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首页> 外文期刊>IEEE Transactions on Plasma Science >Comparison of Electrical Breakdowns Produced by a Nanosecond High-Voltage Pulse Applied to Metallic and Composite Material Electrodes
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Comparison of Electrical Breakdowns Produced by a Nanosecond High-Voltage Pulse Applied to Metallic and Composite Material Electrodes

机译:纳秒高压脉冲在金属和复合材料电极上产生的电击穿的比较

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摘要

In this article, the effect of electrode material on the electrical breakdown, produced by a 500-ns duration high-voltage pulse in dry air at atmospheric pressure, is investigated. The configuration chosen is a pin-to-plane geometry with a gap distance of 2 mm. Both polarities of the high-voltage pulse have been investigated for three different pin electrodes. The reference pin is a copper wire of 50 mm length, while the two other pins are made of a highly resistive composite material of 240 k Omega/m, with two different lengths of 50 and 500 mm. The plane electrode is a tungsten plate of 3 cm diameter. The discharges obtained for the highly resistive wires (HRWs) can be categorized as resistive barrier discharges. Both electrical and optical characteristics of the discharges are presented and discussed. The current, voltage, and energy deposition are first analyzed. Then, the time-resolved phase-locked images of the discharges are presented, showing the propagation of the discharge filaments in the gap. The experimental results demonstrate a strong influence of the electrode material on the discharge characteristics, regardless of the polarity of the applied voltage. The main finding is that, for the same applied high-voltage pulse, the use of highly resistive materials significantly reduces the energy deposition into the discharge and the light emission from the discharge.
机译:在本文中,研究了在大气压力下在干燥空气中持续500 ns持续高压脉冲而产生的电极材料对电击穿的影响。选择的配置是间距为2 mm的引脚到平面几何形状。已经针对三个不同的引脚电极研究了高压脉冲的两种极性。参考引脚是长度为50 mm的铜线,而另外两个引脚是由240 k Omega / m的高电阻复合材料制成的,长度分别为50和500 mm。平面电极是3厘米直径的钨极板。高电阻导线(HRW)获得的放电可以归类为电阻势垒放电。介绍并讨论了放电的电学和光学特性。首先分析电流,电压和能量沉积。然后,给出了放电的时间分辨锁相图像,显示了放电细丝在间隙中的传播。实验结果表明,无论施加电压的极性如何,电极材料都会对放电特性产生强烈影响。主要发现是,对于相同的施加高压脉冲,高电阻材料的使用显着减少了沉积到放电中的能量以及放电中的发光。

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