Modeling direct-drive OMEGA implosions with externally-imposed magnetic fields

ORAL

Abstract

Externally-applied B fields boost the fusion yield and ion temperature in direct-drive ICF implosions1. However, strong mangetization with a 50 T applied field affects the implosion shape due to a suppression of lateral thermal transport2. Recent and future experiments on OMEGA seek to further understand the effect of magnetization on the electron and ion heat conduction and the implosion shape. However, few 3-D ICF simulation codes have the capability to model the effect of magnetic fields on implosion dynamics. In this talk, we discuss progress in implementing models into the 3-D ICF code ASTER3 to model implosions with externally-imposed magnetic fields, enabling direct comparison and validation of the MHD models with experimental measurements. Ongoing magnetized shock-driven implosion experiments on OMEGA will be modeled with ASTER.

1P. Y. Chang et al. Phy. Rev. Lett. 2011

2A. Bose et al. Phys. Rev. Lett. 2022

3I. V. Igumenshchev et al. Phys. Plasmas 23 2016

*GRANT: LLE subaward SUB00000056/GR530167/AWD00002510,\\ from DOE/NNSA grant DE-NA0003856

Presenters

  • Cameron Alexander Frank

    • University of Delaware

Authors

  • Cameron Alexander Frank

    • University of Delaware
  • Robert Spiers

    • University of Delaware
  • Arijit Bose

    • University of Delaware
  • Igor V Igumenshchev

    • Lab for Laser Energetics
  • Matthew John Cufari

    • MIT Plasma Science and Fusion Center
  • Johan A Frenje

    • Massachusetts Institute of Technology