Interelectrode plasma evolution in a hot refractory anode vacuum arc: Theory and comparison with experiment

被引:33
作者
Beilis, II [1 ]
Goldsmith, S [1 ]
Boxman, RL [1 ]
机构
[1] Tel Aviv Univ, Elect Discharge & Plasma Lab, IL-69978 Tel Aviv, Israel
关键词
D O I
10.1063/1.1483844
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
In this paper a theoretical study of a hot refractory anode vacuum arc, which was previously investigated experimentally [Phys. Plasmas 7, 3068 (2000)], is presented. The arc was sustained between a thermally isolated refractory anode and a water-cooled copper cathode. The arc started as a multicathode-spot (MCS) vacuum arc and then switched to the hot refractory anode vacuum arc (HRAVA) mode. In the MCS mode, the cathodic plasma jet deposits a film of the cathode material on the anode. Simultaneously, the temperature of the thermally isolated anode begins to rise, reaching eventually a sufficiently high temperature to re-evaporate the deposited material, which is subsequently ionized in the interelectrode gap. The transition to the HRAVA mode is completed when the density of the interelectrode plasma consists mostly of ionized re-evaporated atoms-the anode plasma. The evolution of the HRAVA mode is characterized by the propagation of a luminous plasma plume from the anode to the cathode. The time dependent model of the various physical processes taking place during the transition to the HRAVA mode is represented by a system of equations describing atom re-evaporation, atom ionization through the interaction of the cathode jet and the interelectrode plasma with the anode vapor, plasma plume propagation, plasma radial expansion, plasma energy, and heavy particle density balance. The time dependence of the anode heat flux and the effective anode voltage were obtained by solving these equations. In addition, the time dependent plasma electron temperature, plasma density, anode potential drop, arc voltage, and anode temperature distribution were calculated and compared with previous measurements. It was shown that the observed decrease of the effective anode voltage with time during the mode transition is due to decrease of the heat flux incident on the anode surface from the cathode spot jets. (C) 2002 American Institute of Physics.
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页码:3159 / 3170
页数:12
相关论文
共 21 条
  • [1] BEILIS II, 1991, HIGH TEMP+, V29, P501
  • [2] Radially expanding plasma parameters in a hot refractory anode vacuum arc
    Beilis, II
    Boxman, RL
    Goldsmith, S
    Paperny, VL
    [J]. JOURNAL OF APPLIED PHYSICS, 2000, 88 (11) : 6224 - 6231
  • [3] Beilis II, 2000, P INT SYMP DISCH EL, V19, P226
  • [4] BEILIS II, 1977, HIGH TEMP+, V15, P818
  • [5] Interelectrode plasma parameters and plasma deposition in a hot refractory anode vacuum arc
    Beilis, II
    Keidar, M
    Boxman, RL
    Goldsmith, S
    [J]. PHYSICS OF PLASMAS, 2000, 7 (07) : 3068 - 3076
  • [6] BEILIS II, 1969, SOV PHYS DOKL, V14, P897
  • [7] Boxman R. L., 1995, HDB VACUUM ARC SCI T, P742
  • [8] ENERGY-DISSIPATION IN CATHODE OF A VACUUM ARC
    DAALDER, JE
    [J]. JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1977, 10 (16) : 2225 - 2234
  • [9] Dorodnov A. M., 1979, Soviet Technical Physics Letters, V5, P418
  • [10] DUSHMAN S, 1962, SCI F VACUUM TECHNIQ, P691