• DocumentCode
    2467859
  • Title

    Design of microwave devices´ slow-wave structure with double rings

  • Author

    Nikitenko, O.M.

  • Author_Institution
    Kharkiv Nat. Univ. of Radioelectronics, Ukraine
  • fYear
    2002
  • fDate
    2002
  • Firstpage
    205
  • Lastpage
    206
  • Abstract
    Summary form only given. Slow-wave structures, which are used in electron devices, are intended to create conditions when a propagating electromagnetic wave can be most intense for interaction with a moving electron beam. It is found experimentally that the best electron-field interaction conditions are defined by those cases when electron velocity and phase wave velocity are close together. The principal role of the slow-wave structure is accumulation of high-frequency energy and fixation of the oscillation frequency. The slow-wave structure may become like a narrow bandpass filter which discriminates a definite frequency from all frequencies connecting with the electron beam . The most important characteristics of slow-wave structures are their dispersion characteristics. Using the dispersion characteristics, it is possible to estimate the value of frequency separation between oscillation modes, the possible width of the magnetron´s linear tuning, the partial influence of structure construction parameters on mode frequency separation and value of tuning where stable magnetron operation is expected. In this paper, the design and simulation of the characteristics of a magnetron slow-wave structure is carried out using two essentially different methods: the field theory method and the dual circuit method.
  • Keywords
    electromagnetic field theory; electromagnetic wave propagation; electron beams; magnetrons; network synthesis; slow wave structures; tuning; dispersion characteristic; double ring slow-wave structure; dual circuit method; electron devices; electron velocity; electron-field interaction conditions; field theory method; frequency discrimination; high-frequency energy accumulation; magnetron linear tuning; magnetron slow-wave structure; microwave device slow-wave structure design; moving electron beam interaction; narrow bandpass filter; oscillation frequency; oscillation mode frequency separation; phase wave velocity; propagating electromagnetic wave; simulation; stable magnetron operation; structure construction parameters; Charge carrier processes; Electromagnetic propagation; Electromagnetic scattering; Electron beams; Electron devices; Frequency estimation; Magnetic separation; Microwave devices; Microwave propagation; Tuning;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Vacuum Electronics Conference, 2002. IVEC 2002. Third IEEE International
  • Print_ISBN
    0-7803-7256-5
  • Type

    conf

  • DOI
    10.1109/IVELEC.2002.999339
  • Filename
    999339