首页> 外文会议>2012 25th International Symposium on Discharges and Electrical Insulation in Vacuum. >Experimental test and simulation analysis on surface flashover characteristics of embedded electrode into machinable ceramic in vacuum
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Experimental test and simulation analysis on surface flashover characteristics of embedded electrode into machinable ceramic in vacuum

机译:真空中埋入式电极在可加工陶瓷中表面闪络特性的实验测试与仿真分析

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摘要

Surface flashover phenomena in vacuum restrict the overall performance of vacuum solid insulation system. Since accidents caused by surface flashover in vacuum occur constantly, it is always the international highlight to study some new insulating materials and insulation structure with high electric withstanding for vacuum insulation. On the basis of the novel low melting temperature machinable glass ceramics for vacuum insulation system, which has excellent machinable performance and good electrical properties, the samples of embedded electrode into machinable ceramics are machined, and then the samples' flashover voltage of different embedded mode and embedded depth are investigated under nanosecond pulse voltage in vacuum. The electric field distributions and electric field of cathode triple junction (CTJ) are simulated to explain the experimental results. The experimental results indicate embedded electrode in cathode can increase the surface flashover voltage of the sample; with increasing of the embedded depth, the surface flashover voltage tends to be increased. The simulation results indicate embedded electrode in cathode can decrease the electric field of CTJ, and with increasing of the embedded depth, the electric field of CTJ tends to be decreased.
机译:真空中的表面闪络现象限制了真空固体绝缘系统的整体性能。由于真空中表面闪络引起的事故不断发生,因此研究一些新型的高真空耐受性的绝缘材料和绝缘结构一直是国际上的亮点。在具有优异的可加工性能和良好的电性能的新型用于真空绝缘系统的低熔点可加工玻璃陶瓷的基础上,对可加工陶瓷中嵌入电极的样品进行加工,然后对不同嵌入方式的样品闪络电压进行测试。在真空中纳秒脉冲电压下研究了嵌入深度。模拟了阴极三结(CTJ)的电场分布和电场,以解释实验结果。实验结果表明,阴极中嵌入电极可以增加样品的表面闪络电压。随着埋深的增加,表面闪络电压趋于增加。仿真结果表明,阴极中嵌入电极可以减小CTJ的电场,并且随着嵌入深度的增加,CTJ的电场趋于减小。

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