Gyrokinetic investigation of toroidal Alfvén eigenmode (TAE) turbulence

Author:

Ajay C. J.12ORCID,McMillan Ben1ORCID,Bokshi Arkaprava3ORCID,di Siena Alessandro4,Pueschel M. J.567ORCID,Ruiz Juan Ruiz8ORCID

Affiliation:

1. Centre for Fusion, Space and Astrophysics, Department of Physics, University of Warwick 1 , CV4 7AL Coventry, United Kingdom

2. Poel Robotics 2 , Thiruvananthapuram, India

3. York Plasma Institute, University of York 3 , Heslington York YO10 5DD, United Kingdom

4. Max Planck Institute for Plasma Physics 4 , Boltzmannstr.2, 85748 Garching, Germany

5. Dutch Institute for Fundamental Energy Research 5 , 5612 AJ Eindhoven, The Netherlands

6. Eindhoven University of Technology 6 , 5600 MB Eindhoven, The Netherlands

7. Department of Physics and Astronomy, Ruhr-Universität Bochum 7 , 44780 Bochum, Germany

8. Rudolf Peierls Centre for Theoretical Physics, University of Oxford 8 , Oxford OX1 3PU, United Kingdom

Abstract

Toroidal Alfvén eigenmodes (TAEs) can transport fusion-born energetic particles out of the plasma volume, thereby decreasing plasma self-heating efficiency and possibly damaging reactor walls. Therefore, understanding TAE destabilization and identifying saturation mechanisms are crucial to achieving burning plasma. Here, a fully gyrokinetic study is employed. In the case studied, the primary drive mechanism is identified as the resonance between the magnetic drifts and the TAE, and this is seen to be disrupted by equilibrium flow shear, which can stabilize the mode by rotating it in the poloidal plane. It is found that zonal flows do not play a significant role in the saturation of these TAEs and that there are no saturation mechanisms present in the local gyrokinetic picture, which are able to saturate the mode at physically relevant transport levels in the case of TAE-only turbulence. Instead, we confirm that the global profile flattening of fast-ion density is the key saturation mechanism. The nonlinear excitation of TAEs traveling along the electron diamagnetic direction and its beating with the ion diamagnetic TAE, resulting in large amplitude oscillations that may help detect TAEs more easily in tokamaks, are also reported.

Funder

Engineering and Physical Sciences Research Council

Publisher

AIP Publishing

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