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Hauptverfasser: Keppens, Rony, De Jonghe, Jordi, Kelly, Adrian, Brughmans, Nicolas, Goedbloed, Hans
Format: Preprint
Veröffentlicht: 2025
Schlagworte:
Online-Zugang:https://arxiv.org/abs/2506.23591
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author Keppens, Rony
De Jonghe, Jordi
Kelly, Adrian
Brughmans, Nicolas
Goedbloed, Hans
author_facet Keppens, Rony
De Jonghe, Jordi
Kelly, Adrian
Brughmans, Nicolas
Goedbloed, Hans
contents Using both analytical and numerical means, we demonstrate that linear stability analysis of a hydrodynamic stratified atmosphere or a 1D coronal loop model in non-adiabatic settings features a thermal continuum corresponding to highly localized eigenfunctions. This thermal continuum can be precomputed, involving the net heat-loss function and its partial derivatives, and is the generalization of the thermal instability introduced by~\citet{Parker1953}. We account for a thermal imbalance, directly affecting thermal instability growthrates. We present completely general equations that govern all eigenmodes, including non-adiabatically affected p- and g-modes of the stratified settings. We intend to clarify how linear thermal instability is relevant for solar loops that show spontaneous in-situ condensations, and eliminate recent confusion on specific isochoric routes to linear instability alongside other thermal instability channels. The thermal continuum, previously identified as a crucial ingredient in magnetohydrodynamic eigenmode spectra for coronal loops and atmospheres, drives multithermal aspects across our universe, such as forming solar coronal rain and prominences, or cold cloud creation in intracluster to interstellar medium environments.
format Preprint
id arxiv_https___arxiv_org_abs_2506_23591
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The hydrodynamic thermal continuum, with applications to stratified atmospheres and 1D coronal loop models
Keppens, Rony
De Jonghe, Jordi
Kelly, Adrian
Brughmans, Nicolas
Goedbloed, Hans
Solar and Stellar Astrophysics
Fluid Dynamics
Using both analytical and numerical means, we demonstrate that linear stability analysis of a hydrodynamic stratified atmosphere or a 1D coronal loop model in non-adiabatic settings features a thermal continuum corresponding to highly localized eigenfunctions. This thermal continuum can be precomputed, involving the net heat-loss function and its partial derivatives, and is the generalization of the thermal instability introduced by~\citet{Parker1953}. We account for a thermal imbalance, directly affecting thermal instability growthrates. We present completely general equations that govern all eigenmodes, including non-adiabatically affected p- and g-modes of the stratified settings. We intend to clarify how linear thermal instability is relevant for solar loops that show spontaneous in-situ condensations, and eliminate recent confusion on specific isochoric routes to linear instability alongside other thermal instability channels. The thermal continuum, previously identified as a crucial ingredient in magnetohydrodynamic eigenmode spectra for coronal loops and atmospheres, drives multithermal aspects across our universe, such as forming solar coronal rain and prominences, or cold cloud creation in intracluster to interstellar medium environments.
title The hydrodynamic thermal continuum, with applications to stratified atmospheres and 1D coronal loop models
topic Solar and Stellar Astrophysics
Fluid Dynamics
url https://arxiv.org/abs/2506.23591