• DocumentCode
    1761820
  • Title

    A Renewed Capability for Gas Puff Science on Sandia´s Z Machine

  • Author

    Jones, Brent ; Jennings, Christopher A. ; Lamppa, Derek C. ; Hansen, Stephanie B. ; Harvey-Thompson, Adam J. ; Ampleford, David J. ; Cuneo, Michael E. ; Strizic, Thomas ; Johnson, Drew ; Jones, Michael C. ; Moore, Nathan W. ; Flanagan, Timothy M. ; McKenn

  • Author_Institution
    Sandia Nat. Labs., Albuquerque, NM, USA
  • Volume
    42
  • Issue
    5
  • fYear
    2014
  • fDate
    41760
  • Firstpage
    1145
  • Lastpage
    1152
  • Abstract
    A comprehensive gas puff capability is being developed on the Z pulsed power generator. We describe the methodology employed for developing a gas puff load on Z, which combines characterization and modeling of the neutral gas mass flow from a supersonic nozzle, numerical modeling of the implosion of this mass profile, and experimental evaluation of these magnetic implosions on Z. We are beginning a multiyear science program to study gas puff z-pinch physics at high current, starting with an 8-cm diameter double-shell nozzle, which delivers a column of Ar gas that is imploded by the machine´s fast current pulse. The initial shots have been designed using numerical simulation with two radiation-magnetohydrodynamic codes. These calculations indicate that 1 mg/cm should provide optimal coupling to the driver and 1.6:1 middle:outer shell mass ratio will best balance the need for high implosion velocity against the need to mitigate the magnetic Rayleigh-Taylor instability. The models suggest 300-500-kJ Ar K-shell yield should be achievable on Z, and we report an initial commissioning shot at lower voltage in which 250 kJ was measured. Future experiments will pursue optimization of Ar and Kr K-shell X-ray sources, study fusion in deuterium gas puffs, and investigate the physics of gas puff implosions including energy coupling, instability growth, and radiation generation.
  • Keywords
    Rayleigh-Taylor instability; Z pinch; explosions; nozzles; numerical analysis; plasma X-ray sources; plasma magnetohydrodynamics; plasma simulation; K-shell X-ray sources; Sandia Z machine; Z pulsed power generator; argon gas; comprehensive gas puff capability; deuterium gas puffs; double-shell nozzle; energy 250 kJ; energy 300 kJ to 500 kJ; energy coupling; gas puff z pinch physics; high implosion velocity; initial shots; instability growth; machine fast current pulse; magnetic Rayleigh-Taylor instability; magnetic implosions; mass profile; middle-outer shell mass ratio; multiyear science program; neutral gas mass flow; numerical model; numerical simulation; optimal coupling; optimization; radiation generation; radiation-magnetohydrodynamic codes; size 8 cm; supersonic nozzle; Argon; Feeds; Integrated circuit modeling; Laboratories; Load modeling; Magnetohydrodynamics; Numerical models; Gas puff; K-shell radiation; X-ray production; X-ray production.; magnetohydrodynamics (MHDs); plasma pinch; supersonic nozzle;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2013.2287180
  • Filename
    6668885