Gyrokinetic theory of toroidal Alfv\'en eigenmode saturation via nonlinear wave-wave coupling
Zhiyong Qiu, Liu Chen, Fulvio Zonca

TL;DR
This paper demonstrates that nonlinear gyrokinetic theory is essential for understanding the complex wave-wave interactions and saturation mechanisms of toroidal Alfvén eigenmodes in fusion plasmas, which are critical for predicting plasma behavior.
Contribution
The study introduces the application of nonlinear gyrokinetic theory to analyze TAE nonlinear dynamics, revealing key wave-wave coupling channels affecting plasma stability and transport.
Findings
Identification of three main nonlinear wave-wave coupling channels.
Demonstration of the importance of gyrokinetic effects in TAE saturation.
Insights into TAE spectrum evolution and plasma regulation mechanisms.
Abstract
Nonlinear wave-wave coupling constitutes an important route for the turbulence spectrum evolution in both space and laboratory plasmas. For example, in a reactor relevant fusion plasma, a rich spectrum of symmetry breaking shear Alfv\'en wave (SAW) instabilities are expected to be excited by energetic fusion alpha particles, and self-consistently determine the anomalous alpha particle transport rate by the saturated electromagnetic perturbations. In this work, we will show that the nonlinear gyrokinetic theory is a necessary and powerful tool in qualitatively and quantitatively investigating the nonlinear wave-wave coupling processes. More specifically, one needs to employ the gyrokinetic approach in order to account for the breaking of the ``pure Alfv\'enic state" in the short wavelength kinetic regime, due to the short wavelength structures associated with nonuniformity intrinsic to…
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Taxonomy
TopicsMagnetic confinement fusion research · Ionosphere and magnetosphere dynamics · Dust and Plasma Wave Phenomena
