电晕放电对低压硅橡胶绝缘子表面劣化的影响

B. Du, Yong Liu, R. L. Wang
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引用次数: 10

摘要

随着硅橡胶(SIR)绝缘子在高海拔地区的广泛应用,由于SIR的有机特性,电晕降解是由电应力引起的不可避免的电降解之一。虽然在常压下对这种现象进行了研究,但在低压下的研究很少。系统地研究低压对电晕降解的影响是保证其可靠应用的迫切需要。实验在减压室内进行,通过旋转泵将环境压力从大气压降至40 kPa。试样在低压下暴露于不同的电晕放电时间。测量了绝缘子表面的静接触角,揭示了疏水性的变化。测量了不同低压下电晕放电时的电流,以证实电晕随压力的变化而退化。结果表明:随着环境压力的降低,电晕放电强度增大,电晕降解过程加快;
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of corona discharge on surface deterioration of silicone rubber insulator under reduced pressures
With the broad application of silicone rubber (SIR) insulator in high-altitude regions, corona degradation is one of the inevitable electrical degradation caused by electric stress due to the organic properties of SIR. Although this phenomenon is investigated at atmospheric pressure, there is little investigation at low pressures. It is urgent to systematically investigate effects of low pressure on the corona degradation for the reliable application. Experiments were carried out in a decompression chamber and the ambient pressure was reduced by a rotary pump from the atmospheric pressure to 40 kPa. The specimens were exposed to corona discharges at low pressures for different lapse time. The surface static contact angles on the insulator were measured to reveal the hydrophobicity changes. The currents during corona discharges at different low pressures were measured to confirm the corona degradation with variation of the pressures. The results obtained showed that the intensity of corona discharge increased with reducing the ambient pressure, which accelerated the process of corona degradation.
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