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Technical Development of the IEEE Guide for Visual Corona Testing of Insulator Assemblies and Line Hardware and its Application in the Testing of 765-kV Transmission Line Insulator Assemblies

机译:绝缘子组件和线路硬件视觉电晕测试IEEE指南的技术开发及其在765-kV输电线路绝缘子组件测试中的应用

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Traditionally corona testing has been performed in laboratories by mounting a single phase mock-up of the conductor/hardware/insulator assembly at a given height above the ground and applying 110% of the rated line-to-ground operating voltage. If the test setup is shown to be free of corona by this test, then it is considered that the assembly will be free of corona under operating conditions. This method does not appear in any standards, but is used as a generally accepted test method. In spite of its general acceptance, this test method can give erroneous results. This is due to the fact that the inception of corona occurs at a given electric field gradient rather than a given absolute voltage. Under actual operating conditions, the electric field gradient at the conductor/hardware/insulator assembly is a function of phase spacing, the local geometry, and the applied 3-phase voltage. In order to correctly perform such a test in a laboratory, it is essential that the maximum gradients occurring on the conductors in the field be reproduced in the laboratory test. To address this shortcoming in test procedures, the IEEE PES Transmission and Distribution Committee's Lightning and Insulator and Corona and Field Effects working groups are engaged in the development of a guide for the performance of visual corona and RIV testing on insulator assemblies and line hardware. This paper describes the theoretical and experimental background upon which the technical development of the guide is based, and the application of the procedures in the guide as used in testing insulator assemblies and hardware for a new design 6-conductor bundle 765 kV transmission system.
机译:通过将导体/硬件/绝缘体组件的给定高度安装在地面上方的给定高度并施加额定线到地的工作电压的110%,通过将单相模型安装在实验室中进行了电晕测试。如果测试设置被此测试显示无电晕,那么认为组件将在运行条件下没有电晕。此方法不会出现在任何标准中,但用作普遍接受的测试方法。尽管它一般接受,但这种测试方法可以给出错误的结果。这是由于电晕初始在给定的电场梯度而不是给定的绝对电压时发生。在实际操作条件下,导体/硬件/绝缘子组件处的电场梯度是相距,局部几何形状和施加的3相电压的函数。为了在实验室中正确执行这种测试,必须在该领域的导体上发生的最大梯度在实验室测试中再现。为了解决这一缺点,在测试程序中,IEEE PES传输和分销委员会的避雷和绝缘体和电晕和实地效应工作组正在开发出现Visual Corona和RIV测试在绝缘体组件和线路硬件上的表演指南。本文介绍了指导技术开发的理论和实验背景,以及在测试绝缘子组件和硬件中使用的指导中的程序应用于新设计6导体束765kV传输系统。

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