On the proper treatment of magnetic fluctuations in full-$f$ field-aligned turbulence codes

Fuente: arXiv
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Main Authors: Zhang, Kaiyu, Zholobenko, Wladimir, Stegmeir, Andreas, Eder, Konrad, Jenko, Frank
Format: Preprint
Published: 2024
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_version_ 1866909441699348480
author Zhang, Kaiyu
Zholobenko, Wladimir
Stegmeir, Andreas
Eder, Konrad
Jenko, Frank
author_facet Zhang, Kaiyu
Zholobenko, Wladimir
Stegmeir, Andreas
Eder, Konrad
Jenko, Frank
contents Plasma turbulence in the edge of magnetic confinement devices is customarily treated as full-$f$ due to large fluctuations. For computational efficiency, field-aligned coordinates are employed, separating the magnetic field into equilibrium $B_0$ and delta-f perturbations which are handled by the magnetic flutter operators. Evolving the full-$f$ pressure with delta-$f$ magnetic perturbations can cause inconsistency since the latter contain background components such as the Shafranov shift, which are actually parts of the equilibrium magnetic field. Such background components ($B_s$) contained in the magnetic perturbations undermine the field-aligned numerics when treated as flutter: errors arise if $B_s/B_0\ll l_\perp/h_\parallel$ is not satisfied, with the perpendicular turbulence scale $l_\perp$ and the parallel grid distance $h_\parallel$. We find that the commonly used removal of $B_s$ by subtracting the toroidal average of magnetic perturbations intervenes in the Alfvén dynamics, causing spurious $E\times B$ transport. Instead, we propose an improved method to dynamically filter out the evolving background from the turbulent magnetic fluctuations in the time domain. The filter is verified in both low and high confinement tokamak conditions, confirming its capability to preserve the turbulence fidelity, provided sufficient filter width.
format Preprint
id arxiv_https___arxiv_org_abs_2412_19390
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle On the proper treatment of magnetic fluctuations in full-$f$ field-aligned turbulence codes
Zhang, Kaiyu
Zholobenko, Wladimir
Stegmeir, Andreas
Eder, Konrad
Jenko, Frank
Plasma Physics
Plasma turbulence in the edge of magnetic confinement devices is customarily treated as full-$f$ due to large fluctuations. For computational efficiency, field-aligned coordinates are employed, separating the magnetic field into equilibrium $B_0$ and delta-f perturbations which are handled by the magnetic flutter operators. Evolving the full-$f$ pressure with delta-$f$ magnetic perturbations can cause inconsistency since the latter contain background components such as the Shafranov shift, which are actually parts of the equilibrium magnetic field. Such background components ($B_s$) contained in the magnetic perturbations undermine the field-aligned numerics when treated as flutter: errors arise if $B_s/B_0\ll l_\perp/h_\parallel$ is not satisfied, with the perpendicular turbulence scale $l_\perp$ and the parallel grid distance $h_\parallel$. We find that the commonly used removal of $B_s$ by subtracting the toroidal average of magnetic perturbations intervenes in the Alfvén dynamics, causing spurious $E\times B$ transport. Instead, we propose an improved method to dynamically filter out the evolving background from the turbulent magnetic fluctuations in the time domain. The filter is verified in both low and high confinement tokamak conditions, confirming its capability to preserve the turbulence fidelity, provided sufficient filter width.
title On the proper treatment of magnetic fluctuations in full-$f$ field-aligned turbulence codes
topic Plasma Physics
url https://arxiv.org/abs/2412.19390