Neutron backscatter edges as a diagnostic of burn propagation

Author:

Crilly A. J.1ORCID,Appelbe B. D.1,Mannion O. M.2ORCID,Forrest C. J.2,Knauer J. P.2,Schlossberg D. J.3ORCID,Hartouni E. P.3ORCID,Moore A. S.3ORCID,Chittenden J. P.1

Affiliation:

1. Centre for Inertial Fusion Studies, The Blackett Laboratory, Imperial College, London SW7 2AZ, United Kingdom

2. Laboratory for Laser Energetics, University of Rochester, Rochester, New York 14623, USA

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

Abstract

High gain in hotspot-ignition inertial confinement fusion (ICF) implosions requires the propagation of thermonuclear burn from a central hotspot to the surrounding cold dense fuel. As ICF experiments enter the burning plasma regime, diagnostic signatures of burn propagation must be identified. In previous work [A. J. Crilly et al., Phys. Plasmas 27(1), 012701 (2020)], it has been shown that the spectral shape of the neutron backscatter edges is sensitive to the dense fuel hydrodynamic conditions. The backscatter edges are prominent features in the ICF neutron spectrum produced by the 180° scattering of primary deuterium–tritium fusion neutrons from ions. In this work, synthetic neutron spectra from radiation-hydrodynamics simulations of burning ICF implosions are used to assess the backscatter edge analysis in a propagating burn regime. Significant changes to the edge's spectral shape are observed as the degree of burn increases, and a simplified analysis is developed to infer scatter-averaged fluid velocity and temperature. The backscatter analysis offers direct measurement of the increased dense fuel temperatures that result from burn propagation.

Publisher

AIP Publishing

Subject

Condensed Matter Physics

Reference46 articles.

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2. Design of inertial fusion implosions reaching the burning plasma regime

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