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Global Linear and Nonlinear Gyrokinetic Simulations of Tearing Modes

Author
Abstract

To better understand multi-scale interactions between global tearing modes and microturbulence in the Madison Symmetric Torus (MST) reversed-field pinch (RFP), the global gyrokinetic code GENE is modified to describe global tearing mode instability via a shifted Maxwellian distribution consistent with experimental equilibria. The implementation of the shifted Maxwellian is tested and benchmarked by comparisons with different codes and models. Good agreement is obtained in code-code and code-theory comparisons. Linear stability of tearing modes of a non-reversed MST discharge is studied. A collisionality scan is performed to the lowest order unstable modes (n=5, n=6) and shown to behave consistently with theoretical scaling. The nonlinear evolution is simulated, and saturation is found to arise from mode coupling and transfer of energy from the most unstable tearing mode to small-scale stable modes mediated by the m=2 tearing mode. The work described herein lays the foundation for nonlinear simulation and analysis of the interaction of tearing modes and gyroradius-scale instabilities in RFP plasmas.

Year of Publication
2024
Journal
Nuclear Fusion
Volume
64
Issue
4
Number of Pages
046005
Publisher
IOP Publishing
DOI
10.1088/1741-4326/ad279b
PId
a32feefad6d19c93f1c7a7ca2f444002
Alternate Journal
Nucl. Fusion
Label
OA
Journal Article
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