New linear stability parameter to describe low-�_ electromagnetic microinstabilities driven by passing electrons in axisymmetric toroidal geometry

dc.contributor.authorHardman, Michael
dc.contributor.authorParra, F. I.
dc.contributor.authorPatel, B.
dc.contributor.authorRoach, C.M.
dc.contributor.authorRuiz, Juan
dc.contributor.authorBarnes, M.
dc.contributor.authorDickinson, David
dc.contributor.authorDorland, W.
dc.contributor.authorParisi, J. F.
dc.contributor.authorSt-Onge, Denis A.
dc.contributor.authorWilson, H. R.
dc.date.accessioned2026-07-01T20:17:48Z
dc.date.issued2023
dc.description.abstractAbstract 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 electron-to-ion-mass ratio. Electromagnetic fluctuations only enter through the matching condition, allowing for the identification of an effective �_ that includes the effects of equilibrium flux surface shaping. The scaling predictions made by the asymptotic theory are tested with comparisons to results from linear simulations of micro-tearing and electrostatic microinstabilities in MAST discharge #6252, showing excellent agreement. In particular, it is demonstrated that the effective �_ can explain the dependence of the local micro-tearing mode (MTM) growth rate on the ballooning parameter �� 0 ���possibly providing a route to optimise local flux surfaces for reduced MTM-driven transport.
dc.description.urihttps://doi.org/10.1088/1361-6587/acb9ba
dc.identifierhttps://doi.org/10.13016/j2df-luod
dc.identifier.citationHardman, M. R., Parra, F. I., Patel, B. S., Roach, C. M., Ruiz, J. R., Barnes, M., Dickinson, D., Dorland, W., Parisi, J. F., St-Onge, D., & Wilson, H. (2023). New linear stability parameter to describe low-_ electromagnetic microinstabilities driven by passing electrons in axisymmetric toroidal geometry. Plasma Physics and Controlled Fusion, 65(4), 045011. https://doi.org/10.1088/1361-6587/acb9ba
dc.identifier.urihttp://hdl.handle.net/1903/35705
dc.language.isoen
dc.publisherPlasma Physics and Controlled Fusion
dc.rightsAttribution 4.0 International
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subjectPhysics
dc.subjectGyrokinetics
dc.subjectElectron
dc.subjectRational surface
dc.subjectMagnetohydrodynamics
dc.subjectMagnetic field
dc.subjectInstability
dc.subjectMechanics
dc.subjectToroid
dc.subjectLinear stability
dc.subjectComputational physics
dc.subjectPlasma
dc.subjectClassical mechanics
dc.subjectMagnetic flux
dc.subjectRotational symmetry
dc.subjectReversed field pinch
dc.subjectTokamak
dc.subjectQuantum mechanics
dc.titleNew linear stability parameter to describe low-�_ electromagnetic microinstabilities driven by passing electrons in axisymmetric toroidal geometry
dc.typearticle
local.equitableAccessSubmissionYes

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