DIFFERENT AVALANCHE TYPES IN ELECTRONEGATIVE GASES

被引:16
|
作者
WETZER, JM
WEN, C
机构
[1] Eindhoven University of Technology, Eindhoven, MB, 5600
[2] Claymount Assemblies B V, Didam, PX, 6942
关键词
D O I
10.1088/0022-3727/24/11/010
中图分类号
O59 [应用物理学];
学科分类号
摘要
Based on the observation of time-resolved avalanche current waveforms in electronegative gases, three different types of avalanches can be distinguished. The first distinction is that between electron avalanches and ion-dominated avalanches. Electron avalanches are further subdivided into electron avalanches with and without delayed electrons. Delayed electrons are the result of consecutive attachment and detachment processes. Experimental identification of the different avalanche types requires an experimental set-up with a time-resolution in the order of 1 ns. The conventional avalanche model, which involves effective ionization and drift, gives an adequate description only for electron avalanches without delayed electrons. An extended model, which also incorporates electron detachment and ion conversion processes, in principle describes all three kinds of avalanches. When the extended model is applied to the evaluation of measured waveforms, the often-quoted abnormal pressure dependencies in the electron drift velocity and the effective ionization coefficient disappear for the gases studied in this paper.
引用
收藏
页码:1964 / 1973
页数:10
相关论文
共 50 条
  • [21] HOLLOW-CATHODE DISCHARGES IN ELECTRONEGATIVE GASES
    GRIFFIN, S
    SIMMONS, M
    CRANE, J
    VERDEYEN, JT
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1978, 23 (02): : 138 - 139
  • [22] SUPERSONIC PLASMA STREAMS SEEDED WITH ELECTRONEGATIVE GASES
    CARSWELL, AI
    CLOUTIER, GG
    PHYSICS OF FLUIDS, 1964, 7 (04) : 602 - 608
  • [23] High-frequency magnetoplasmas in electronegative gases
    Margot, J
    Chaker, M
    St-Onge, L
    Tabbal, M
    Aliouchouche, A
    Pauna, O
    Alinot, C
    Kliagine, C
    JOURNAL DE PHYSIQUE IV, 1997, 7 (C4): : 295 - 305
  • [24] Corona based detector of electronegative trace gases
    Aints, M
    Haljaste, A
    Kudu, K
    Plank, T
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2001, 12 (05) : 557 - 565
  • [25] The development of research on plasma propulsion with electronegative gases
    Zhang Junjun
    Xia Guangqing
    Zhou Siqi
    Han Yajie
    CHINESE SPACE SCIENCE AND TECHNOLOGY, 2018, 38 (05) : 55 - 62
  • [26] REDUCTION OF ENHANCED ARCING BY SOME ELECTRONEGATIVE GASES
    GRAY, EW
    SCHUBERT, R
    JOURNAL OF APPLIED PHYSICS, 1985, 58 (04) : 1466 - 1469
  • [27] Coaxial (tubular) glow discharge in electronegative gases
    A. P. Golovitskii
    Technical Physics, 2016, 61 : 995 - 1003
  • [28] STATISTICS OF DEVELOPMENT OF IONIZATION CURRENTS IN ELECTRONEGATIVE GASES
    TAGASHIRA, H
    PROCEEDINGS OF THE PHYSICAL SOCIETY OF LONDON, 1966, 88 (560P): : 505 - +
  • [29] ION MOBILITY OF BOTH SIGNS IN ELECTRONEGATIVE GASES
    DZHUVARLY, CM
    VECHKHAIZER, GV
    GORIN, YV
    MEKHTIZADE, RN
    ZHURNAL TEKHNICHESKOI FIZIKI, 1977, 47 (03): : 517 - 520
  • [30] ELECTRON-ATTACHMENT AND DETACHMENT PROCESSES IN ELECTRONEGATIVE GASES
    CHRISTOPHOROU, LG
    CONTRIBUTIONS TO PLASMA PHYSICS, 1987, 27 (04) : 237 - 281