Subnanosecond Breakdown in Argon at High Overvoltages

H. Krompholz, L. Hatfield, A. Neuber, D. Hemmert, K. Kohl, J. Chaparro
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引用次数: 6

Abstract

Volume breakdown and surface flashover in quasi homogeneous applied fields in 10-5 to 600 torr argon are investigated, using voltage pulses with 150 ps risetime, < 1 ns duration, and up to 150 kV amplitude into a matched load. The test system consists of a transmission line, a transition to a biconical section, and a test gap, with gap distances of one to several mm. The arrangement on the other side of the gap is symmetrical. An improved system, with oil-filled transmission lines and lens between coax and biconical section to minimize pulse distortion, is being constructed. Diagnostics include fast capacitive voltage dividers, which allow to determine voltage waveforms in the gap, and conduction current waveforms through the gap. X-ray diagnostics uses a scintillator- photomultiplier combination with different absorber foils yielding coarse spectral resolution. Optical diagnostics to obtain information about the discharge channel dynamics is in preparation. Breakdown delay times, and e-folding time constants for the conduction current during the initial breakdown phase, are on the order of 100-400 ps, with minima in the range of several 10 torr. X-ray emission extends to pressures > 100 torr, indicating the role of runaway electrons during breakdown. Maximum X-ray emission coincides with fastest current risetimes at several 10 torr, which is probably related to an efficient feedback mechanism from gaseous amplification to field enhanced electron emission from the cathode.
高过电压下氩气亚纳秒击穿
在10-5 ~ 600 torr氩气条件下,采用上升时间为150ps、持续时间< 1ns、振幅高达150kv的电压脉冲,对匹配负载进行了体积击穿和表面闪络的研究。测试系统由传输线、过渡到双锥截面和测试间隙组成,间隙距离为一到几毫米。在间隙的另一侧布置为对称。一种改进的系统正在建设中,在同轴电缆和双锥截面之间装有充油的传输线和透镜,以尽量减少脉冲失真。诊断包括快速电容分压器,它可以确定间隙中的电压波形,并通过间隙传导电流波形。x射线诊断使用闪烁体-光电倍增管组合与不同的吸收箔产生粗光谱分辨率。获取放电通道动态信息的光学诊断正在准备中。击穿延迟时间和初始击穿阶段传导电流的e折叠时间常数约为100- 400ps,最小值约为10 torr。x射线发射延伸到压力bbb100托,表明在击穿过程中失控电子的作用。最大的x射线发射与最快的电流上升时间一致,达到10 torr,这可能与阴极从气体放大到场增强电子发射的有效反馈机制有关。
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