直流GIS/GIL接地电极涂层对带电移动金属粒子的抑制机理及优化设计

IF 2.9 3区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Qiuyu Geng;Gengyan Liu;Jian Wang;Yalin Bian;Qingmin Li;Zhong Fu
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引用次数: 0

摘要

气体绝缘开关设备(GIS)和气体绝缘输电线路(GILs)中的金属颗粒是导致绝缘失效的主要原因。接地电极涂层可以有效地限制这些颗粒的运动,但缺乏优化这种涂层的理论研究和设计指南。本研究通过表征颗粒与涂层表面的碰撞,并开发了一种反演算法来跟踪颗粒电荷,从而研究了接地电极涂层在抑制金属颗粒运动方面的有效性,实现了小于7%的相对误差。它确定了“电荷惯性”是抑制粒子与涂层碰撞时运动的关键因素。涂层的高阻力、偶极重力和表面附着力共同作用,抑制颗粒运动,防止颗粒静止后进一步提升。建立了GIS/GIL电极涂层的双重抑制效应等效模型,包括表面对颗粒的附着和电荷抑制效应。该研究为选择低电导率、高介电性涂层提供了指导,并优化了设计以平衡粘附工作。聚酰亚胺涂层的初步测试表明,颗粒提升电压提高了85%-120%,证实了设计的有效性。这些发现对于电极涂层在GIS/GIL系统中的工程应用至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inhibitory Mechanism of DC GIS/GIL Ground Electrode-Coating on Charged Moving Metal Particles and Optimal Design
Metal particles in gas-insulated switchgear (GIS) and gas-insulated transmission lines (GILs) are major causes of insulation failures. Ground electrode coatings can effectively limit the movement of these particles, but theoretical research and design guidelines for optimizing such coatings are lacking. This study investigates the effectiveness of ground electrode coatings in restraining metal particle movement by characterizing particle collisions with the coating surface and developing an inversion algorithm to track particle charge, achieving less than 7% relative error. It identifies “charge inertia” as a key factor in inhibiting particle movement upon collision with the coating. The coating’s high resistance, dipole gravity, and surface adhesion work together to inhibit particle motion, preventing further lifting after particles come to rest. An equivalent model of the dual inhibition effects of GIS/GIL electrode coatings, including surface adhesion on particles and charge inhibition effect, is established. The study provides guidelines for selecting low-conductivity, high-dielectric coatings and optimizes design to balance adhesion work. Preliminary tests with polyimide coatings demonstrate an 85%–120% increase in particle lifting voltage, confirming the design’ effectiveness. These findings are critical for the engineering application of electrode coatings in GIS/GIL systems.
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来源期刊
IEEE Transactions on Dielectrics and Electrical Insulation
IEEE Transactions on Dielectrics and Electrical Insulation 工程技术-工程:电子与电气
CiteScore
6.00
自引率
22.60%
发文量
309
审稿时长
5.2 months
期刊介绍: Topics that are concerned with dielectric phenomena and measurements, with development and characterization of gaseous, vacuum, liquid and solid electrical insulating materials and systems; and with utilization of these materials in circuits and systems under condition of use.
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