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Electrical performance evaluation of EHV post insulators covered with ice under different air gap configurations

机译:不同气隙配置下覆冰超高压后绝缘子的电气性能评估

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This paper investigates the influence of air gaps on the maximum AC withstand voltage (V) of ice-covered post insulators, typically used in Hydro-Quebec 735-kV substations. The VWS was experimentally determined based on IEEE Standard 1783, under icing conditions. The results reveal that the number of air gaps affects the VWS significantly. The configuration with four air gaps allows improving the VWS by 15% in comparison to the configuration with three air gaps. Moreover, high speed video camera techniques were used to observe the mechanism of electric arc propagation over ice surface with respect to the air gap configuration. Also, to interpret the performance of the ice-covered insulators with different air gap positions, the voltage and electric field distributions along the ice-covered insulator were simulated numerically by the Finite Element Method (FEM) during the melting period. The simulation results confirmed that increasing the number of air gaps improves satisfactory the uniformity of voltage distribution of the EHV post insulators and consequently the maximum withstand voltage. Based on the obtained results, the installation of booster sheds to improve the insulating performance of post insulators under icing conditions was recommended.
机译:本文研究气隙对通常在魁北克水电735 kV变电站中使用的覆冰后绝缘子的最大AC耐压(V)的影响。 VWS是在结冰条件下根据IEEE标准1783通过实验确定的。结果表明,气隙数量显着影响了VWS。与具有三个气隙的配置相比,具有四个气隙的配置可将VWS提高15%。此外,相对于气隙配置,使用了高速摄像机技术来观察电弧在冰面上传播的机理。另外,为了解释具有不同气隙位置的覆冰绝缘子的性能,在熔化期间,通过有限元方法(FEM)数值模拟了沿覆冰绝缘子的电压和电场分布。仿真结果证实,增加气隙的数量可以改善EHV后绝缘子的电压分布均匀性,从而提高最大耐受电压。根据获得的结果,建议安装升压棚,以改善结冰条件下后绝缘子的绝缘性能。

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