件的接口处无排放地运行。这对这种新型电缆系统设计提出了很高的技术要求。电缆芯线尺寸的增加会增加局部放电的风险,主要是在裂缝中。根据典型的110 kV电缆的尺寸,我们表明,如果导体尺寸从1000 mm 2 增加到2000 mm 2 。我们已经以此方式量化了绝缘挤压工艺的质量以及附件组装的精度必须提高的程度,以确保在典型设计修改后电缆系统能够无放电运行。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号