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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 (GIL) 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 lacki...

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Published in:IEEE transactions on dielectrics and electrical insulation 2024-12, p.1-1
Main Authors: Geng, Qiuyu, Liu, Gengyan, Wang, Jian, Bian, Yalin, Li, Qingmin, Fu, Zhong
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Language:English
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Liu, Gengyan
Wang, Jian
Bian, Yalin
Li, Qingmin
Fu, Zhong
description Metal particles in gas-insulated switchgear (GIS) and gas-insulated transmission lines (GIL) 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% to 120% increase in particle lifting voltage, confirming the design's effectiveness. These findings are critical for the engineering application of electrode coatings in GIS/GIL systems.
doi_str_mv 10.1109/TDEI.2024.3521871
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source IEEE Electronic Library (IEL) Journals
subjects adhesion effect
Adhesives
Cameras
charge inertia
Coatings
dipole gravity
Electric fields
Electrodes
GIS/GIL
Gravity
ground electrode-coating
metal particles
Metals
optimal design
Surface charging
surface roughness
Surface treatment
Trajectory
title Inhibitory Mechanism of DC GIS/GIL Ground Electrode-Coating on Charged Moving Metal Particles and Optimal Design
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