• DocumentCode
    942890
  • Title

    Novel high-gain, improved-bandwidth, finned-ladder V-band traveling-wave tube slow-wave circuit design

  • Author

    Kory, Carol L. ; Wilson, Jeffrey D.

  • Author_Institution
    ANALEX Corp., NASA Lewis Res. Center, Cleveland, OH, USA
  • Volume
    42
  • Issue
    9
  • fYear
    1995
  • fDate
    9/1/1995 12:00:00 AM
  • Firstpage
    1686
  • Lastpage
    1692
  • Abstract
    In this paper, the three-dimensional electrodynamic simulation code MAFIA (Solution of MAxwell´s Equations by the Finite-Integration-Algorithm) is used to investigate methods of increasing the bandwidth and lowering the operating voltage of the ring-plane circuit. Calculations of frequency-phase dispersion, beam on-axis interaction impedance, attenuation, and small-signal gain per wavelength were performed for various geometric variations and loading distributions of the ring-plane TWT slow-wave circuit. Based on the results of the variations, a circuit termed the finned-ladder TWT slow-wave circuit was designed and is compared here to the scaled prototype ring-plane and a conventional ferruled coupled-cavity TWT circuit over the V-band frequency range. The simulation results indicate that this circuit has a much higher gain, significantly wider bandwidth, and a much lower voltage requirement than the scaled ring-plane prototype circuit, while retaining its excellent thermal dissipation properties. The finned-ladder circuit has a much larger small-signal gain per wavelength than the ferruled coupled-cavity circuit, but with a moderate sacrifice in bandwidth
  • Keywords
    digital simulation; electrical engineering computing; electrodynamics; millimetre wave tubes; simulation; slow wave structures; 3D electrodynamic simulation code; 59 to 64 GHz; EHF; MAFIA; TWT slow-wave circuit design; V-band frequency range; V-band traveling-wave tube; attenuation; bandwidth improvement; beam on-axis interaction impedance; finned-ladder slow-wave circuit; frequency-phase dispersion; high-gain MM-wave tube; operating voltage reduction; small-signal gain; thermal dissipation properties; Attenuation; Bandwidth; Circuit simulation; Coupling circuits; Electrodynamics; Frequency; Impedance; Maxwell equations; Performance gain; Voltage;
  • fLanguage
    English
  • Journal_Title
    Electron Devices, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9383
  • Type

    jour

  • DOI
    10.1109/16.405285
  • Filename
    405285