Bulletin of the American Physical Society
63rd Annual Meeting of the APS Division of Plasma Physics
Volume 66, Number 13
Monday–Friday, November 8–12, 2021; Pittsburgh, PA
Session JP11: Poster Session IV:
Astrophysical Plasma Phenomena
Education and Outreach: Public Engagement, Workforce Development, DEI, High School Research, Undergraduate Research
MFE - Exhaust and PMI; Disruptions and Runaway Electrons; Energetic Particles
2:00 PM - 5:00 PM
Tuesday, November 9, 2021
Room: Hall A
Abstract: JP11.00070 : Regulation of Alfven eigenmodes by microturbulence in fusion plasmas
Presenter:
Pengfei Liu
(University of California, Irvine)
Authors:
Pengfei Liu
(University of California, Irvine)
Zhihong Lin
(University of California, Irvine)
Xishuo Wei
(University of California, Irvine)
William W Heidbrink
(University of California, Irvine)
George R McKee
(University of Wisconsin - Madison)
Gyungjin Choi
(University of California, Irvine)
Javier H Nicolau
(University of California, Irvine)
Guillaume R Brochard
(University of California, Irvine)
Collaborations:
US DOE SciDAC ISEP Center, GTC Team
In the current work, the cross-scale coupling between AE and microturbulence is studied in state-of-the-art integrated simulations using the global gyrokinetic toroidal code (GTC) with comprehensive physics and kinetic treatment of all particle species. GTC simulations of the DIII-D tokamak experiment find that reversed shear Alfven eigenmodes (RSAE) excited by energetic ions from the neutral beam injection can saturate by self-generated zonal flows. However, the saturated amplitude and EP transport level are an order of magnitude higher than the experimental observations when the background microturbulence is artificially suppressed in the simulations of meso-scale modes only. In contrast, in the simulations coupling micro-meso scales, the saturated RSAE amplitude and EP transport are greatly reduced to the experimental level due to zonal flow shearing and EP scattering by the microturbulence driven by thermal ion temperature gradient (ITG) instabilities. The resulting RSAE mode structure and microturbulence intensity agree very well with experimental measurements using electron cyclotron emission (ECE) and beam emission spectroscopy (BES).
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