Magnetized ICF implosions: Scaling of temperature and yield enhancement

Author:

Walsh C. A.1ORCID,O'Neill S.2,Chittenden J. P.2,Crilly A. J.2ORCID,Appelbe B.2,Strozzi D. J.1ORCID,Ho D.1,Sio H.1ORCID,Pollock B.1,Divol L.1,Hartouni E.1ORCID,Rosen M.1,Logan B. G.1,Moody J. D.1ORCID

Affiliation:

1. Lawrence Livermore National Laboratory, Livermore, California 94550, USA

2. Blackett Laboratory, Imperial College, London SW7 2AZ, United Kingdom

Abstract

This paper investigates the impact of an applied magnetic field on the yield and hot-spot temperature of inertial confinement fusion implosions. A scaling of temperature amplification due to magnetization is shown to be in agreement with unperturbed two-dimensional (2D) extended-magnetohydrodynamic simulations. A perfectly spherical hot-spot with an axial magnetic field is predicted to have a maximum temperature amplification of 37%. However, elongation of the hot-spot along field lines raises this value by decreasing the hot-spot surface area along magnetic field lines. A scaling for yield amplification predicts that a magnetic field has the greatest benefit for low-temperature implosions; this is in agreement with simplified 1D simulations, but not 2D simulations where the hot-spot pressure can be significantly reduced by heat-flow anisotropy. Simulations including a P2 drive asymmetry then show that the magnetized yield is a maximum when the capsule drive corrects the hot-spot shape to be round at neutron bang time. An applied magnetic field is also found to be most beneficial for implosions that are more highly perturbed, exceeding the theoretical yield enhancement for symmetric hot-spots. Increasing the magnetic field strength past the value required to magnetize the electrons is beneficial due to the additional suppression of perturbations by magnetic tension.

Funder

U.S. Department of Energy

Lawrence Livermore National Laboratory

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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