面向工艺NNBI试验台的输电线路柱式绝缘子分析与设计

Rixin Wang, Yongjian Xu, Caichao Jiang, Yahong Xie, Yuanlai Xie, Chundong Hu, Jun Tao
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引用次数: 0

摘要

高压输电线(HVTL)采用气体绝缘输电线(GITL)技术,是射频离子源系统与负离子基中性束注入器(NNBI)系统供电系统之间的重要环节。HVTL中的支柱绝缘子起着支撑高压导体的作用,其性能和可靠性直接决定了整个HVTL的技术水平和长期运行可靠性。本文提出了两种不同结构的金属嵌套,并对其绝缘性能进行了比较,分析了影响柱式环氧树脂复合绝缘子绝缘性能的因素,包括柱式绝缘子柱半径、金属嵌套半径、金属嵌套埋深、金属嵌套弧高。并通过有限元分析得出如下结论:从电场角度来看,适当减小柱式绝缘子柱半径、增大金属嵌套半径、减小金属嵌套埋深、增大金属嵌套弧高,可获得综合良好的绝缘性能。根据绝缘设计要求,初步确定了HVTL主柱绝缘子和金属嵌套的结构设计参数,为后续HVTL绝缘支架的工程设计奠定了理论和工程基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis and Design of Post Insulator of Transmission Line Towards the CRAFT NNBI Test-Bed
High voltage transmission line (HVTL), which adopts the gas insulated transmission line (GITL) technology, is an important link between the radio frequency ion source system and the power supply system for the negative-ion based neutral beam injectors (NNBI) system. Post insulators in the HVTL play the role of supporting high voltage conductors, and their performance and reliability directly determine the technical level and long-term operation reliability of the whole HVTL. In this paper, two kinds of metal inserts with different structures are proposed and their insulation properties are compared, and then the factors affecting the insulation performance of the post epoxy resin composite insulator are analyzed, including the column radius of the post insulator, the radius of the metal insert, the embedding depth of the metal insert, and the arc height of the metal insert. And draw the following conclusion by finite element analysis: from the point of view of the electric field, the comprehensive good insulation performance can be obtained by reducing the column radius of the post insulator, increasing the radius of the metal insert, reducing the embedding depth of the metal insert and increasing the arc height of the metal insert, appropriately. According to the design requirements of the insulation, the structural design parameters of the main post insulator and metal inserts in the HVTL are preliminarily determined, which lays a theoretical and engineering foundation for the follow-up engineering design of the insulation support of the HVTL.
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