A 1D (radial) Plasma Jet Propagation Study for the Plasma Liner Experiment (PLX)

POSTER

Abstract

The Plasma Liner Experiment will explore the formation of imploding spherical ``plasma liners'' that reach peak pressures of 0.1 Mbar upon stagnation. The liners will be formed through the merging of dense, high velocity plasma jets (n$\sim $10$^{17}$ cm$^{-3}$, T$\sim $3~eV, v$\sim $50 km/s) in a spherically convergent geometry. The focus of this 1D (radial) study is argon plasma jet evolution during propagation from the rail gun source to the jet merging radius. The study utilizes the Large Scale Plasma (LSP) PIC code with atomic physics included through the use of a non-Local Thermal Equilibrium (NLTE) Equation of State (EOS) table. We will present scenarios for expected 1D (radial) plasma jet evolution, from upon exiting the PLX rail gun to reaching the jet merging radius. The importance of radiation cooling early in the simulation is highlighted.

*Work supported by US DOE grant DE-FG02-05ER54835.

Authors

  • J.R. Thompson

    • Far-Tech
    • FAR-TECH, Inc.
  • I.N. Bogatu

    • Far-Tech
    • FAR-TECH, Inc.
  • S.A. Galkin

    • Far-Tech
    • FAR-TECH, Inc.
  • J.S. Kim

    • Far-Tech
    • FAR-TECH, Inc.
  • D.R. Welch

    • Voss Scientific, LLC
  • Carsten Thoma

    • Voss Scientific, LLC
  • I. Golovkin

    • Prism Computational Sciences, Inc.
  • Joseph MacFarlane

    • Prism Computational Sciences
    • Prism Computational Sciences, Inc.
  • Andrew Case

    • HyperV Technologies Corp.
    • HyperV Technologies Corporation
  • Sarah Messer

    • HyperV Technologies Corp.
    • HyperV Technologies Corporation
  • Douglas Witherspoon

    • HyperV Technologies Corp.
    • HyperV Technologies Corporation
  • J.T. Cassibry

    • University of AL in Huntsville
    • UAH
  • Thomas Awe

    • LANL
    • Los Alamos National Laboratory
  • S.C. Hsu

    • Los Alamos National Lab
    • LANL
    • Los Alamos National Laboratory