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Investigation of the prebreakdown stage of the self-sustained subnanosecond discharge in high pressure nitrogen

机译:高压氮气中亚纳秒自持放电的预分解阶段研究

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摘要

The results of the investigations of the prebreakdown stage of the self-sustained subnanosecond discharge in nitrogen at pressures between 5 and 40 atm are presented. A high voltage pulse with a front of approximately 250 ps at the level of 0.1-0.9 in amplitude (full duration of the pulse front was 500 ps) was applied to the studied gas gap. In this case, the voltage rise rate in the discharge gap at the prebreakdown stage reached up to 7 x 10(14) V/s. Breakdown occurs at the front of the voltage pulse. During these experiments, the parameters of the voltage pulse at the output of the pulse generator were not modified. In this study, it was discovered that increasing of the pressure from 5 atm to 40 atm leads to a significant decrease in the overvoltage in the discharge gap. It is shown that at pressures above 10 atm, the delay time of breakdown is less than the time of growth for electron avalanches to reach a critical size. The critical length of avalanche is approximately one order of magnitude less than the length of the discharge gap. Hence, the avalanche-streamer model is inapplicable in this situation. A mechanism of subnanosecond breakdown initiation with a help of runaway electrons at pressures above 10 atm has been suggested. Published by AIP Publishing.
机译:给出了在5至40 atm的压力下氮气中自我维持的亚纳秒放电的预分解阶段的研究结果。将具有大约250 ps的前沿,振幅为0.1-0.9的水平的高压脉冲(脉冲前沿的整个持续时间为500 ps)施加到所研究的气隙。在这种情况下,在预击穿阶段放电间隙中的电压上升速率达到7 x 10(14)V / s。击穿发生在电压脉冲的前面。在这些实验中,脉冲发生器输出端的电压脉冲参数未更改。在这项研究中,发现压力从5个大气压增加到40个大气压会导致放电间隙中的过电压显着降低。结果表明,在高于10个大气压的压力下,击穿的延迟时间小于电子雪崩达到临界尺寸的生长时间。雪崩的临界长度比放电间隙的长度小大约一个数量级。因此,雪崩流光模型在这种情况下不适用。已经提出了在高于10个大气压的压力下借助失控电子引发亚秒级击穿的机制。由AIP Publishing发布。

著录项

  • 来源
    《Journal of Applied Physics》 |2018年第10期|103304.1-103304.10|共10页
  • 作者

    Ivanov S. N.; Lisenkov V. V.;

  • 作者单位

    Russian Acad Sci, Inst Electrophys, Amundsena Str 106, Ekaterinburg 620016, Russia;

    Russian Acad Sci, Inst Electrophys, Amundsena Str 106, Ekaterinburg 620016, Russia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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