Optimization of the gamma reaction history diagnostic for double-shell pusher areal density and reaction history measurements on the National Ignition Facility

Author:

Dwyer R. H.12ORCID,Meaney K. D.2ORCID,Geppert-Kleinrath H.2ORCID,Loomis E. N.2ORCID,Robey H. F.2ORCID,Mohamed Z. L.2ORCID,Fry C.2ORCID,Kim Y.2ORCID

Affiliation:

1. 1 Laboratory for Laser Energetics, University of Rochester, Rochester, New York 14627, USA

2. 2 Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA

Abstract

The double-shell inertial confinement fusion campaign, which consists of an aluminum ablator, a foam cushion, a high-Z pusher (tungsten or molybdenum), and liquid deuterium–tritium (DT) fuel, aims for its first DT filled implosions on the National Ignition Facility (NIF) in 2024. The high-Z, high density pusher does not allow x-rays to escape the double-shell capsule. Therefore, nuclear diagnostics such as the Gamma Reaction History (GRH) diagnostic on the NIF are crucial for understanding high-Z implosion performance. To optimize the GRH measurement of fusion reaction history and the pusher’s areal density, the MCNP6.3-based forward model of the detector was built. When calculating the neutron-induced inelastic gamma ray production, the interaction of neutrons with the compressed fuel was additionally included. By folding the calculated gamma ray spectrum output and the previously calibrated GRH detector responses, the optimum set of GRH energy thresholds for measuring the pusher areal density is determined to be 2.9 and 6.3 MeV for DT double-shell experiments. In addition, the effect of the down-scattering of neutrons on the gamma ray spectrum, the minimum required yield for measurements, and the attenuation of the gamma rays through the pusher are analyzed.

Funder

Los Alamos National Laboratory

Publisher

AIP Publishing

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