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Microphysics studies for direct-drive inertial confinement fusion

Authors :
E. M. Campbell
Suxing Hu
Valeri Goncharov
Sean Regan
P. B. Radha
Source :
Nuclear Fusion. 59:032011
Publication Year :
2018
Publisher :
IOP Publishing, 2018.

Abstract

Accurate and self-consistent knowledge of material properties under high-energy-density (HED) conditions is crucial to reliably understand and design inertial confinement fusion (ICF) targets through radiation–hydrodynamic simulations. For direct-drive ICF target designs, the fuel deuterium–tritium mixtures and ablator materials can undergo a wide range of density and temperature conditions. Their properties under extreme HED conditions, including the equation of state, thermal conductivity, opacity, and stopping power, are the necessary inputs for ICF simulations. To improve the predictive capability of radiation–hydrodynamic codes for direct-drive ICF simulations, we have performed systematic ab initio studies on the static, transport, and optical properties of deuterium (D2) and ablator materials such as polystyrene (CH), beryllium (Be), and silicon (Si), using first-principles methods. The obtained material properties, being favorably compared with existing experimental data, have been implemented into radiation–hydrodynamic codes. This article gives a brief review on how these microphysics studies affect the 1-D radiation–hydrodynamic predictions of direct-drive ICF implosions on the OMEGA Laser System.

Details

ISSN :
17414326 and 00295515
Volume :
59
Database :
OpenAIRE
Journal :
Nuclear Fusion
Accession number :
edsair.doi...........229986c51c6012804079b5c2e7d24bd7
Full Text :
https://doi.org/10.1088/1741-4326/aac4e3