• DocumentCode
    1634507
  • Title

    MHD modeling of conductors at ultra-high current density

  • Author

    Rosenthal, S.E. ; Desjarlais, Michael P. ; Spielman, R.B. ; Stygar, William A. ; Asay, J.R. ; Hall, C.A. ; Frese, Michael H. ; Morse, R.L. ; Reisman, D.B.

  • Author_Institution
    Sandia Nat. Labs., Albuquerque, NM, USA
  • Volume
    2
  • fYear
    1999
  • Firstpage
    980
  • Abstract
    In conjunction with ongoing high-current experiments on Sandia National Laboratories´ Z accelerator we have revisited a problem first described in detail by Heinz Knoepfel (1970). Unlike the 1-Tesla MITLs of pulsed power accelerators used to produce intense particle beams, Z´s disc transmission line (downstream of the current addition) is in a 100-1200 Tesla regime, so its conductors cannot be modeled simply as static infinite conductivity boundaries. Using the MHD code MACH2 we have been investigating the conductor hydrodynamics, characterizing the joule heating, magnetic field diffusion, and material deformation, pressure, and velocity over a range of current densities, current rise-times, and conductor materials. Three purposes of this work are (1) to quantify power flow losses owing to ultra-high magnetic fields, (2) to model the response of VISAR diagnostic samples in various configurations on Z, and (3) to incorporate the most appropriate equation of state and conductivity models into our MHD computations. Certain features are strongly dependent on the details of the conductivity model. Comparison with measurements on Z is discussed.
  • Keywords
    collective accelerators; conductors (electric); current density; electrical conductivity; heating; ion accelerators; losses; magnetic fields; magnetohydrodynamics; power engineering computing; 100 to 1200 T; MACH2 MHD code; MHD modeling; Sandia National Laboratories; VISAR diagnostic samples; Z accelerator; conductor hydrodynamics; conductor materials; conductors modeling; current densities; current rise-times; disc transmission line; joule heating; magnetic field diffusion; material deformation; power flow losses quantification; pressure; ultra-high current density; ultra-high magnetic fields; velocity; Conducting materials; Conductivity; Conductors; Current density; Laboratories; Magnetic field measurement; Magnetic materials; Magnetohydrodynamics; Particle accelerators; Particle beams;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Pulsed Power Conference, 1999. Digest of Technical Papers. 12th IEEE International
  • Conference_Location
    Monterey, CA, USA
  • Print_ISBN
    0-7803-5498-2
  • Type

    conf

  • DOI
    10.1109/PPC.1999.823681
  • Filename
    823681