Energy and density of ions in vacuum arcs between axial and radial magnetic field contacts

被引:16
|
作者
Düning, G [1 ]
Lindmayer, M [1 ]
机构
[1] Tech Univ Braunschweig, Inst Hochspannungstechn & Elekt Energieanlagen, D-38023 Braunschweig, Germany
关键词
arc; axial magnetic field; ion density; ion energy; radial magnetic field; vacuum arc;
D O I
10.1109/27.964464
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 vacuum circuit breakers, two different contact types are used to overcome the consequences of arc constriction, which sets in when currents of several kiloamperes are exceeded. Radial magnetic fields (RMF) force the constricted arc to rotate and distribute its power more evenly on the contact surface. Axial magnetic field (AMF) contacts prevent the arc from becoming constricted up to higher thresholds. To improve the interruption capability of vacuum circuit breakers of both types, it is essential to know about the processes and properties of the vacuum plasma ("vacuum arc") around current zero, such as plasma density and its decay and the energy of the plasma species. In this work, the energy distribution of ions in the vacuum arc plasma during the last 3 ms before current zero has been investigated by means of a retarding field analyzer up to arc currents of approximate to 9 kA RMS, and significant differences could be observed between RMF and AMF contacts. For currents above 5 kA the distribution in both cases resembles a Maxwellian distribution, characteristic for a collision-determined plasma. On lower currents, i.e., when current zero is approached, RMF arrangements show ions with strongly directed motion, while the energy distribution for AMF contacts seems to be more influenced by collisions. There are also indications of the v x B ion rotation in the AMF field. Furthermore, the post-arc charge as an indication of the plasma density and its free decay after current zero has been investigated. With AMF contacts, the initial density at current zero lies higher, especially on lower arc currents. The first decay time constant grows slightly with the arc current, and lies higher for larger shield diameter, i.e., higher ratio between plasma volume and shield surface for recombination.
引用
收藏
页码:726 / 733
页数:8
相关论文
共 50 条
  • [11] The influence of unipolar axial magnetic field on the behavior of vacuum arcs
    Fenski, B
    Heimbach, M
    Shang, WK
    [J]. IEEE TRANSACTIONS ON PLASMA SCIENCE, 2003, 31 (02) : 299 - 302
  • [12] Vacuum arcing behavior between transverse magnetic field contacts subjected to variable axial magnetic field
    Ma, Hui
    Wang, Jianhua
    Liu, Zhiyuan
    Geng, Yingsan
    Wang, Zhenxing
    Yan, Jing
    [J]. PHYSICS OF PLASMAS, 2016, 23 (06)
  • [13] Development of a FEM Simulation of Axial Magnetic Field Vacuum Arcs
    Hartmann, W.
    Hauser, A.
    Lawall, A.
    Renz, R.
    Wenzel, N.
    [J]. ISDEIV 2008: PROCEEDINGS OF THE XXIIIRD INTERNATIONAL SYMPOSIUM ON DISCHARGES AND ELECTRICAL INSULATION IN VACUUM, VOLS 1 AND 2, 2008, : 398 - +
  • [14] Effect of an axial magnetic field and arc current on the anode current density in diffuse vacuum arcs
    Ma, Hui
    Geng, Yingsan
    Liu, Zhiyuan
    Wang, Jianhua
    Wang, Zhenxing
    Zhang, Zaiqin
    [J]. PHYSICS OF PLASMAS, 2016, 23 (09)
  • [15] Analysis of axial magnetic field in vacuum interrupters with cup type axial magnetic field contacts
    Zhang, Xuan
    Liu, Zhi-Yuan
    Wang, Zhong-Yi
    [J]. Gaoya Dianqi/High Voltage Apparatus, 2005, 41 (03): : 161 - 165
  • [16] High-current diffuse vacuum arcs on axial magnetic field contacts: Arc visualization and contact temperature
    Schellekens, H
    Schulman, MB
    [J]. ISDEIV: XIXTH INTERNATIONAL SYMPOSIUM ON DISCHARGES AND ELECTRICAL INSULATION IN VACUUM, VOLS 1 AND 2, PROCEEDINGS, 2000, 19 : 180 - 183
  • [17] Model for the Welding of Axial Magnetic Field Vacuum Interrupter Contacts
    Taylor, Erik D.
    Lawall, Andreas
    Slade, Paul G.
    [J]. 2016 27TH INTERNATIONAL SYMPOSIUM ON DISCHARGES AND ELECTRICAL INSULATION IN VACUUM (ISDEIV), VOL 2, 2016,
  • [18] Numerical modeling of plasma behavior and heat flux to contacts of vacuum arcs with and without external axial magnetic field (AMF)
    Schade, E
    Shmelev, D
    [J]. ISDEIV: XXTH INTERNATIONAL SYMPOSIUM ON DISCHARGES AND ELECTRICAL INSULATION IN VACUUM, PROCEEDINGS, 2002, 20 : 44 - 51
  • [19] Magnetic field and thermal characteristics simulation of axial magnetic field contacts in a vacuum interrupter
    Seo, Hyeon-Seok
    Lee, Jong-Chul
    Kim, Youn-Jea
    [J]. JAPANESE JOURNAL OF APPLIED PHYSICS, 2015, 54 (01)
  • [20] Experimental and Simulation Research on Influence of Axial Magnetic Field Components on Vacuum Arc Between Transverse Magnetic Field Contacts
    Liu, Zixi
    Xiu, Shixin
    Wang, Ting
    Zhao, Li
    Zhang, Yanzhe
    Li, Rui
    [J]. IEEE TRANSACTIONS ON PLASMA SCIENCE, 2019, 47 (03) : 1648 - 1656