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Surge Arrester Placement for Long Transmission Line and Substation

机译:长输电线路和变电站的避雷器位置

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摘要

Prior work in literature has illustrated the benefits of using surge arrester as a way to improve the lighting performance of the substation and transmission line. Installing surge arresters would enhance the system reliability but it comes with an extra capital expenditure. This thesis provides simulation analysis to examine substation-specific applications of surge arrester as a way of determining the optimal, cost-effective placement of surge arresters. Four different surge arrester installation configurations are examined for the 500/230 kV Rudd substation which belongs to the utility, Salt River Project (SRP). The most efficient configuration is identified in this thesis. A new method "voltage-distance curve" is proposed in this work to evaluate different surge arrester installation configurations. Simulation results show that surge arresters only need to be equipped on certain location of the substation and can still ensure sufficient lightning protection.;With lower tower footing resistance, the lightning performance of the transmission line can typically be improved. However, when surge arresters are installed in the system, the footing resistance may have either negative or positive effect on the lightning performance. Different situations for both effects are studied in this thesis.;This thesis proposes a surge arrester installation strategy for the overhead transmission line lightning protection. In order to determine the most efficient surge arrester configuration of transmission line, the entire transmission line is divided into several line sections according to the footing resistance of its towers. A line section consists of the towers which have similar footing resistance. Two different designs are considered for transmission line lightning protection, they include: equip different number of surge arrester on selected phase of every tower, equip surge arresters on all phases of selected towers. By varying the number of the towers or the number of phases needs to be equipped with surge arresters, the threshold voltage for line insulator flashover is used to evaluate different surge arrester installation configurations. The way to determine the optimal surge arresters configuration for each line section is then introduced in this thesis.
机译:文献中的先前工作已经说明了使用电涌放电器作为改善变电站和输电线路照明性能的方法的好处。安装电涌放电器可以提高系统的可靠性,但会带来额外的资本支出。本文提供了仿真分析,以检查变电站避雷器的特定应用,以此作为确定最优,具有成本效益的避雷器位置的方法。为属于公用事业盐河项目(SRP)的500/230 kV Rudd变电站检查了四种不同的避雷器安装配置。本文确定了最有效的配置。在这项工作中提出了一种新的方法“电压-距离曲线”,以评估不同的避雷器安装配置。仿真结果表明,避雷器仅需安装在变电站的特定位置,仍可确保足够的避雷效果。通过降低塔架基础阻力,通常可以提高传输线的避雷性能。但是,当在系统中安装电涌放电器时,接地电阻可能会对雷电性能产生负面或正面影响。本文研究了两种情况的不同情况。本文提出了一种架空避雷器的架空避雷器安装策略。为了确定最有效的输电线路避雷器配置,根据其塔架的基础阻力,将整个输电线路分为几个线路部分。线段由具有相似立足阻力的塔架组成。考虑了两种不同的传输线防雷设计,它们包括:在每个塔的选定相上配备不同数量的避雷器,在选定塔的所有相上配备避雷器。通过改变塔架的数量或需要配备电涌放电器的相数,可将线路绝缘子闪络的阈值电压用于评估不同的电涌放电器安装配置。然后介绍了确定每个线路段的最佳避雷器配置的方法。

著录项

  • 作者

    Xia, Qianxue.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Electrical engineering.;Engineering.
  • 学位 M.S.
  • 年度 2018
  • 页码 107 p.
  • 总页数 107
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:57

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