Hot-electron generation and preheat in direct-drive experiments at the National Ignition Facility
ORAL
Abstract
Laser–plasma instabilities, such as stimulated Raman scattering, can degrade the performance of direct-drive implosions by generating hot electrons that preheat the target. To assess the extent of hot-electron generation at ignition scales and conditions, planar and spherical target NIF experiments have been designed using the radiation–hydrodynamic codes DRACO and LILAC. Planar-target experiments, with Te ~5 keV and density gradient scale lengths of Ln ~600 μm, exhibited hot-electron temperatures of ~50 keV and conversion efficiencies ranging from ~0.5 to 3% as the laser intensity at the quarter-critical surface increased from ~6 to 15 ×1014 W/cm2. Spherical target experiments will be fielded in September 2018. The target will consist of an outer plastic ablator and an inner Ge-doped plastic layer. The difference in hard x-ray signals between the mass-equivalent plastic and multilayer implosions and the Ge Ka emission will be used to infer the hot-electron energy deposition in the unablated shell. The experiments will demonstrate how the divergence of hot electrons and the extent to which they slow down in the ablator reduce the preheat.
*This material is based upon work supported by the Department of Energy National Nuclear Security Administration under Award Number DE-NA0001944.
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Presenters
Andrey Solodov
Univ of Rochester
Laboratory for Laser Energetics
Laboratory for Laser Energetics, University of Rochester
Authors
Andrey Solodov
Univ of Rochester
Laboratory for Laser Energetics
Laboratory for Laser Energetics, University of Rochester
Michael J Rosenberg
University of Rochester
Univ of Rochester
Univ of Rochester LLE
Laboratory for Laser Energetics, University of Rochester
Laboratory for Laser Energetics
Lab for Laser Energetics
W. Seka
Univ of Rochester
Reuben Epstein
Univ of Rochester
Laboratory for Laser Energetics, University of Rochester
Lab for Laser Energetics
Laboratory for Laser Energetics, U. of Rochester
Robert W Short
Univ of Rochester
Laboratory for Laser Energetics, U. of Rochester
Laboratory for Laser Energetics, University of Rochester
Russell Follett
Univ of Rochester
Laboratory for Laser Energetics, U. of Rochester
University of Rochester Laboratory for Laser Energetics
University of Rochester
Laboratory for Laser Energetics, University of Rochester
Alison R Christopherson
Univ of Rochester
Lab for Laser Energetics
Laboratory for Laser Energetics, University of Rochester
Riccardo Betti
Univ of Rochester
Laboratory for Laser Energetics
Laboratory for Laser Energetics, University of Rochester
Lab for Laser Energetics, Univ of Rochester
Univ of Rochester, Univ of Rochester
University of Rochester and Laboratory for Laser Energetics
Radha Bahukutumbi
Laboratory for Laser Energetics, University of Rochester
Laboratory for Laser Energetics U. of Rochester
University of Rochester
Univ of Rochester
Laboratory for Laser Energetics, U. of Rochester
Laboratory for Laser Energetics, U. of Rochester, Laboratory for Laser Energetics, U. of Rochester
Lab for Laser Energetics, Univ of Rochester
Sean P Regan
Univ of Rochester, Univ of Rochester
Univ of Rochester
Laboratory for Laser Energetics
Laboratory for Laser Energetics, University of Rochester
Laboratory for Laser Energetics U. of Rochester
Laboratory for Laser Energetics, U. of Rochester
Laboratory for Laser Energetics, Rochester, New York
University of Rochester
Lab for Laser Energetics
Dustin H Froula
University of Rochester Laboratory for Laser Energetics
Univ of Rochester
Laboratory for Laser Energetics, U. of Rochester
Laboratory for Laser Energetics
Laboratory for Laser Energetics, University of Rochester
University of Rochester
Valeri N Goncharov
Univ of Rochester
Laboratory for Laser Energetics
Laboratory for Laser Energetics, University of Rochester