Gyrofluid simulations of turbulence and reconnection in space plasmas

Fuente: arXiv
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Main Authors: Passot, T., Cerri, S. S., Granier, C., Laveder, D., Sulem, P. L., Tassi, E.
Format: Preprint
Published: 2024
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author Passot, T.
Cerri, S. S.
Granier, C.
Laveder, D.
Sulem, P. L.
Tassi, E.
author_facet Passot, T.
Cerri, S. S.
Granier, C.
Laveder, D.
Sulem, P. L.
Tassi, E.
contents A Hamiltonian two-field gyrofluid model is used to investigate the dynamics of an electron-ion collisionless plasma subject to a strong ambient magnetic field, within a spectral range extending from the magnetohydrodynamic (MHD) scales to the electron skin depth. This model isolates Alfvén, Kinetic Alfvén and Inertial Kinetic Alfvén waves that play a central role in space plasmas, and extends standard reduced fluid models to broader ranges of the plasma parameters. Recent numerical results are reviewed, including (i) the reconnection-mediated MHD turbulence developing from the collision of counter-propagating Alfvén wave packets, (ii) the specific features of the cascade dynamics in strongly imbalanced turbulence, including a possible link between the existence of a spectral transition range and the presence of co-propagating wave interactions at sub-ion scales, for which new simulations are reported, (iii) the influence of the ion-to-electron temperature ratio in two-dimensional collisionless magnetic reconnection. The role of electron finite Larmor radius corrections is pointed out and the extension of the present model to a four-field gyrofluid model is discussed. Such an extended model accurately describes electron finite Larmor radius effects at small or moderate values of the electron beta parameter, and also retains the coupling to slow magnetosonic waves.
format Preprint
id arxiv_https___arxiv_org_abs_2401_03863
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Gyrofluid simulations of turbulence and reconnection in space plasmas
Passot, T.
Cerri, S. S.
Granier, C.
Laveder, D.
Sulem, P. L.
Tassi, E.
Plasma Physics
Space Physics
A Hamiltonian two-field gyrofluid model is used to investigate the dynamics of an electron-ion collisionless plasma subject to a strong ambient magnetic field, within a spectral range extending from the magnetohydrodynamic (MHD) scales to the electron skin depth. This model isolates Alfvén, Kinetic Alfvén and Inertial Kinetic Alfvén waves that play a central role in space plasmas, and extends standard reduced fluid models to broader ranges of the plasma parameters. Recent numerical results are reviewed, including (i) the reconnection-mediated MHD turbulence developing from the collision of counter-propagating Alfvén wave packets, (ii) the specific features of the cascade dynamics in strongly imbalanced turbulence, including a possible link between the existence of a spectral transition range and the presence of co-propagating wave interactions at sub-ion scales, for which new simulations are reported, (iii) the influence of the ion-to-electron temperature ratio in two-dimensional collisionless magnetic reconnection. The role of electron finite Larmor radius corrections is pointed out and the extension of the present model to a four-field gyrofluid model is discussed. Such an extended model accurately describes electron finite Larmor radius effects at small or moderate values of the electron beta parameter, and also retains the coupling to slow magnetosonic waves.
title Gyrofluid simulations of turbulence and reconnection in space plasmas
topic Plasma Physics
Space Physics
url https://arxiv.org/abs/2401.03863