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Auteurs principaux: Saufi, Abd Essamade, Bellenbaum, Hannah, Read, Martin, Niasse, Nicolas, Barrett, Sean, Hawker, Nicholas, Joiner, Nathan, Chapman, David
Format: Preprint
Publié: 2024
Sujets:
Accès en ligne:https://arxiv.org/abs/2411.05035
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author Saufi, Abd Essamade
Bellenbaum, Hannah
Read, Martin
Niasse, Nicolas
Barrett, Sean
Hawker, Nicholas
Joiner, Nathan
Chapman, David
author_facet Saufi, Abd Essamade
Bellenbaum, Hannah
Read, Martin
Niasse, Nicolas
Barrett, Sean
Hawker, Nicholas
Joiner, Nathan
Chapman, David
contents We present the "First Light Advanced Ignition Model" (FLAIM), a reduced model for the implosion, adiabatic compression, volume ignition and thermonuclear burn of a spherical DT fuel capsule utilising a high-Z metal pusher. FLAIM is characterised by a highly modular structure, which makes it an appropriate tool for optimisations, sensitivity analyses and parameter scans. One of the key features of the code is the 1D description of the hydrodynamic operator, which has a minor impact on the computational efficiency, but allows us to gain a major advantage in terms of physical accuracy. We demonstrate that a more accurate treatment of the hydrodynamics plays a primary role in closing most of the gap between a simple model and a general 1D rad-hydro code, and that only a residual part of the discrepancy is attributable to the heat losses. We present a detailed quantitative comparison between FLAIM and 1D rad-hydro simulations, showing good agreement over a large parameter space in terms of temporal profiles of key physical quantities, ignition maps and typical burn metrics.
format Preprint
id arxiv_https___arxiv_org_abs_2411_05035
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle FLAIM: A reduced volume ignition model for the compression and thermonuclear burn of spherical fuel capsules
Saufi, Abd Essamade
Bellenbaum, Hannah
Read, Martin
Niasse, Nicolas
Barrett, Sean
Hawker, Nicholas
Joiner, Nathan
Chapman, David
Plasma Physics
We present the "First Light Advanced Ignition Model" (FLAIM), a reduced model for the implosion, adiabatic compression, volume ignition and thermonuclear burn of a spherical DT fuel capsule utilising a high-Z metal pusher. FLAIM is characterised by a highly modular structure, which makes it an appropriate tool for optimisations, sensitivity analyses and parameter scans. One of the key features of the code is the 1D description of the hydrodynamic operator, which has a minor impact on the computational efficiency, but allows us to gain a major advantage in terms of physical accuracy. We demonstrate that a more accurate treatment of the hydrodynamics plays a primary role in closing most of the gap between a simple model and a general 1D rad-hydro code, and that only a residual part of the discrepancy is attributable to the heat losses. We present a detailed quantitative comparison between FLAIM and 1D rad-hydro simulations, showing good agreement over a large parameter space in terms of temporal profiles of key physical quantities, ignition maps and typical burn metrics.
title FLAIM: A reduced volume ignition model for the compression and thermonuclear burn of spherical fuel capsules
topic Plasma Physics
url https://arxiv.org/abs/2411.05035