• DocumentCode
    1401749
  • Title

    Pulse shortening in high-peak-power Reltron tubes

  • Author

    Miller, R. Bruce

  • Author_Institution
    Titan Adv. Innovative Technol., Albuquerque, NM, USA
  • Volume
    26
  • Issue
    3
  • fYear
    1998
  • fDate
    6/1/1998 12:00:00 AM
  • Firstpage
    340
  • Lastpage
    347
  • Abstract
    Pulse shortening has been observed in nearly all high-power (>100 MW) microwave tubes that have attempted to extend the useful duration of the power pulse beyond shout 100 ns. Although Titan´s high-peak-power Reltron tubes are notable in that they have produced 300 J/pulse in L-band, we have observed and eliminated several pulse-shortening phenomena to reach this level of performance. In this paper, we will present the results of several experiments related to pulse shortening that have examined the use of different materials and construction techniques; the importance of a good vacuum system, especially when operating under repetitive pulse conditions; and the effects of various conditioning processes. We believe that a major pulse-shortening problem has been the result of a mechanism involving rf electric-field-induced gas evolution and subsequent ionization. With our present construction techniques, using explosive emission cathodes and plastic insulators, we believe that it is possible to achieve 1 kJ/pulse at perhaps a few tens of Hertz pulse repetition rate. To exceed these levels will most likely require the use of conventional microwave tube construction techniques. Including thermionic cathodes, ceramic insulators, and brazed joining with high-temperature bakeout
  • Keywords
    UHF tubes; klystrons; microwave tubes; thermionic cathodes; thermionic tubes; 100 MW; 300 J/pulse; Hertz pulse repetition rate; L-band; RF electric-field-induced gas evolution; brazed joining; ceramic insulators; explosive emission cathodes; high-peak-power Reltron tubes; high-temperature bakeout; ionization; microwave tube construction techniques; plastic insulators; pulse shortening; repetitive pulse conditions; thermionic cathodes; Building materials; Cathodes; Ceramics; Explosives; Ionization; L-band; Microwave theory and techniques; Plastic insulators; Vacuum systems; Vacuum technology;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/27.700764
  • Filename
    700764