The role of core and strahlo electrons properties on the whistler heat-flux instability thresholds in the solar wind
Author
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Zenteno Quinteros, Beatriz Antonia
Author
dc.contributor.author
Moya Fuentes, Pablo Sebastián
Admission date
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2023-07-21T17:19:04Z
Available date
dc.date.available
2023-07-21T17:19:04Z
Publication date
dc.date.issued
2022
Cita de ítem
dc.identifier.citation
Frontiers in Physics May 2022 | Volume 10 | Article 910193
es_ES
Identifier
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10.3389/fphy.2022.910193
Identifier
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https://repositorio.uchile.cl/handle/2250/194897
Abstract
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There is wide observational evidence that electron velocity distribution functions (eVDF) observed in the solar wind generally present enhanced tails and field-aligned skewness. These properties may induce the excitation of electromagnetic perturbations through the whistler heat-flux instability (WHFI), that may contribute to a non-collisional regulation of the electron heat-flux values observed in the solar wind via wave-particle interactions. Recently, a new way to model the solar wind eVDF has been proposed: the core-strahlo model. This representation consist in a bi-Maxwellian core plus a Skew-Kappa distribution, representing the halo and strahl electrons as a single skewed distribution. The core-strahlo model is able to reproduce the main features of the eVDF in the solar wind (thermal core, enhanced tails, and skewness), with the advantage that the asymmetry is controlled by only one parameter. In this work we use linear kinetic theory to analyze the effect of solar wind electrons described by the core-strahlo model, over the excitation of the parallel propagating WHFI. We use parameters relevant to the solar wind and focus our attention on the effect on the linear stability introduced by different values of the core-to-strahlo density and temperature ratios, which are known to vary throughout the Heliosphere. We also obtain the stability threshold for this instability as a function of the electron beta and the skewness parameter, which is a better indicator of instability than the heat-flux macroscopic moment, and present a threshold conditions for the instability that can be compared with observational data.
es_ES
Patrocinador
dc.description.sponsorship
ANID, Chile 21181965
Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT)
CONICYT FONDECYT 1191351
es_ES
Lenguage
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en
es_ES
Publisher
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Frontiers Media
es_ES
Type of license
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Attribution-NonCommercial-NoDerivs 3.0 United States