Statistical equilibrium model for stellarators

Fuente: arXiv
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Main Authors: Ruth, Maximilian, Burby, Joshua W., Sengupta, Wrick, Brown, Andrew
Format: Preprint
Published: 2026
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_version_ 1866913020996747264
author Ruth, Maximilian
Burby, Joshua W.
Sengupta, Wrick
Brown, Andrew
author_facet Ruth, Maximilian
Burby, Joshua W.
Sengupta, Wrick
Brown, Andrew
contents In three dimensional toroidal domains without symmetry, the standard magnetohydrodynamic (MHD) equilibrium model used for magnetic confinement fusion does not generally support smooth solutions. Instead, solutions have singular plasma currents on resonant magnetic surfaces that violate the MHD assumption of length-scale separation, further leading to the non- or slow convergence of numerical approximations under refinement. In this work, we present an improved equilibrium principle derived from a statistical model for plasma fluctuations. Instead of being static, we assume that the plasma magnetic field is ergodically and rapidly fluctuating relative to the MHD time scale. By averaging the resulting force, we derive a variational equilibrium problem for the statistical mean magnetic field which depends on fluctuation variance. Then, through asymptotics, numerical simulations, and a Grad-Shafranov type argument, we show that the variational principle supports smooth solutions for specific fluctuation statistics chosen to minimally modify the standard equilibrium modeling paradigm. Physically, this model smooths singular current sheets with a length scale determined by the magnetic field fluctuations.
format Preprint
id arxiv_https___arxiv_org_abs_2604_08878
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Statistical equilibrium model for stellarators
Ruth, Maximilian
Burby, Joshua W.
Sengupta, Wrick
Brown, Andrew
Plasma Physics
82D10
In three dimensional toroidal domains without symmetry, the standard magnetohydrodynamic (MHD) equilibrium model used for magnetic confinement fusion does not generally support smooth solutions. Instead, solutions have singular plasma currents on resonant magnetic surfaces that violate the MHD assumption of length-scale separation, further leading to the non- or slow convergence of numerical approximations under refinement. In this work, we present an improved equilibrium principle derived from a statistical model for plasma fluctuations. Instead of being static, we assume that the plasma magnetic field is ergodically and rapidly fluctuating relative to the MHD time scale. By averaging the resulting force, we derive a variational equilibrium problem for the statistical mean magnetic field which depends on fluctuation variance. Then, through asymptotics, numerical simulations, and a Grad-Shafranov type argument, we show that the variational principle supports smooth solutions for specific fluctuation statistics chosen to minimally modify the standard equilibrium modeling paradigm. Physically, this model smooths singular current sheets with a length scale determined by the magnetic field fluctuations.
title Statistical equilibrium model for stellarators
topic Plasma Physics
82D10
url https://arxiv.org/abs/2604.08878