• DocumentCode
    1558221
  • Title

    Experimental investigation of a 140-GHz coaxial gyrotron oscillator

  • Author

    Advani, R. ; Hogge, J.-P. ; Kreischer, Kenneth E. ; Pedrozzi, M. ; Read, M.E. ; Sirigiri, Jagadishwar R. ; Temkin, Richard J.

  • Author_Institution
    Plasma Sci. & Fusion Center, MIT, Cambridge, MA, USA
  • Volume
    29
  • Issue
    6
  • fYear
    2001
  • fDate
    12/1/2001 12:00:00 AM
  • Firstpage
    943
  • Lastpage
    950
  • Abstract
    We report experimental results on a megawatt power level, 140-GHz coaxial gyrotron oscillator. The gyrotron has an inverted magnetron injection gun (IMIG) designed for operation at up to 95 kV and 88 A. The IMIG has an inner grounded anode which extends from the center of the gun down through the entire length of the tube including the cavity and collector. The IMIG was tested at up to 105 kV and 93 A in 3 μs pulses, achieving an electron beam power of 10 MW. The output power from the coaxial gyrotron cavity was transported to an internal mode converter and a single mirror that coupled the power out transversely from the tube axis. A maximum output power of up to 1 MW was obtained in the TE27,11 mode at 142 GHz at an efficiency of 16%, about one half of the design efficiency. The reduced efficiency was attributed to nonuniformity of the cathode emission and the sensitivity to the relative alignment of the electron gun, coaxial insert, and cavity. The cathode emission over the azimuthal angle was measured for two cathodes and was shown to be nonuniform due to both temperature and emitter work function nonuniformity. The gyrotron was also tested in two alternate configurations: 1) with the internal mode converter removed (axial output), and 2) with both the internal converter and the coaxial insert removed (empty cavity). In operation in the empty cavity configuration, which is equivalent to a conventional gyrotron oscillator, output power of up to 0.9 MW was observed
  • Keywords
    anodes; cathodes; cavity resonators; electron beams; electron emission; electron guns; gyrotrons; magnetrons; millimetre wave generation; millimetre wave oscillators; millimetre wave tubes; mirrors; sensitivity; 0.9 MW; 1 MW; 10 MW; 105 kV; 140 GHz; 140-GHz coaxial gyrotron oscillator; 142 GHz; 16 percent; 3 mus; 88 A; 93 A; 95 kV; IMIG; TE27,11 mode; axial output; azimuthal angle; cathode emission; cavity; coaxial gyrotron cavity; coaxial gyrotron oscillator; coaxial insert; collector; configurations; conventional gyrotron oscillator; design efficiency; efficiency; electron beam power; electron gun; emitter work function; emitter work function nonuniformity; empty cavity; empty cavity configuration; gun; gyrotron; inner grounded anode; internal converter; internal mode converter; inverted magnetron injection gun; maximum output power; megawatt power level; nonuniformity; operation; output power; reduced efficiency; relative alignment; sensitivity; single mirror; temperature; temperature nonuniformity; tube; tube axis; Anodes; Cathodes; Coaxial components; Electron beams; Gyrotrons; Mirrors; Optical coupling; Oscillators; Power generation; Testing;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/27.974983
  • Filename
    974983