Development of Anisotropic Magnetized Viscosity for Magnetized Liner Inertial Fusion Simulations in FLASH

Fuente: arXiv
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Autori principali: Sam, Ashwyn, Garcia-Rubio, Fernando, Davidson, Scott, Ellison, C. Leland, Hamilton, Jason, Lau, Raymond, Meezan, Nathan, Reyes, Adam, Schmit, Paul, Velikovich, Alexander
Natura: Preprint
Pubblicazione: 2026
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author Sam, Ashwyn
Garcia-Rubio, Fernando
Davidson, Scott
Ellison, C. Leland
Hamilton, Jason
Lau, Raymond
Meezan, Nathan
Reyes, Adam
Schmit, Paul
Velikovich, Alexander
author_facet Sam, Ashwyn
Garcia-Rubio, Fernando
Davidson, Scott
Ellison, C. Leland
Hamilton, Jason
Lau, Raymond
Meezan, Nathan
Reyes, Adam
Schmit, Paul
Velikovich, Alexander
contents Magnetized liner inertial fusion (MagLIF) operates in a regime where anisotropic transport phenomena fundamentally influence implosion dynamics. In strongly magnetized plasmas, the viscous stress tensor becomes highly anisotropic, yet no prior work has incorporated or examined magnetized viscosity effects in MagLIF configurations. We present the first implementation of the full Braginskii magnetized viscosity tensor for arbitrary magnetic field orientations in the Pacific Fusion branch of FLASH. The implementation is verified through analytical comparisons, direct verification against Braginskii's original formulation, Method of Manufactured Solutions, and against analytical shock solutions. Application to MagLIF-relevant configurations reveals that magnetized viscosity damps vortical structures, converts kinetic energy in those vortical structures into thermal energy, and mitigates the Rayleigh-Taylor instabilities. Simulations with seeded perturbations demonstrate yield preservation when magnetized viscosity is included. These results establish magnetized viscosity as a non-negligible physical mechanism in MagLIF plasmas and provide a validated capability for predictive modeling of magnetized high-energy-density plasmas.
format Preprint
id arxiv_https___arxiv_org_abs_2604_21149
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Development of Anisotropic Magnetized Viscosity for Magnetized Liner Inertial Fusion Simulations in FLASH
Sam, Ashwyn
Garcia-Rubio, Fernando
Davidson, Scott
Ellison, C. Leland
Hamilton, Jason
Lau, Raymond
Meezan, Nathan
Reyes, Adam
Schmit, Paul
Velikovich, Alexander
Plasma Physics
Magnetized liner inertial fusion (MagLIF) operates in a regime where anisotropic transport phenomena fundamentally influence implosion dynamics. In strongly magnetized plasmas, the viscous stress tensor becomes highly anisotropic, yet no prior work has incorporated or examined magnetized viscosity effects in MagLIF configurations. We present the first implementation of the full Braginskii magnetized viscosity tensor for arbitrary magnetic field orientations in the Pacific Fusion branch of FLASH. The implementation is verified through analytical comparisons, direct verification against Braginskii's original formulation, Method of Manufactured Solutions, and against analytical shock solutions. Application to MagLIF-relevant configurations reveals that magnetized viscosity damps vortical structures, converts kinetic energy in those vortical structures into thermal energy, and mitigates the Rayleigh-Taylor instabilities. Simulations with seeded perturbations demonstrate yield preservation when magnetized viscosity is included. These results establish magnetized viscosity as a non-negligible physical mechanism in MagLIF plasmas and provide a validated capability for predictive modeling of magnetized high-energy-density plasmas.
title Development of Anisotropic Magnetized Viscosity for Magnetized Liner Inertial Fusion Simulations in FLASH
topic Plasma Physics
url https://arxiv.org/abs/2604.21149