3D non-linear MHD simulations of core density collapse event in LHD plasma

Fuente: arXiv
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Main Authors: Civit-Bertran, A., Futatani, S., Suzuki, Y., Dominguez-Palacios, J.
Format: Preprint
Published: 2024
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author Civit-Bertran, A.
Futatani, S.
Suzuki, Y.
Dominguez-Palacios, J.
author_facet Civit-Bertran, A.
Futatani, S.
Suzuki, Y.
Dominguez-Palacios, J.
contents A new three-dimensional, non-linear Magnetohydrodynamics (MHD) model has been extended in MIPS code, incorporating parallel heat diffusivity. The model has been benchmarked against the former MHD model used in MIPS code. A preliminary study of the core density collapse event (CDC) observed in the Large Helical Device (LHD) plasma has been performed using the developed model. The equilibrium has been constructed using HINT code for a typical super dense core discharge in LHD, with vacuum magnetic axis configuration RaxV = 3.85 m and magnetic axis beta \beta0 = 4% plasma. This configuration corresponds to a plasma with a steep pressure gradient and strong Shafranov shift, which makes the plasma potentially unstable in the LHD. The model shows preliminary characteristics of the CDC event. The plasma is destabilized by high-n ballooning modes in the low-field side region during the linear regime, eventually leading to the collapse of the pressure and density profiles, together with the stochastization of the magnetic field and a shift to low-n modes centered at the core of the plasma after the non-linear coupling at the relaxation regime.
format Preprint
id arxiv_https___arxiv_org_abs_2412_15823
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle 3D non-linear MHD simulations of core density collapse event in LHD plasma
Civit-Bertran, A.
Futatani, S.
Suzuki, Y.
Dominguez-Palacios, J.
Plasma Physics
A new three-dimensional, non-linear Magnetohydrodynamics (MHD) model has been extended in MIPS code, incorporating parallel heat diffusivity. The model has been benchmarked against the former MHD model used in MIPS code. A preliminary study of the core density collapse event (CDC) observed in the Large Helical Device (LHD) plasma has been performed using the developed model. The equilibrium has been constructed using HINT code for a typical super dense core discharge in LHD, with vacuum magnetic axis configuration RaxV = 3.85 m and magnetic axis beta \beta0 = 4% plasma. This configuration corresponds to a plasma with a steep pressure gradient and strong Shafranov shift, which makes the plasma potentially unstable in the LHD. The model shows preliminary characteristics of the CDC event. The plasma is destabilized by high-n ballooning modes in the low-field side region during the linear regime, eventually leading to the collapse of the pressure and density profiles, together with the stochastization of the magnetic field and a shift to low-n modes centered at the core of the plasma after the non-linear coupling at the relaxation regime.
title 3D non-linear MHD simulations of core density collapse event in LHD plasma
topic Plasma Physics
url https://arxiv.org/abs/2412.15823