A Physics-Informed Deep Learning Model of the Hot Tail Runaway Electron Seed

Fuente: arXiv
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Autore principale: McDevitt, Christopher
Natura: Preprint
Pubblicazione: 2023
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author McDevitt, Christopher
author_facet McDevitt, Christopher
contents A challenging aspect of the description of a tokamak disruption is evaluating the hot tail runaway electron (RE) seed that emerges during the thermal quench. This problem is made challenging due to the requirement of describing a strongly non-thermal electron distribution, together with the need to incorporate a diverse range of multiphysics processes including magnetohydrodynamic instabilities, impurity transport, and radiative losses. The present work develops a physics-informed neural network (PINN) tailored to the solution of the hot tail seed during an idealized axisymmetric thermal quench. Here, a PINN is developed to identify solutions to the adjoint relativistic Fokker-Planck equation in the presence of a rapid quench of the plasma's thermal energy. It is shown that the PINN is able to accurately predict the hot tail seed across a range of parameters including the thermal quench time scale, initial plasma temperature, and local current density, in the absence of experimental or simulation data. The hot tail PINN is verified by comparison with a direct Monte Carlo solution, with excellent agreement found across a broad range of thermal quench conditions.
format Preprint
id arxiv_https___arxiv_org_abs_2306_13224
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle A Physics-Informed Deep Learning Model of the Hot Tail Runaway Electron Seed
McDevitt, Christopher
Plasma Physics
A challenging aspect of the description of a tokamak disruption is evaluating the hot tail runaway electron (RE) seed that emerges during the thermal quench. This problem is made challenging due to the requirement of describing a strongly non-thermal electron distribution, together with the need to incorporate a diverse range of multiphysics processes including magnetohydrodynamic instabilities, impurity transport, and radiative losses. The present work develops a physics-informed neural network (PINN) tailored to the solution of the hot tail seed during an idealized axisymmetric thermal quench. Here, a PINN is developed to identify solutions to the adjoint relativistic Fokker-Planck equation in the presence of a rapid quench of the plasma's thermal energy. It is shown that the PINN is able to accurately predict the hot tail seed across a range of parameters including the thermal quench time scale, initial plasma temperature, and local current density, in the absence of experimental or simulation data. The hot tail PINN is verified by comparison with a direct Monte Carlo solution, with excellent agreement found across a broad range of thermal quench conditions.
title A Physics-Informed Deep Learning Model of the Hot Tail Runaway Electron Seed
topic Plasma Physics
url https://arxiv.org/abs/2306.13224