Ionization Waves Initiating Single-Electrode Breakdown in Long Discharge Tubes

IF 0.6 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY Bulletin of the Lebedev Physics Institute Pub Date : 2024-08-28 DOI:10.3103/S1068335624600268
A. I. Shishpanov, V. V. Zaletov, P. S. Bazhin
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Abstract

Ionization waves (IWs) of positive polarity are studied experimentally in several sealed discharge tubes containing neon at pressures of 0.6‒15 Torr and surrounded with a grounded metal screen. The IWs arise at the stage single-electrode breakdown development at moderate overvoltage conditions, and belong to “slow” ionization waves (velocity of 105‒108 cm/s). The wave propagation is accompanied by a monotonic loss of velocity and the electric potential magnitude at the IW front, indicating its significant spatial attenuation. The IWs are studied by recording xt diagrams supplemented with measurements of instantaneous velocities, front potentials, and attenuation coefficients at various pressures and applied voltages. An exponential nature of a decrease in the front potential and instantaneous velocity of the IWs with the distance traveled is established. It is found that the scales of the exponential decrease in both quantities do not coincide. The obtained results can be useful in planning experiments on breakdown in long tubes, ionization wave modeling, as well as their technological implementation

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引发长放电管中单电极击穿的电离波
摘要 在压力为 0.6-15 托、周围有接地金属屏蔽的几个装有氖的密封放电管中,对正极性电离波(IWs)进行了实验研究。电离波产生于中等过电压条件下的单电极击穿发展阶段,属于 "慢速 "电离波(速度为 105-108 厘米/秒)。电离波的传播伴随着速度的单调减弱,电离波前沿的电动势大小也随之减弱,这表明电离波有明显的空间衰减。通过记录 x-t 图,并辅以不同压力和外加电压下的瞬时速度、前沿电势和衰减系数测量值,对 IW 进行了研究。结果表明,随着移动距离的增加,IW 的前电位和瞬时速度呈指数下降。研究发现,这两个量的指数递减尺度并不一致。所获得的结果有助于规划长管击穿实验、电离波建模及其技术实施。
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来源期刊
Bulletin of the Lebedev Physics Institute
Bulletin of the Lebedev Physics Institute PHYSICS, MULTIDISCIPLINARY-
CiteScore
0.70
自引率
25.00%
发文量
41
审稿时长
6-12 weeks
期刊介绍: Bulletin of the Lebedev Physics Institute is an international peer reviewed journal that publishes results of new original experimental and theoretical studies on all topics of physics: theoretical physics; atomic and molecular physics; nuclear physics; optics; lasers; condensed matter; physics of solids; biophysics, and others.
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