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Abstract. Energetic Particle Modes (EPM) are strongly driven
oscillations excited via wave-particle resonant interactions at the
characteristic frequencies of the energetic ions,
,
and/or
, i.e., respectively the
transit frequency for circulating particles and the bounce and precessional
drift frequencies for trapped ions. A sharp transition in the plasma
stability at the critical EPM excitation threshold has been observed by nonperturbative gyrokinetic codes in terms of changes in normalized
growth rate (
/
, with
= vA/qR0), real
frequency (
/
) and parallel wave vector (
k|qR0) both as
= - R0q2
of the thermal plasma and that,
of fast ions are varied. The present work further explores
theoretical aspects of EPM excitations by spatially localized particle
sources, possibly associated with frequency chirping, which can radially trap the EPM in the region where the free energy source is
strongest. Results of a nonperturbative 3D Hybrid MHD Gyrokinetic code
are also presented to emphasize that nonlinear behaviors of EPM's are
different from those of Toroidal Alfvén Eigenmodes (TAE) and Kinetic TAE
(KTAE) and that particle losses and mode saturation are consistent with the
mode-particle pumping model (particle radial convection).
Results of theoretical analyses of nonlinear EPM dynamics are also presented
and the possible overlap with more general nonlinear dynamics problems is
discussed.
IAEA 2001