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research article

Implementation of energy transfer technique in ORB5 to study collisionless wave-particle interactions in phase-space

Novikau, I.
•
Biancalani, A.
•
Bottino, A.  
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May 1, 2021
Computer Physics Communications

A new diagnostic has been developed to investigate the wave-particle interaction in the phase-space in gyrokinetic particle-in-cell codes. Keeping information about energy transfer terms in the velocity space, the technique has been implemented and tested in the global code ORB5 and it gives an opportunity to localize velocity domains of maximum wave-plasma energy exchange for separate species. Moreover, contribution of different species and resonances can be estimated as well, by integrating the energy transfer terms in corresponding velocity domains. This Mode-Plasma-Resonance (MPR) diagnostic has been applied to study the dynamics of the Energetic-particle-induced Geodesic Acoustic Modes (EGAMs) in an ASDEX Upgrade shot, by analysing the influence of different species on the mode time evolution. Since the equations, on which the diagnostic is based, are valid in both linear and nonlinear cases, this approach can be applied to study nonlinear plasma effects. As a possible future application, the technique can be used, for instance, to investigate the nonlinear EGAM frequency chirping, or the plasma heating due to the damping of the EGAMs. (C) 2019 Max Planck Institute for Plasma Physics. Published by Elsevier B.V. All rights reserved.

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Type
research article
DOI
10.1016/j.cpc.2019.107032
Web of Science ID

WOS:000626574900006

Author(s)
Novikau, I.
Biancalani, A.
Bottino, A.  
Di Siena, A.
Lauber, Ph.
Poli, E.
Lanti, E.
Villard, L.  
Ohana, N.
Briguglio, S.
Date Issued

2021-05-01

Published in
Computer Physics Communications
Volume

262

Article Number

107032

Subjects

Computer Science, Interdisciplinary Applications

•

Physics, Mathematical

•

Computer Science

•

Physics

•

gyrokinetics

•

pic

•

wave-particle interaction

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zonal flows

•

gams

•

egams

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SPC  
Available on Infoscience
April 10, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/177146
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