• DocumentCode
    1635053
  • Title

    Operation of Free-Electron Maser Based on a Two-Dimensional Distributed Feedback

  • Author

    Whyte, C.G. ; Cross, A.W. ; Konoplev, I.V. ; He, W. ; Mclnnes, P. ; Phelps, A.D.R. ; Ronald, K. ; Robertson, C.W.

  • Author_Institution
    Strathclyde Univ., Glasgow
  • fYear
    2007
  • Firstpage
    1022
  • Lastpage
    1022
  • Abstract
    Summary form only given. Intensive studies of operation of a coaxial high-power Free-Electron Maser (FEM) based on a two-dimensional distributed feedback are currently taking place at the University of Strathclyde. It has been demonstrated that highest output power and efficiency was achieved if the FEM two-mirror cavity was formed by a 2D Bragg (input mirror) and 1D Bragg structure (output mirror) (2D-1D cavity) in comparison with the case when 2D-2D two-mirror cavity was installed. The input mirror provides two-dimensional (2D) distributed feedback and ensures mode selection over the wave azimuthal index. The use of a 1D Bragg structure as an output mirror reduces the cavity Q-factor, improves the RF field profiles inside the cavity and decreases the power losses inside the output mirror as compared to a 2D Bragg output mirror. The FEM has been driven by an oversized high-current, mildly relativistic thin (0.2 cm wall thickness) annular (7 cm diameter) electron beam of 200 ns pulse duration. The electron beam was guided thorough a coaxial transmission line of length ~2m with the diameters of inner and outer conductors of 6 and 8 cm respectively. The directional mode pattern of the microwave radiation launched from the output horn was measured. The output power measured at the detector was integrated over the radiation pattern resulting in an FEM output power of ~60MW corresponding to an efficiency of ~10%. To study the frequency of the output radiation first the cut-off filters were used and it has been established that the 2D Bragg FEM operated within the 36 GHz and 39 GHz. The frequency was also measured using a heterodyne frequency diagnostic. Microwave radiation from the FEM was mixed in a non-linear waveguide balanced mixer and the resultant intermediate signal captured on a LeCroy digitizing oscilloscope. By taking the FFT of the recorded signal and knowing accurately the local oscillator frequency the radiation spectrum was measured and the main maximum coi- ncided with 37.3 GHz which is in good agreement with theoretical predictions.
  • Keywords
    coaxial waveguides; distributed feedback lasers; free electron lasers; laser cavity resonators; masers; 1D Bragg structure; 2D Bragg FEM; 2D Bragg structure; FEM two-mirror cavity; LeCroy digitizing oscilloscope; cavity Q-factor; coaxial transmission line; free-electron maser; frequency 36 GHz to 39 GHz; local oscillator frequency; microwave radiation; power 60 MW; two-dimensional distributed feedback; Coaxial components; Distributed feedback devices; Electron beams; Frequency measurement; Masers; Mirrors; Power generation; Q factor; Radio frequency; Transmission line measurements;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Plasma Science, 2007. ICOPS 2007. IEEE 34th International Conference on
  • Conference_Location
    Albuquerque, NM
  • ISSN
    0730-9244
  • Print_ISBN
    978-1-4244-0915-0
  • Type

    conf

  • DOI
    10.1109/PPPS.2007.4346328
  • Filename
    4346328