Gyrokinetic equilibria of high temperature superconducting magnetic mirrors

Fuente: arXiv
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Hauptverfasser: Rosen, Maxwell H., Francisquez, Manaure, Hakim, Ammar, Hammett, Gregory W.
Format: Preprint
Veröffentlicht: 2026
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author Rosen, Maxwell H.
Francisquez, Manaure
Hakim, Ammar
Hammett, Gregory W.
author_facet Rosen, Maxwell H.
Francisquez, Manaure
Hakim, Ammar
Hammett, Gregory W.
contents High-temperature superconducting (HTS) magnets and other advances have led to renewed interest in magnetic mirrors for fusion energy. The non-Maxwellian nature of mirror plasmas necessitates kinetic modeling to predict, optimize and design mirrors. Explicit gyrokinetic full-f codes can be used to study instabilities and turbulent transport in tokamaks and mirrors, but they have been prohibitively expensive to integrate directly over the very long time scales required to compute kinetic plasma equilibrium. We demonstrate that these studies are now feasible thanks to novel multiscale methods delivering a 30,000X speed-up. The resulting kinetic equilibrium, electrostatic potential, and ion confinement time are consistent with analytic theory. This transformative capability opens the door to a new way of obtaining equilibria for mirrors, and we discuss how this technique may also accelerate calculations for tokamaks and stellarators. The models presented in this article address critical multiscale problems in modeling magnetic mirrors, opening a new research avenue for equilibrium studies using an explicit continuum gyrokinetic code.
format Preprint
id arxiv_https___arxiv_org_abs_2604_11684
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Gyrokinetic equilibria of high temperature superconducting magnetic mirrors
Rosen, Maxwell H.
Francisquez, Manaure
Hakim, Ammar
Hammett, Gregory W.
Plasma Physics
High-temperature superconducting (HTS) magnets and other advances have led to renewed interest in magnetic mirrors for fusion energy. The non-Maxwellian nature of mirror plasmas necessitates kinetic modeling to predict, optimize and design mirrors. Explicit gyrokinetic full-f codes can be used to study instabilities and turbulent transport in tokamaks and mirrors, but they have been prohibitively expensive to integrate directly over the very long time scales required to compute kinetic plasma equilibrium. We demonstrate that these studies are now feasible thanks to novel multiscale methods delivering a 30,000X speed-up. The resulting kinetic equilibrium, electrostatic potential, and ion confinement time are consistent with analytic theory. This transformative capability opens the door to a new way of obtaining equilibria for mirrors, and we discuss how this technique may also accelerate calculations for tokamaks and stellarators. The models presented in this article address critical multiscale problems in modeling magnetic mirrors, opening a new research avenue for equilibrium studies using an explicit continuum gyrokinetic code.
title Gyrokinetic equilibria of high temperature superconducting magnetic mirrors
topic Plasma Physics
url https://arxiv.org/abs/2604.11684