论文标题

直流电压脉冲对Cu表面附近高空电气故障的影响

Effect of dc voltage pulsing on high-vacuum electrical breakdowns near Cu surfaces

论文作者

Saressalo, Anton, Profatilova, Iaroslava, Millar, William L., Kyritsakis, Andreas, Calatroni, Sergio, Wuensch, Walter, Djurabekova, Flyura

论文摘要

真空电故障(也称为真空弧)是许多设备的限制因素,这些设备基于其组件表面附近的高电场的应用。了解导致崩溃事件的过程可能有助于减轻其外观,并提出提高功率设备运营效率的方法。在给定值的给定值的表面性能的稳定性受条件状态的影响,即表面暴露于该场。因此,对表面调节过程的优化可以显着加快高压应用的预备步骤。在本文中,我们使用脉冲DC系统来优化铜电极的表面调节过程,重点是崩溃后电压恢复的效果,可变的重复率以及脉冲运行之间的延长等待时间。尽管实验量表有所不同,范围从脉冲之间的$ 10^{ - 4} $ s,到脉冲突破$ 10^5 $ s,但实验表明,脉冲之间的空闲时间越长,下一个脉冲可能会产生一个故障。我们还注意到,次要崩溃,即与先前相关的次要故障,主要发生在电压恢复阶段。我们将这些事件与电极表面真空的残留原子的沉积联系起来。最小化电压恢复阶段的停顿次数可减少由于次级崩溃事件提高表面调节效率而导致的功率损失。

Vacuum electrical breakdowns, also known as vacuum arcs, are a limiting factor in many devices that are based on application of high electric fields near their component surfaces. Understanding of processes that lead to breakdown events may help mitigating their appearance and suggest ways for improving operational efficiency of power-consuming devices. Stability of surface performance at a given value of the electric field is affected by the conditioning state, i.e. how long the surface was exposed to this field. Hence, optimization of the surface conditioning procedure can significantly speed up the preparatory steps for high-voltage applications. In this article, we use pulsed dc systems to optimize the surface conditioning procedure of copper electrodes, focusing on the effects of voltage recovery after breakdowns, variable repetition rates as well as long waiting times between pulsing runs. Despite the differences in the experimental scales, ranging from $10^{-4}$ s between pulses, up to pulsing breaks of $10^5$ s, the experiments show that the longer the idle time between the pulses, the more probable it is that the next pulse produces a breakdown. We also notice that secondary breakdowns, i.e. those which correlate with the previous ones, take place mainly during the voltage recovery stage. We link these events with deposition of residual atoms from vacuum on the electrode surfaces. Minimizing the number of pauses during the voltage recovery stage reduces power losses due to secondary breakdown events improving efficiency of the surface conditioning.

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