Bulletin of the American Physical Society
60th Annual Meeting of the APS Division of Plasma Physics
Volume 63, Number 11
Monday–Friday, November 5–9, 2018; Portland, Oregon
Session NP11: Poster Session V: Laser-plasma Particle Acceleration; HEDP; Turbulence and Transport; DIII-D Tokamak; Machine Learning, Data Science (9:30am-12:30pm)
Wednesday, November 7, 2018
OCC
Room: Exhibit Hall A1&A
Abstract ID: BAPS.2018.DPP.NP11.112
Abstract: NP11.00112 : Quantitative Modeling of Fast Ion Transport by NTMs in Integrated TRANSP Simulations*
Presenter:
Laszlo Bardoczi
(General Atomics - San Diego, Oak Ridge Associated Universities)
Authors:
Laszlo Bardoczi
(General Atomics - San Diego, Oak Ridge Associated Universities)
Mario L. Podesta
(Princeton Plasma Phys Lab)
William Walter Heidbrink
(Univ of California - Irvine)
Michael A Van Zeeland
(General Atomics - San Diego)
A new analysis tool for determining the experimental island width (W) [1] was integrated with the TRANSP-”Kick” reduced transport model [2] to study Neoclassical Tearing Mode (NTM) driven fast ion (FI) transport with no free parameters for the first time. Initial tests are encouraging with the model quantitatively predicting measured neutron rates over a broad range of DIII-D plasmas. The model retains all TRANSP functionality and self-consistently predicts the NTM impact on beam torque, current drive and heating. These effects depend on the location and width of FI phase space resonances which is not accounted for by the ad-hoc anomalous beam diffusivity model of TRANSP. FI transport was found to be significant when resonances overlap, resulting in a transport threshold at W~5cm. This model also shows that 3/2 (2/1) NTMs broaden (peak) the beam driven core current profile, which may contribute to flux pumping in hybrid plasmas.
[1] L. Bardóczi et al, PoP 23, 052507 (2016)
[2] M. Podestà, PPCF 56, 055003 (2014)
*Work supported by US DOE under DE-AC05-060R23100, DE-AC02-09CH11466 & DE-FC02-04ER54698.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DPP.NP11.112
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