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  4. Effects of the parallel flow shear on the ITG-driven turbulent transport in tokamak plasmas
 
research article

Effects of the parallel flow shear on the ITG-driven turbulent transport in tokamak plasmas

Mazzi, S.
•
Camenen, Y.  
•
Garcia, J.
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September 1, 2022
Nuclear Fusion

The impact of the parallel flow shear on the tokamak plasma stability and turbulent transport driven by the ion temperature gradient (ITG) modes is analyzed by means of local gyrokinetic numerical analyses. It is shown that the parallel flow shear increases the ITG growth rate in the linear regime, and induces a broadening and shift of the radial spectrum. Then, the different effects of the finite parallel shear on the ITG turbulence characteristics are deeply analyzed in the nonlinear regime. These studies highlight that a reduction of the thermal-ion turbulent heat flux is induced by a complex mechanism involving the nonlinear generation of an enhanced zonal flow activity. Indeed, the turbulent sources of the zonal flows are increased by the introduction of the finite parallel flow shear in the system, beneficially acting on the saturation level of the ITG turbulence. The study has been carried out for the Waltz standard case below the critical threshold of the destabilization of the parallel velocity gradient instability, and then generalized to a selected pulse of a recent JET scenario with substantial toroidal rotation in the edge plasma region. It is, thus, suggested that the investigated complex mechanism triggered by the finite parallel flow shear reducing the ITG turbulent heat fluxes could be complementary to the well-established perpendicular flow shear in a region with sufficiently large plasma toroidal rotation.

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Type
research article
DOI
10.1088/1741-4326/ac7ac2
Web of Science ID

WOS:000839311300001

Author(s)
Mazzi, S.
Camenen, Y.  
Garcia, J.
Zarzoso, D.
Frigione, D.
Garzotti, L.
Rimini, F.
Van Eester, D.
Date Issued

2022-09-01

Publisher

IOP Publishing Ltd

Published in
Nuclear Fusion
Volume

62

Issue

9

Article Number

096024

Subjects

Physics, Fluids & Plasmas

•

Physics

•

tokamak

•

parallel flow shear

•

turbulence

•

gyrokinetics

•

ion temperature gradient

•

ion-transport

•

confinement

•

suppression

•

modes

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SPC  
Available on Infoscience
August 29, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/190405
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