• DocumentCode
    2440103
  • Title

    Design criteria for low-scattering and long-lifetime gas-insulated self-breakdown spark gaps

  • Author

    Frey, Wolfgang ; Sack, Martin ; Wüstner, Rüdiger ; Müller, Georg

  • Author_Institution
    Forschungszentrum Karlsruhe GmbH, Inst. fur Hochleistungsimpuls- und Mikrowellentech., Karlsruhe
  • fYear
    2008
  • fDate
    15-19 June 2008
  • Firstpage
    1
  • Lastpage
    1
  • Abstract
    Summary form only given: Industrial applications of pulsed power require long lifetime switching elements (>109 shots), which are cheap, reliable and simple in construction. Although solid state switching has made considerable progress during the last years, due to economic reasons it cannot replace gas insulated spark-gaps in the switching voltage range of 50 kV and higher. Our fundamental work on gas-insulated spark gaps is based on the volume time law which was stated by Boeck in 1975: dNe(t)/dt=n dot0(t)ldrg(E)ldrdV. The number of seed electrons Ne per time unit which initiate a streamer in the gap and finally lead to a current carrying channel depends on the seed electron generation rate n dot0 and a field dependent weighting function g(E). A low scattering of the breakdown voltage of a pulse charged gap can be obtained, when the probability g(E)dV for channel formation from a seed electron is high and uniform all over the gap volume. Spark gap lifetime mainly is determined by electrode erosion processes. Unequally distributed electrode erosion along the electrode surface changes the field distribution in the gap and consequently the switching performance of the spark gap. This finally limits its maintenance-free lifetime interval. A maximum lifetime can be achieved, when the probability for channel formation is uniform at each electrode surface element. All conditions can be fulfilled by an electrode shape which realizes a uniform field in a large gap volume. Breakdown voltage measurements show, that the RMS-jitter significantly decreases when uniform field electrodes (Borda-profile) are used instead of spherical shaped electrodes. The switching performance further can be improved by using an auxiliary corona discharge which enhances the seed electron generation in the gap.The influence of gap volume, field distribution and seed- electron generation rate on pulse-to-pulse stability of gas insulated self breakdown- - spark gaps will be demonstrated by measurement results.
  • Keywords
    plasma production; spark gaps; Borda-profile; auxiliary corona discharge; electrode erosion processes; electrode surface element; field dependent weighting function; gas-insulated self-breakdown spark gaps; maintenance-free lifetime interval; pulse charged gap; seed electron generation; spark gap lifetime; spherical shaped electrodes; Construction industry; Electrodes; Electrons; Gas insulation; Power generation economics; Pulse generation; Pulse measurements; Solid state circuits; Spark gaps; Switchgear;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Plasma Science, 2008. ICOPS 2008. IEEE 35th International Conference on
  • Conference_Location
    Karlsruhe
  • ISSN
    0730-9244
  • Print_ISBN
    978-1-4244-1929-6
  • Electronic_ISBN
    0730-9244
  • Type

    conf

  • DOI
    10.1109/PLASMA.2008.4590933
  • Filename
    4590933