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Discharge characteristics of composite insulation system with floating electrode and solid insulator in vacuum

机译:浮置电极与固体绝缘子复合绝缘系统在真空中的放电特性

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For the development of vacuum interrupters for their higher voltage application in power transmission systems, it is necessary to clarify the discharge characteristics of composite insulation systems with a shield (floating electrode) and a solid insulator in vacuum. In this paper, we focus on the composite discharge patterns via the shield and the solid insulator. For cathode-shield-insulator-anode (c-s-i-a) and cathode-insulator-shield-anode (c-i-s-a) electrode configurations, the discharge can be classified into two independent processes: breakdown in vacuum gap and surface flashover on the solid insulator. Furthermore, we have found that the breakdown development time increases with the increase in the gap length and the surface flashover development time depends on the voltage peak after flashover inception, which are consistent with discharge development characteristics for individual gap breakdown and surface flashover, respectively. These results are significant to understanding and discriminating the composite discharge patterns and discharge path in vacuum interrupters.
机译:为了开发在电力传输系统中用于更高电压的真空灭弧室,有必要弄清具有屏蔽(浮动电极)和真空中的固体绝缘体的复合绝缘系统的放电特性。在本文中,我们将重点介绍通过屏蔽层和固体绝缘体的复合放电模式。对于阴极屏蔽绝缘子阳极(c-s-i-a)和阴极绝缘子屏蔽阳极(c-i-s-a)电极配置,放电可分为两个独立的过程:真空间隙击穿和固体绝缘子上的表面飞弧。此外,我们发现击穿发展时间随间隙长度的增加而增加,表面闪络发展时间取决于闪络开始后的电压峰值,这分别与单个间隙击穿和表面闪络的放电发展特征相一致。这些结果对于理解和区分真空灭弧室中的复合放电模式和放电路径具有重要意义。

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