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Heating Dissipation Study of a Pollution Layer on a Cap and Pin Insulator

机译:盖帽绝缘子污染层的加热耗散研究

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The flashover mechanism of outdoor insulators is stated in the literature, and follows several steps before occurring. Beginning by the wetting process; by rain or fog, of the pollution layer already deposited on the surface of the insulator, allowing leakage current to flow and causing heating dissipation in the pollution layer, leading to dry bands formation, and after, to the arcing of the latter due to the voltage concentration around them. Subsequently the flashover of the whole insulator occurs by the ionization of the arc path. In this paper, one of the flashover mechanisms is studied, namely the heat dissipation, due to the leakage current flow in a pollution layer deposited on a high voltage insulator surface. To achieve this work COMSOL-Multiphysics computes the temperature distribution on the pollution layer, having different values of the electrical conductivity. The obtained results show that the temperature is highest at the pin region where the electric field is most significant. Due to the non-regular shape of the cap and pin insulator there is peaks in the temperature repartition allowing dry band formation.
机译:室外绝缘体的闪络机制在文献中陈述,并在发生之前遵循几个步骤。从润湿过程开始;通过雨或雾,污染层已经沉积在绝缘体的表面上,使漏电流流动并导致污染层中的加热耗散,导致干燥带形成,之后,由于所提的后者的电弧推向它们周围的电压浓度。随后通过电弧路径的电离发生整个绝缘体的闪络。在本文中,研究了闪络机构之一,即散热,由于沉积在高压绝缘体表面上的污染层中的泄漏电流。为了实现这项工作,Comsol-Multiphysics计算污染层上的温度分布,具有不同的电导率值。得到的结果表明,在电场最显着的销区域中的温度最高。由于盖子的非规则形状和引脚绝缘体,在温度重置中存在峰值,允许干频形成。

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