• DocumentCode
    77731
  • Title

    3-D Simulation of High-Current Vacuum Arcs Under Combined Effect of Actual Magnetic Field and External Transverse Magnetic Field

  • Author

    Zhonghao Qian ; Lijun Wang ; Shenli Jia ; Haijing Wang ; Xiaolong Huang ; Zongqian Shi ; Schellekens, Hans ; Godechot, Xavier

  • Author_Institution
    State Key Lab. of Electr. Insulation & Power Equip., Xi´an Jiaotong Univ., Xi´an, China
  • Volume
    43
  • Issue
    8
  • fYear
    2015
  • fDate
    Aug. 2015
  • Firstpage
    2275
  • Lastpage
    2282
  • Abstract
    Based on a steady-state 3-D magnetohydrodynamic (MHD) model, the high-current vacuum arc (HCVA) under combined effect of actual magnetic field (MF) and external transverse MF (ETMF) is simulated. The actual MF is generated by cup-type axial magnetic field contact system commonly used in commercial vacuum circuit breakers. The ETMF may cause the deflection of arc column, which is the main reason of the contact deflected erosion. According to some experimental results, the electron temperature in HCVA is assumed to be uniform and equal to 3 eV. Therefore, the MHD model is simplified by neglecting the electron energy equation to improve the simulation efficiency. With the three conservation equations (mass, momentum, and energy) of ion flow coupling solved, the spatial distributions of some flow parameters can be obtained. The influence of all three components of the MF is inserted by solving the magnetic transport equations sequentially. Proper boundary conditions are set on the cathode and anode side, which separated the cathode spots mixing region and anode sheath region from computation domain, respectively. Under the influence of the ETMF, the deflection of the plasma flow can be predicted, which may be helpful to understand the mechanism of the contact deflected erosion.
  • Keywords
    plasma magnetohydrodynamics; plasma sheaths; plasma simulation; plasma transport processes; vacuum arcs; vacuum circuit breakers; 3-D simulation; ETMF; HCVA; MHD model; actual magnetic field; anode sheath region; arc column deflection; cathode spot mixing region; commercial vacuum circuit breakers; computation domain; conservation equations; contact deflected erosion; cup-type axial magnetic field contact system; electron energy equation; electron temperature; electron volt energy 3 eV; external transverse MF; external transverse magnetic field; flow parameters; high-current vacuum arcs; ion flow; magnetic transport equations; plasma flow deflection; proper boundary conditions; simulation efficiency; spatial distributions; steady-state 3-D magnetohydrodynamic model; Anodes; Magnetohydrodynamics; Mathematical model; Plasma temperature; Solid modeling; Vacuum arcs; 3-D magnetohydrodynamic (MHD) model; magnetic field (MF); numerical simulation; vacuum arcs; vacuum arcs.;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2015.2430866
  • Filename
    7112548