On nonlinear saturation of toroidal Alfv\'en eigenmode due to thermal plasma nonlinearities
Ningfei Chen, Thomas Hayward-Schneider, Fulvio Zonca, Zhiyong Qiu, Zhixin Lu, Xin Wang, Alessandro Biancalani, Alexey Mishchenko, Alberto Bottino, and Philipp Lauber

TL;DR
This study investigates the nonlinear saturation of toroidal Alfvén eigenmodes (TAE) caused by thermal plasma effects using gyrokinetic simulations, revealing the role of phase-space zonal structures and the impact of zonal fields.
Contribution
It provides new insights into TAE saturation mechanisms, highlighting the influence of thermal plasma nonlinearities and the importance of zonal modes in saturation level evaluation.
Findings
Saturation level governed by thermal nonlinearities for gamma_L/omega_n > 0.47%.
Frequency of TAE decreases with increasing amplitude due to phase-space zonal structures.
Zonal fields can double the TAE saturation level compared to simulations without zonal modes.
Abstract
The nonlinear saturation of toroidal Alfven eigenmode (TAE) due to thermal plasma nonlinearities is investigated using gyrokinetic particle-in-cell simulations and theoretical analysis. In the single toroidal mode number simulations with zonal fields filtered out, we find that the saturation level of TAE is governed by thermal plasma nonlinearities for gamma_L/omega_n > 0.47%, which has weak dependence on the linear drive gamma_L, i.e., "stiffness" in saturation level. We find that the frequency of TAE decreases as the amplitude of it increases, which is induced by the phase-space zonal structure (PSZS) of thermal plasmas universally existed in particle-in-cell simulations. The saturation of TAE can be finally reached when the mode merges into the continuum. Following this process, the separation of neighboring poloidal harmonics and mode transition to energetic particle modes can be…
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