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Simulating radiative shocks with the CRASH laser package

  • B. Van der Holst*
  • , G. Tóth
  • , I. V. Sokolov
  • , B. R. Torralva
  • , K. G. Powell
  • , R. P. Drake
  • , M. Klapisch
  • , M. Busquet
  • , B. Fryxell
  • , E. S. Myra
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

13 Scopus citations

Abstract

We present the latest improvements in the Center for Radiative Shock Hydrodynamics (CRASH) code, a parallel block-adaptive-mesh Eulerian code for simulating high-energy-density plasmas. The implementation can solve for radiation models with either a gray or a multigroup method in the flux-limited-diffusion approximation. The electrons and ions are allowed to be out of temperature equilibrium and flux-limited electron thermal heat conduction is included. We have recently implemented a CRASH laser package with 3-D ray tracing, resulting in improved energy deposition evaluation. New, more accurate opacity models are available which significantly improve radiation transport in materials like xenon. In addition, the HYPRE preconditioner has been added to improve the radiation implicit solver. With this updated version of the CRASH code we study radiative shock tube problems. In our set-up, a 1 ns, 3.8 kJ laser pulse irradiates a 20 micron beryllium disk, driving a shock into a xenon-filled plastic tube. The electrons emit radiation in the shocked xenon. This radiation preheats the unshocked xenon. Photons traveling ahead of the shock will also interact with the plastic tube, heat it, and in turn this can drive another shock off the wall into the xenon.

Original languageEnglish
Pages (from-to)8-16
Number of pages9
JournalHigh Energy Density Physics
Volume9
Issue number1
DOIs
StatePublished - Mar 2013
Externally publishedYes

Keywords

  • Radiation transfer
  • Radiative shocks
  • Shock waves

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