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Autori principali: Isenberg, Philip A., Vasquez, Bernard J.
Natura: Preprint
Pubblicazione: 2024
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Accesso online:https://arxiv.org/abs/2405.02757
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author Isenberg, Philip A.
Vasquez, Bernard J.
author_facet Isenberg, Philip A.
Vasquez, Bernard J.
contents We present results from a kinetic model of collisionless gyrotropic coronal hole protons heated by cyclotron and Landau resonant dissipation of critically balanced kinetic Alfvén waves. The model incorporates the kinetic effects of gravity, ambipolar electric field, ponderomotive force of the large-scale Alfvén waves and the mirror force in a super-radially expanding flux tube. The flow speed is self- consistently obtained as the bulk flow of the proton distribution. Two cases, taking the intensities of the turbulent spectra to be balanced in the parallel propagation direction or imbalanced at a ratio of 9:1 show almost no difference. The distributions develop parallel extensions outward due to the Landau resonance, but exhibit very little perpendicular heating under the parameter choices used here. The speeds and temperatures fall well short of the requirements for a fast solar wind. Rather than continuing to explore the parameter space of this system, we propose that a modified model using turbulent spectra based on the recent helicity barrier scenario would be an appropriate next step.
format Preprint
id arxiv_https___arxiv_org_abs_2405_02757
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A Kinetic Model of Solar Wind Generation and Heating by Kinetic Alfvén Wave Turbulence
Isenberg, Philip A.
Vasquez, Bernard J.
Space Physics
We present results from a kinetic model of collisionless gyrotropic coronal hole protons heated by cyclotron and Landau resonant dissipation of critically balanced kinetic Alfvén waves. The model incorporates the kinetic effects of gravity, ambipolar electric field, ponderomotive force of the large-scale Alfvén waves and the mirror force in a super-radially expanding flux tube. The flow speed is self- consistently obtained as the bulk flow of the proton distribution. Two cases, taking the intensities of the turbulent spectra to be balanced in the parallel propagation direction or imbalanced at a ratio of 9:1 show almost no difference. The distributions develop parallel extensions outward due to the Landau resonance, but exhibit very little perpendicular heating under the parameter choices used here. The speeds and temperatures fall well short of the requirements for a fast solar wind. Rather than continuing to explore the parameter space of this system, we propose that a modified model using turbulent spectra based on the recent helicity barrier scenario would be an appropriate next step.
title A Kinetic Model of Solar Wind Generation and Heating by Kinetic Alfvén Wave Turbulence
topic Space Physics
url https://arxiv.org/abs/2405.02757