DocumentCode
1502434
Title
Silicon carbide as electrode material of a pseudospark switch
Author
Weisser, Wolfgang ; Frank, Klaus ; Schröder, Gerhard
Author_Institution
Phys. Dept., Friedrich-Alexander Univ., Erlangen-Nuremberg, Germany
Volume
29
Issue
3
fYear
2001
fDate
6/1/2001 12:00:00 AM
Firstpage
524
Lastpage
528
Abstract
Through the last years, the pseudospark switch, a low-pressure gas discharge switch with hollow cathode geometry, became established as a promising element of pulsed power technology and a serious alternative to other high-power switches. The use of a novel electrode material silicon carbide yields performance improvements in two main areas. Quenching phenomena, a long-standing problem for several applications, are suppressed completely and the switch lifetime can be distinctly increased, approaching that of thyratrons for operation with high repetition rate. As a crow-bar switch, the lifetime is nearby unlimited due to cold electrode usage. Spatial and temporal resolved spectroscopy revealed new insight into the extraordinary discharge behavior of silicon carbide electrodes. The radial plasma expansion from the central bore hole to the outer electrode regions, forming vesicular shells of different ionization stages of Si and C, are described in detail. The remaining problem, a significant loss of deuterium gas during discharge, has been long-term tested and is assumed to be the outcome of absorption in the silicon carbide electrodes. An envisaged promising remedy is presented
Keywords
electrodes; glow discharges; plasma diagnostics; plasma switches; pulsed power switches; silicon compounds; sparks; D; D gas; SiC; SiC electrodes; absorption; central bore hole; cold electrode usage; crow-bar switch; discharge; discharge behavior; electrode material; high repetition rate; high-power switches; hollow cathode geometry; ionization stages; low-pressure gas discharge switch; outer electrode regions; performance improvements; promising remedy; pseudospark switch; pulsed power technology; quenching phenomena; radial plasma expansion; spatial resolved spectroscopy; switch lifetime; temporal resolved spectroscopy; thyratrons; vesicular shells; Cathodes; Discharges; Electrodes; Geometry; Plasmas; Silicon carbide; Spatial resolution; Spectroscopy; Switches; Thyratrons;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.928951
Filename
928951
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