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Electric conductivity characteristics of FRP and epoxy insulators for GIS under DC voltage

机译:直流电压下用于GIS的FRP和环氧绝缘子的电导率特性

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Now that gas insulated switchgear (GIS) for ac systems is becoming increasingly compact as specifications are rationalized, more consideration of their insulation characteristics for residual dc voltage is required. Furthermore, with dc power transmission technology drawing more and more global attention, clarifying the insulation characteristics of GIS for dc voltage is increasingly important. The insulating portions for which the influence of dc voltage must be taken into consideration are solid insulators, such as insulating spacers. Under dc voltage, since the electric field distribution in an insulator differs from that under ac or impulse voltage and is governed by the resistance characteristics, clarifying its characteristics is crucial to study the GIS dc insulation design. As a solid insulator, focusing on fiber-reinforced plastics (FRP) used for GIS, for example, insulating rods, as well as partially treated epoxy resin; this paper experimentally investigated the bulk and surface electric conductivity under dc voltage, using the electric field, temperature, and other factors as parameters. As a result, the bulk electric conductivity of FRP in an edgewise direction exceeded that in the penetrating direction by one digit. It emerged that the electric conductivity of an insulating material with orientation like FRP varied depending on its direction. It was also found that, despite the fact the bulk and surface conductivity depended on the electric field for both FRP and epoxy resin, the variation width was relatively narrow within the range of the actual GIS operating electric field. The bulk and surface electric conductivity were also temperature-dependent, which meant the variation width was relatively wide. Furthermore, the surface electric conductivity was measured in SF6 gas and in the air to investigate the influence of the ambient atmosphere, whereupon it emerged that the electric conductivity was higher in air due to the adherence of moisture. As men- ioned above, the electric conductivity of an insulator varies due to various factors, such as the influence of the material orientation, electric field, temperature, and moisture. Consequently, the electric field distribution inside the insulator also changes, meaning these electric conductivity characteristics must be taken into consideration to study the GIS dc insulation characteristics.
机译:现在,随着规范的合理化,用于交流系统的气体绝缘开关设备(GIS)变得越来越紧凑,因此,需要更多考虑其绝缘特性对剩余直流电压的要求。此外,随着直流输电技术越来越受到全球关注,澄清GIS的直流电压绝缘特性变得越来越重要。必须考虑直流电压影响的绝缘部分是固体绝缘子,例如绝缘垫片。在直流电压下,由于绝缘子的电场分布不同于交流或脉冲电压下的电场,并且受电阻特性支配,因此弄清其特性对于研究GIS直流绝缘设计至关重要。作为固体绝缘体,重点是用于GIS的纤维增强塑料(FRP),例如绝缘棒以及经过部分处理的环氧树脂;本文以电场,温度和其他因素为参数,通过实验研究了直流电压下的体积和表面电导率。结果,FRP在边缘方向上的整体电导率比在渗透方向上的整体电导率高一位数。结果表明,具有诸如FRP的取向的绝缘材料的电导率根据其方向而变化。还发现,尽管事实上FRP和环氧树脂的体积和表面电导率都取决于电场,但在实际GIS工作电场范围内,变化幅度相对较窄。体积和表面电导率也与温度有关,这意味着变化幅度相对较宽。此外,在SF 6气体和空气中测量表面电导率以研究环境大气的影响,结果表明,由于水分的附着,空气中的电导率较高。如上所述,绝缘子的电导率由于各种因素而变化,例如材料取向,电场,温度和湿度的影响。因此,绝缘子内部的电场分布也会发生变化,这意味着在研究GIS直流绝缘特性时必须考虑这些电导率特性。

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