冲击电压下金属颗粒对SF6/ n2混合物中间隔层表面电荷积累特性的影响

Yan-Oin Liu, Kefeng Li, Xiao-Feng Fan, Xiang-Yu Liu, Han Wang, Jun-bo Deng
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引用次数: 2

摘要

当金属颗粒附着在隔离片表面时,会影响绝缘子表面电荷的积聚和电场,降低绝缘子表面的绝缘水平。因此,研究金属颗粒附着与表面电荷积累的关系具有重要意义。本文研究了金属颗粒对5atm - 20% SF6/ n2介质中间隔片表面电荷积累特性的影响。在实验中,将直径0.5mm的变长圆柱形铜线固定在缩小的截锥式垫片表面,铜线的一端与高压电极接触。在中心电极上施加5次不同幅度的雷击电压,然后用开尔文振动静电探针测量间隔片的表面电位,并通过反向算法计算相应的表面电荷密度。结果表明,在雷击电压下,金属颗粒周围仅存在双极电荷,存在随机电荷。当金属颗粒大于5mm时,随机分布的电荷会导致金属颗粒附近的累积电荷量减少。此外,随着施加电压幅值的增加,金属颗粒附近的双极电荷积累量增加,金属颗粒末端的同电荷积累范围随着施加电压幅值的增加而增加。
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Influence of Metal Particles on Surface Charge Accumulation Characteristics of Spacer in SF6/N2Mixtures under Impulse Voltage
When metal particle is attached on the surface of spacer, it will affect the surface charge accumulation and electric field, and reduce the surface insulating level of insulators. Therefore, it is important to research the relationship between attachment of metal particle and surface charge accumulation. In this paper, the influence of metal particle on surface charge accumulation characteristics of spacer in 5atm 20 % SF6/N 2is researched. In the experiment, a cylindrical copper wire of 0.5mm diameter and variable length is fixed on the surface of a downsized truncated cone-type spacer, and one end of this wire is in contact with the high voltage electrode. A lightning impulse voltage with different amplitudes is applied to the central electrode for 5 times, then the surface potential of spacer is measured by a Kelvin vibrating electrostatic probe, and the corresponding surface charge density is further calculated by a reversed algorithm. The results reveal under lightning impulse voltage there are just bipolar charges around the metal particles and random charges existing. When the metal particle is over 5mm, a randomly distributed charge will result in a decrease in the amount of accumulated charge near the metal particles. In addition, the amount of bipolar charge accumulated near the metal particles increases with the increase of the applied voltage amplitude, and the accumulating range of the homo-charges at the ends of the metal particles increases as the applied voltage amplitude increases.
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