New linear stability parameter to describe low-$\beta$ electromagnetic microinstabilities driven by passing electrons in axisymmetric toroidal geometry
M. R. Hardman, F. I. Parra, B. S. Patel, C. M. Roach, J. Ruiz Ruiz, M., Barnes, D. Dickinson, W. Dorland, J. F. Parisi, D. St-Onge, and H. Wilson

TL;DR
This paper introduces a new linear stability parameter for low-$eta$ electromagnetic microinstabilities driven by passing electrons in axisymmetric toroidal devices, linking local microinstability behavior to global plasma shaping effects.
Contribution
It develops a novel theoretical model that incorporates equilibrium shaping into the stability analysis of electron-driven microinstabilities, validated by linear simulations.
Findings
Effective $eta$ explains micro-tearing mode growth rate dependence on ballooning parameter.
The asymptotic theory matches simulation results with high accuracy.
Shaping effects can be optimized to reduce microinstability-driven transport.
Abstract
In magnetic confinement fusion devices, the ratio of the plasma pressure to the magnetic field energy, , can become sufficiently large that electromagnetic microinstabilities become unstable, driving turbulence that distorts or reconnects the equilibrium magnetic field. In this paper, a theory is proposed for electromagnetic, electron-driven linear instabilities that have current layers localised to mode-rational surfaces and binormal wavelengths comparable to the ion gyroradius. The model retains axisymmetric toroidal geometry with arbitrary shaping, and consists of orbit-averaged equations for the mode-rational surface layer, with a ballooning space kinetic matching condition for passing electrons. The matching condition connects the current layer to the large scale electromagnetic fluctuations, and is derived in the limit that is comparable to the square root of the…
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Taxonomy
TopicsMagnetic confinement fusion research · Ionosphere and magnetosphere dynamics · Plasma Diagnostics and Applications
