Tearing mode stability calculations with pressure flattening
C J Ham, J W Connor, S C Cowley, R J Hastie, T C Hender, Y Q Liu

TL;DR
This paper develops a method to accurately calculate tearing mode stability in tokamaks by incorporating pressure flattening effects, improving predictions from resistive MHD codes especially with pressure gradients and curvature effects.
Contribution
It introduces a pressure flattening function enabling better extraction of stability parameters from resistive MHD codes in toroidal geometry.
Findings
Derived equations for stability parameter changes with arbitrary perturbations.
Validated the method in cylindrical geometry with artificial curvature.
Demonstrated application to toroidal tokamak tearing mode stability code T7.
Abstract
Calculations of tearing mode stability in tokamaks split conveniently into an external region, where marginally stable ideal MHD is applicable, and a resonant layer around the rational surface where sophisticated kinetic physics is needed. These two regions are coupled by the stability parameter. Pressure and current perturbations localized around the rational surface alter the stability of tearing modes. Equations governing the changes in the external solution and - are derived for arbitrary perturbations in axisymmetric toroidal geometry. The relationship of - with and without pressure flattening is obtained analytically for four pressure flattening functions. Resistive MHD codes do not contain the appropriate layer physics and therefore cannot predict stability directly. They can, however, be used to calculate -. Existing methods (Ham et al. 2012 Plasma Phys. Control. Fusion 54…
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Taxonomy
TopicsMagnetic confinement fusion research · Superconducting Materials and Applications · Fusion materials and technologies
