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Thermal disequilibration of ions and electrons by collisionless plasma turbulence

Does overall thermal equilibrium exist between ions and electrons in a weakly collisional, magnetized, turbulent plasma? And, if not, how is thermal energy partitioned between ions and electrons? This is a fundamental question in plasma physics, the answer to which is also crucial for predicting the...

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Autores principales: Kawazura, Yohei, Barnes, Michael, Schekochihin, Alexander A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6338852/
https://www.ncbi.nlm.nih.gov/pubmed/30598448
http://dx.doi.org/10.1073/pnas.1812491116
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author Kawazura, Yohei
Barnes, Michael
Schekochihin, Alexander A.
author_facet Kawazura, Yohei
Barnes, Michael
Schekochihin, Alexander A.
author_sort Kawazura, Yohei
collection PubMed
description Does overall thermal equilibrium exist between ions and electrons in a weakly collisional, magnetized, turbulent plasma? And, if not, how is thermal energy partitioned between ions and electrons? This is a fundamental question in plasma physics, the answer to which is also crucial for predicting the properties of far-distant astronomical objects such as accretion disks around black holes. In the context of disks, this question was posed nearly two decades ago and has since generated a sizeable literature. Here we provide the answer for the case in which energy is injected into the plasma via Alfvénic turbulence: Collisionless turbulent heating typically acts to disequilibrate the ion and electron temperatures. Numerical simulations using a hybrid fluid-gyrokinetic model indicate that the ion–electron heating-rate ratio is an increasing function of the thermal-to-magnetic energy ratio, [Formula: see text]: It ranges from [Formula: see text] at [Formula: see text] to at least [Formula: see text] for [Formula: see text]. This energy partition is approximately insensitive to the ion-to-electron temperature ratio [Formula: see text]. Thus, in the absence of other equilibrating mechanisms, a collisionless plasma system heated via Alfvénic turbulence will tend toward a nonequilibrium state in which one of the species is significantly hotter than the other, i.e., hotter ions at high [Formula: see text] and hotter electrons at low [Formula: see text]. Spectra of electromagnetic fields and the ion distribution function in 5D phase space exhibit an interesting new magnetically dominated regime at high [Formula: see text] and a tendency for the ion heating to be mediated by nonlinear phase mixing (“entropy cascade”) when [Formula: see text] and by linear phase mixing (Landau damping) when [Formula: see text].
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spelling pubmed-63388522019-01-23 Thermal disequilibration of ions and electrons by collisionless plasma turbulence Kawazura, Yohei Barnes, Michael Schekochihin, Alexander A. Proc Natl Acad Sci U S A Physical Sciences Does overall thermal equilibrium exist between ions and electrons in a weakly collisional, magnetized, turbulent plasma? And, if not, how is thermal energy partitioned between ions and electrons? This is a fundamental question in plasma physics, the answer to which is also crucial for predicting the properties of far-distant astronomical objects such as accretion disks around black holes. In the context of disks, this question was posed nearly two decades ago and has since generated a sizeable literature. Here we provide the answer for the case in which energy is injected into the plasma via Alfvénic turbulence: Collisionless turbulent heating typically acts to disequilibrate the ion and electron temperatures. Numerical simulations using a hybrid fluid-gyrokinetic model indicate that the ion–electron heating-rate ratio is an increasing function of the thermal-to-magnetic energy ratio, [Formula: see text]: It ranges from [Formula: see text] at [Formula: see text] to at least [Formula: see text] for [Formula: see text]. This energy partition is approximately insensitive to the ion-to-electron temperature ratio [Formula: see text]. Thus, in the absence of other equilibrating mechanisms, a collisionless plasma system heated via Alfvénic turbulence will tend toward a nonequilibrium state in which one of the species is significantly hotter than the other, i.e., hotter ions at high [Formula: see text] and hotter electrons at low [Formula: see text]. Spectra of electromagnetic fields and the ion distribution function in 5D phase space exhibit an interesting new magnetically dominated regime at high [Formula: see text] and a tendency for the ion heating to be mediated by nonlinear phase mixing (“entropy cascade”) when [Formula: see text] and by linear phase mixing (Landau damping) when [Formula: see text]. National Academy of Sciences 2019-01-15 2018-12-31 /pmc/articles/PMC6338852/ /pubmed/30598448 http://dx.doi.org/10.1073/pnas.1812491116 Text en Copyright © 2019 the Author(s). Published by PNAS. http://creativecommons.org/licenses/by/4.0/ This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Physical Sciences
Kawazura, Yohei
Barnes, Michael
Schekochihin, Alexander A.
Thermal disequilibration of ions and electrons by collisionless plasma turbulence
title Thermal disequilibration of ions and electrons by collisionless plasma turbulence
title_full Thermal disequilibration of ions and electrons by collisionless plasma turbulence
title_fullStr Thermal disequilibration of ions and electrons by collisionless plasma turbulence
title_full_unstemmed Thermal disequilibration of ions and electrons by collisionless plasma turbulence
title_short Thermal disequilibration of ions and electrons by collisionless plasma turbulence
title_sort thermal disequilibration of ions and electrons by collisionless plasma turbulence
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6338852/
https://www.ncbi.nlm.nih.gov/pubmed/30598448
http://dx.doi.org/10.1073/pnas.1812491116
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