• DocumentCode
    3605856
  • Title

    Synthesis and Simulation Studies of a 10-kW 2.45-GHz CW Magnetron

  • Author

    Vyas, Sandeep Kumar ; Maurya, Shivendra ; Verma, Rajendra Kumar ; Singh, Vindhyavasini Prasad

  • Author_Institution
    Council of Sci. & Ind. Res., Central Electron. Eng. Res. Inst., Pilani, India
  • Volume
    43
  • Issue
    10
  • fYear
    2015
  • Firstpage
    3615
  • Lastpage
    3619
  • Abstract
    This paper describes a simple approach to electromagnetic design of vane-type resonant system for high-power high-efficient industrial continuous wave (CW) magnetrons. It uses empirical equations in conjunction with normalization techniques to synthesize all the parameters of the resonant structure and then optimize them through simulation using computer simulation technology, microwave studio/particle studio. A method to select constant parameters in the empirical equations has been proposed and shown to be effective in designing practical high-power CW magnetrons. The approach has been benchmarked by designing and developing a double ring ten-vane resonator for a 10-kW output power at a 2.45 GHz ± 30 MHz frequency CW magnetron with a 75% efficiency. The measured circuit parameters such as π-mode frequency, quality factors, and circuit efficiency were found in good agreement with the computed one validating the effectiveness of the proposed design approach. The particle-in-cell simulation of this magnetron predicted that an output power of 10.98 kW can be achieved with an efficiency of 71.45%.
  • Keywords
    magnetrons; resonators; CW magnetron; computer simulation technology; double ring ten-vane resonator; electromagnetic design; empirical equations; frequency 2.45 GHz; frequency 30 MHz; high-power high-efficient industrial continuous wave magnetrons; microwave studio; normalization techniques; particle studio; particle-in-cell simulation; power 10 kW; power 10.98 kW; resonant structure; vane-type resonant system; Anodes; Computational modeling; Magnetic circuits; Magnetic domains; Magnetic resonance; Mathematical model; Industrial magnetron; particle-in-cell (PIC) simulation; strap-and-vane resonator; virtual prototyping; virtual prototyping.;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2015.2475182
  • Filename
    7268912