• DocumentCode
    1347031
  • Title

    Numerical investigation of an ablation-dominated plasma armature

  • Author

    Dirr, Bernhard

  • Author_Institution
    Fachgebiet Raumfahrttech., Tech. Univ. Munchen, Germany
  • Volume
    33
  • Issue
    1
  • fYear
    1997
  • fDate
    1/1/1997 12:00:00 AM
  • Firstpage
    47
  • Lastpage
    52
  • Abstract
    The main plasma armature in a small bore rail launcher is investigated using a one-dimensional numerical model that is based on experiments at very high rail current densities. These experiments revealed an excellent momentum efficiency of the driving arc (i.e., the main plasma armature) in spite of heavy rail and insulator ablation. The numerical work focuses on the ablation process and the effects caused by ablated material entering the plasma armature. These investigations reveal a significant influence of wall ablation on the thermal properties of a plasma armature. Although swept up only partially by the armature, the ablated material has a strong cooling and dissipative effect. The acceleration drag caused by ablated material exceeds the viscous plasma friction and is a major process reducing the electromagnetic pressure of the driving arc. The simulation shows that the convective heat flux must not be neglected, although thermal radiation is the dominant heat transfer mechanism in a railgun. In the leading edge of the armature, where the loss mechanisms prevail, a pressure decrease towards the projectile base can be observed. The region of decreasing pressure grows with increasing velocity or higher armature current. This development may lead to a buffer zone between the armature and the projectile
  • Keywords
    heat transfer; plasma devices; projectiles; railguns; ablation-dominated plasma armature; acceleration drag; armature current; buffer zone; convective heat flux; dissipative effect; electromagnetic pressure; heat transfer mechanism; loss mechanisms; momentum efficiency; one-dimensional numerical model; projectile base; rail current densities; small bore rail launcher; viscous plasma friction; wall ablation; Boring; Heat transfer; Numerical models; Plasma accelerators; Plasma density; Plasma materials processing; Plasma properties; Plasma simulation; Projectiles; Rails;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.559859
  • Filename
    559859