Self-consistent numerical simulations for the formation and dynamics of solar prominences

Fuente: arXiv
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Autori principali: Zessner, Lisa-Marie, Cameron, Robert H., Solanki, Sami K., Przybylski, Damien
Natura: Preprint
Pubblicazione: 2026
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author Zessner, Lisa-Marie
Cameron, Robert H.
Solanki, Sami K.
Przybylski, Damien
author_facet Zessner, Lisa-Marie
Cameron, Robert H.
Solanki, Sami K.
Przybylski, Damien
contents Solar prominences are cool and dense plasma structures floating in the hot solar corona. They are ubiquitous features in the solar atmosphere, but their formation mechanism is still unclear. Here we perform comprehensive fully three-dimensional numerical simulations of prominence formation including the physics necessary to describe all atmospheric layers of the sun. With appropriate initial conditions for the magnetic field, solar prominences form self-consistently in the simulations. The formation starts by the random ejection of a dense plasma seed from the chromosphere into the corona. Subsequently, the prominence is built up by a combination of plasma injections from the chromosphere and condensation of inflowing coronal plasma. The prominence properties qualitatively match those of observed prominences. Our findings demonstrate the importance of the dynamics at and below the solar surface in the formation and evolution of solar prominences. This suggests that subsurface dynamics should also be considered in the study of prominence eruptions, which can be associated with coronal mass ejections.
format Preprint
id arxiv_https___arxiv_org_abs_2605_00102
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Self-consistent numerical simulations for the formation and dynamics of solar prominences
Zessner, Lisa-Marie
Cameron, Robert H.
Solanki, Sami K.
Przybylski, Damien
Solar and Stellar Astrophysics
Solar prominences are cool and dense plasma structures floating in the hot solar corona. They are ubiquitous features in the solar atmosphere, but their formation mechanism is still unclear. Here we perform comprehensive fully three-dimensional numerical simulations of prominence formation including the physics necessary to describe all atmospheric layers of the sun. With appropriate initial conditions for the magnetic field, solar prominences form self-consistently in the simulations. The formation starts by the random ejection of a dense plasma seed from the chromosphere into the corona. Subsequently, the prominence is built up by a combination of plasma injections from the chromosphere and condensation of inflowing coronal plasma. The prominence properties qualitatively match those of observed prominences. Our findings demonstrate the importance of the dynamics at and below the solar surface in the formation and evolution of solar prominences. This suggests that subsurface dynamics should also be considered in the study of prominence eruptions, which can be associated with coronal mass ejections.
title Self-consistent numerical simulations for the formation and dynamics of solar prominences
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2605.00102