• DocumentCode
    3219277
  • Title

    Runaway electrons preionized diffuse discharges at atmospheric pressure

  • Author

    Tarasenko, V.F. ; Kostyrya, I.D. ; Rybka, D.V. ; Burachenko, A.G. ; Lomaev, M.I. ; Baksht, E.H.

  • Author_Institution
    High Current Electron. Inst., Tomsk, Russia
  • fYear
    2009
  • fDate
    1-5 June 2009
  • Firstpage
    1
  • Lastpage
    1
  • Abstract
    Summary form only given. Breakdown of the gaps with a non-uniform electric field filled with nitrogen and air as well as with other gases under high- voltage nanosecond pulses was investigated. It is shown that conditions of obtaining a diffuse discharge without a source of additional ionization are extended at the voltage pulse duration decreasing. A volume discharge is formed due to the gap pre- ionization by runaway electrons and X-ray quanta. At a negative polarity of the electrode with a small radius of curvature, a volume (diffuse) discharge formation is determined by pre-ionization with runaway electrons which are generated due to the electric field amplification near the cathode and in the gap. At a positive polarity of the electrode with a small radius of curvature, the X-ray radiation, generated at the runaway electrons braking at the anode and in the gap, is of great importance in a volume discharge formation. A runaway electrons preionized diffuse discharge (REP discharge) has two characteristic stages. In the first stage, the ionization wave overlaps the gap during a fraction of a second. The discharge current is determined by the conductivity current in the dense plasma of the ionization wave and the displacement current in the remaining part of the gap. The second stage of the discharge can be related to the anomalous glow discharge with a high specific input power. During the second stage, the gap voltage decreases and the cathode spots formed as a result of explosive electron emission can participate in the electron emission from the cathode. At the increase of the voltage pulse duration and specific input power, the REP discharge transforms into a spark discharge form. A REP discharge is easily realized in various gases and at different pressures. At pressure decrease was obtained the anode electrons beam current to rise (up to ~2 kA/cm2 in helium). At the REP discharge, the anode is influenced by the plasma of a dense nanosecond discharge with th- specific input power up to hundreds of megawatt per a cubic centimeter, by the electrons beam, shock wave and optical radiation from discharge plasma of various spectral ranges, including UV and VUV. This allows forecasting the REP discharge application for modification and cleaning of metal and dielectric surfaces. The REP discharge is promising as well for creation of the VUV-range excilamps with a high radiation power in a pulse.
  • Keywords
    anodes; cathodes; dielectric polarisation; diffusion; glow discharges; ionisation; plasma transport processes; shock waves; sparks; surface cleaning; UV spectra; VUV spectra; X-ray quanta; X-ray radiation; atmospheric pressure; cathode; conductivity current; dense plasma; dielectric surfaces; electric field amplification; electrode; electron beam; glow discharge; high-voltage nanosecond pulses; ionization; metal cleaning; negative polarity; participation; positive polarity; runaway electron preionized diffuse discharges; shock wave; spark discharge; Anodes; Breakdown voltage; Cathodes; Electrodes; Electrons; Fault location; Gases; Ionization; Plasma density; Plasma waves;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Plasma Science - Abstracts, 2009. ICOPS 2009. IEEE International Conference on
  • Conference_Location
    San Diego, CA
  • ISSN
    0730-9244
  • Print_ISBN
    978-1-4244-2617-1
  • Type

    conf

  • DOI
    10.1109/PLASMA.2009.5227677
  • Filename
    5227677