Suppression of temperature-gradient-driven turbulence by sheared flows in fusion plasmas

Fuente: arXiv
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Main Authors: Ivanov, P. G., Adkins, T., Kennedy, D., Giacomin, M., Barnes, M., Schekochihin, A. A.
Format: Preprint
Published: 2024
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author Ivanov, P. G.
Adkins, T.
Kennedy, D.
Giacomin, M.
Barnes, M.
Schekochihin, A. A.
author_facet Ivanov, P. G.
Adkins, T.
Kennedy, D.
Giacomin, M.
Barnes, M.
Schekochihin, A. A.
contents Starting from the assumption that saturation of plasma turbulence driven by temperature-gradient instabilities in fusion plasmas is achieved by a local energy cascade between a long-wavelength outer scale, where energy is injected into the fluctuations, and a small-wavelength dissipation scale, where fluctuation energy is thermalised by particle collisions, we formulate a detailed phenomenological theory for the influence of perpendicular flow shear on magnetised-plasma turbulence. Our theory introduces two distinct regimes, called the weak-shear and strong-shear regimes, each with its own set of scaling laws for the scale and amplitude of the fluctuations and for the level of turbulent heat transport. We discover that the ratio of the typical radial and poloidal wavenumbers of the fluctuations (i.e., their aspect ratio) at the outer scale plays a central role in determining the dependence of the turbulent transport on the imposed flow shear. Our theoretical predictions are found to be in excellent agreement with numerical simulations of two paradigmatic models of fusion-relevant plasma turbulence: (i) an electrostatic fluid model of slab electron-scale turbulence, and (ii) Cyclone-base-case gyrokinetic ion-scale turbulence. Additionally, our theory envisions a potential mechanism for the suppression of electron-scale turbulence by perpendicular ion-scale flows based on the role of the aforementioned aspect ratio of the electron-scale fluctuations.
format Preprint
id arxiv_https___arxiv_org_abs_2405_00854
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Suppression of temperature-gradient-driven turbulence by sheared flows in fusion plasmas
Ivanov, P. G.
Adkins, T.
Kennedy, D.
Giacomin, M.
Barnes, M.
Schekochihin, A. A.
Plasma Physics
Starting from the assumption that saturation of plasma turbulence driven by temperature-gradient instabilities in fusion plasmas is achieved by a local energy cascade between a long-wavelength outer scale, where energy is injected into the fluctuations, and a small-wavelength dissipation scale, where fluctuation energy is thermalised by particle collisions, we formulate a detailed phenomenological theory for the influence of perpendicular flow shear on magnetised-plasma turbulence. Our theory introduces two distinct regimes, called the weak-shear and strong-shear regimes, each with its own set of scaling laws for the scale and amplitude of the fluctuations and for the level of turbulent heat transport. We discover that the ratio of the typical radial and poloidal wavenumbers of the fluctuations (i.e., their aspect ratio) at the outer scale plays a central role in determining the dependence of the turbulent transport on the imposed flow shear. Our theoretical predictions are found to be in excellent agreement with numerical simulations of two paradigmatic models of fusion-relevant plasma turbulence: (i) an electrostatic fluid model of slab electron-scale turbulence, and (ii) Cyclone-base-case gyrokinetic ion-scale turbulence. Additionally, our theory envisions a potential mechanism for the suppression of electron-scale turbulence by perpendicular ion-scale flows based on the role of the aforementioned aspect ratio of the electron-scale fluctuations.
title Suppression of temperature-gradient-driven turbulence by sheared flows in fusion plasmas
topic Plasma Physics
url https://arxiv.org/abs/2405.00854