• DocumentCode
    1458014
  • Title

    Acceleration of microparticles in electrothermal launcher with multigap scheme of discharge unit

  • Author

    Shcolnikov, Ya E. ; Guzeyev, M.Y. ; Maslennikov, S.P. ; Netchaev, N.N. ; Chebotarev, A.V.

  • Author_Institution
    Moscow State Eng. Phys. Inst., Russia
  • Volume
    37
  • Issue
    1
  • fYear
    2001
  • fDate
    1/1/2001 12:00:00 AM
  • Firstpage
    188
  • Lastpage
    193
  • Abstract
    To obtain high quality coatings out of powder materials by means of an electrothermal launcher it is necessary to have a certain structure of the gas and plasma streams. It has been achieved by using two successively positioned discharge gaps in the launcher scheme. A launcher physical model was used for the analysis of dynamics of flows generated in the gaps and formation of a united shock-wave stream in which the acceleration and heating of powder material microparticles occurs. It was demonstrated that the capture of microparticles into acceleration is realized by the shock-compressed gas region that has specific shape and follows immediately behind the head shock-wave. Application of the laser probing of the flow, the shadow images of the flows and the radiation scattered from microparticles enabled us to study the shock-wave streams dynamics and microparticles acceleration. Experimental data have confirmed the microparticle acceleration mechanism and proved the differentiation of the bunch due to the nonuniformity of the particles dimensions. The strong influence of microparticle injection conditions on their acceleration dynamics is proved. The characteristics of obtained coatings, in particular, the porosity and adhesion indicate to a real possibility to get coatings with high qualities
  • Keywords
    coating techniques; electrothermal launchers; plasma shock waves; powder technology; acceleration dynamics; adhesion; discharge unit; electrothermal launcher; flow dynamics analysis; gas streams; laser probing; launcher physical model; microparticle injection conditions; microparticles acceleration; multigap scheme; plasma streams; porosity; powder material microparticles acceleration; powder material microparticles heating; powder materials; scattered radiation; shadow images; shock-compressed gas region; successively positioned discharge gaps; united shock-wave stream; Acceleration; Coatings; Electrothermal launching; Heating; Optical materials; Plasma accelerators; Plasma materials processing; Powders; Shape; Streaming media;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.911818
  • Filename
    911818