The stability of the tokamak edge pedestal to ballooning modes is addressed using three-dimensional simulations of the Braginskii equations and simple analytic models. The effects of ion diamagnetic drift and the finite radial localization of the pedestal pressure gradient are found to be strongly stabilizing when where is the pedestal half-width and in the center of the pedestal. In this limit, conventional ballooning modes within the pedestal region become stable, and a stability condition is obtained in the two fluid system (stable) which is much less stringent than that predicted by local magnetohydrodynamic (MHD) theory Given this condition implies a stability limit on the pedestal where This limit is due the onset of an ideal pressure driven “surface” instability that depends only on the pressure drop across the pedestal. Near marginal conditions, this mode has a poloidal wavenumber a radial envelope and real frequency
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July 1999
Research Article|
July 01 1999
Diamagnetic stabilization of ideal ballooning modes in the edge pedestal Available to Purchase
B. N. Rogers;
B. N. Rogers
Institute for Plasma Research, University of Maryland, College Park, Maryland 20742
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J. F. Drake
J. F. Drake
Institute for Plasma Research, University of Maryland, College Park, Maryland 20742
Search for other works by this author on:
B. N. Rogers
Institute for Plasma Research, University of Maryland, College Park, Maryland 20742
J. F. Drake
Institute for Plasma Research, University of Maryland, College Park, Maryland 20742
Phys. Plasmas 6, 2797–2801 (1999)
Article history
Received:
March 03 1999
Accepted:
April 02 1999
Citation
B. N. Rogers, J. F. Drake; Diamagnetic stabilization of ideal ballooning modes in the edge pedestal. Phys. Plasmas 1 July 1999; 6 (7): 2797–2801. https://doi.org/10.1063/1.873237
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