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Extended electron tails in electrostatic microinstabilities and the nonadiabatic response of passing electrons

Abstract:
Ion-gyroradius-scale microinstabilities typically have a frequency comparable to the ion transit frequency. Due to the small electron-to-ion mass ratio and the large electron transit frequency, it is conventionally assumed that passing electrons respond adiabatically in ion-gyroradius-scale modes. However, in gyrokinetic simulations of ion-gyroradius-scale modes in axisymmetric toroidal magnetic fields, the nonadiabatic response of passing electrons can drive the mode, and generate fluctuations in narrow radial layers, which may have consequences for turbulent transport in a variety of circumstances. In flux tube simulations, in the ballooning representation, these instabilities reveal themselves as modes with extended tails. The small electron-to-ion mass ratio limit of linear gyrokinetics for electrostatic instabilities is presented, in axisymmetric toroidal magnetic geometry, including the nonadiabatic response of passing electrons and associated narrow radial layers. This theory reveals the existence of ion-gyroradius-scale modes driven solely by the nonadiabatic passing electron response, and recovers the usual ion-gyroradius-scale modes driven by the response of ions and trapped electrons, where the nonadiabatic response of passing electrons is small. The collisionless and collisional limits of the theory are considered, demonstrating parallels in structure and physical processes to neoclassical transport theory. By examining initial-value simulations of the fastest-growing eigenmodes, the predictions for mass-ratio scaling are tested and verified numerically for a range of collision frequencies. Insight from the small electron-to-ion mass ratio theory may lead to a computationally efficient treatment of extended modes.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1088/1361-6587/ac4e9e

Authors


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Institution:
University of Oxford
Division:
MPLS
Department:
Physics
Oxford college:
Lady Margaret Hall
Role:
Author
ORCID:
0000-0001-5152-3061


Publisher:
IOP Publishing
Journal:
Plasma Physics and Controlled Fusion More from this journal
Volume:
64
Issue:
5
Article number:
055004
Publication date:
2022-03-21
Acceptance date:
2022-01-25
DOI:
EISSN:
1361-6587
ISSN:
0741-3335


Language:
English
Keywords:
Pubs id:
1190837
Local pid:
pubs:1190837
Deposit date:
2022-01-26

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