Simulation analysis on the synergistic effect of vegetation ashes and charged particles on the gap electric field distortion

IF 3.1 3区 物理与天体物理 Q2 PHYSICS, APPLIED
Baisen Lin, B. Gou, Daoming Zhang, Yuqian Xue, Rui Wang, Congzhen Xie
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Abstract

Hill fires, a sort of ultra-natural disaster that poses a severe threat to the safe and stable operation of transmission lines, have become more frequent in recent years. Currently, the modelling research on the transmission line gap electric field distortion under hill fire conditions does not consider the synergistic effect of charged particles and ash particles, which would lead to the imperfect gap electric field distortion mechanism. Herein, a coupled multi-physics field simulation model of electric, thermal, fluid, chemical field and particle motion was constructed to analyze the electric field distribution and particle motion. Compared to the related simulation models, this study improves the simulation accuracy by around 407% by optimizing the structure and parameters of the simulation model. The results show that the percentage of ash entering the examined region of the AC conductor was 34.1% higher, and the percentage of connected ash was 45% higher, increasing the likelihood of gap breakdown compared to the DC conductor; the charge of ash (10-14-10-11) is significantly less than the saturation charge of ash (≥10-3). Therefore, the charged particles change the motion characteristics of the ash primarily through the electric field force and dielectrophoresis force, while the ash-induced distortion of the electric field affects the spatial distribution of the charged particles, eventually, the background electric field undergoes significant distortion by the synergistic effect of the two. The results examine the inherent mechanism of gap electric field distortion at the microscopic level, which can provide theoretical support for understanding the transition phase of transmission line gaps from insulation to breakdown under hill fire conditions.
植被灰烬和带电粒子对间隙电场畸变协同效应的模拟分析
山火是一种对输电线路安全稳定运行构成严重威胁的超自然灾害,近年来日益频繁。目前,针对山火条件下输电线路间隙电场畸变的建模研究没有考虑带电粒子和灰粒的协同效应,这将导致不完善的间隙电场畸变机制。为此,本文构建了电场、热场、流体场、化学场和颗粒运动的多物理场耦合仿真模型,对电场分布和颗粒运动进行了分析。与相关模拟模型相比,本研究通过优化模拟模型的结构和参数,将模拟精度提高了约 407%。结果表明,与直流导体相比,进入交流导体受检区域的灰的比例高出 34.1%,连接灰的比例高出 45%,增加了间隙击穿的可能性;灰的电荷量(10-14-10-11)明显小于灰的饱和电荷量(≥10-3)。因此,带电粒子主要通过电场力和介电泳力改变灰分的运动特性,而灰分引起的电场畸变会影响带电粒子的空间分布,最终在两者的协同作用下,背景电场发生显著畸变。研究结果从微观层面探讨了间隙电场畸变的内在机理,为理解山火条件下输电线路间隙从绝缘到击穿的过渡阶段提供了理论支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Physics D: Applied Physics
Journal of Physics D: Applied Physics 物理-物理:应用
CiteScore
6.80
自引率
8.80%
发文量
835
审稿时长
2.1 months
期刊介绍: This journal is concerned with all aspects of applied physics research, from biophysics, magnetism, plasmas and semiconductors to the structure and properties of matter.
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