Solar Magnetic Flux Tube Simulations With Time-Dependent Ionization
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Date
2012
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
Oxford Univ Press
Open Access Color
GOLD
Green Open Access
No
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Publicly Funded
No
Abstract
In the present work we expand the study of time-dependent ionization previously identified to be of pivotal importance for acoustic waves in solar magnetic flux tube simulations. We focus on longitudinal tube waves (LTW) known to be an important heating agent of solar magnetic regions. Our models also consider new results of wave energy generation as well as an updated determination of the mixing length of convection now identified as 1.8 scale heights in the upper solar convective layers. We present 1D wave simulations for the solar chromosphere by studying tubes of different spreading as a function of height aimed at representing tubes in environments of different magnetic filling factors. Multilevel radiative transfer has been applied to correctly represent the total chromospheric emission function. The effects of time-dependent ionization are significant in all models studied. They are most pronounced behind strong shocks and in low-density regions, i.e. the middle and high chromosphere. Concerning our models of different tube spreading, we attained pronounced differences between the various types of models, which were largely initiated by different degrees of dilution of the wave energy flux as well as the density structure partially shaped by strong shocks, if existing. Models showing a quasi-steady rise of temperature with height are obtained via monochromatic waves akin to previous acoustic simulations. However, longitudinal flux tube waves are identified as insufficient to heat the solar transition region and corona in agreement with previous studies.
Description
Keywords
hydrodynamics, MHD, shock waves, waves, Sun: chromosphere, Sun: surface magnetism, Late-Type Stars, Scale Convection Simulations, Slow Magnetosonic Waves, Stellar Wind Flows, Acoustic-Waves, Chromosphere Models, Hydrogen Ionization, Hydrodynamic Code, Radiative Losses, Coronal Plumes, Astrophysics - Solar and Stellar Astrophysics, FOS: Physical sciences, Solar and Stellar Astrophysics (astro-ph.SR)
Fields of Science
0103 physical sciences, 01 natural sciences
Citation
WoS Q
Q1
Scopus Q
Q1

OpenCitations Citation Count
10
Source
Monthly Notıces of the Royal Astronomıcal Socıety
Volume
426
Issue
3
Start Page
1916
End Page
1927
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Citations
CrossRef : 5
Scopus : 10
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Mendeley Readers : 5
SCOPUS™ Citations
10
checked on Mar 09, 2026
Web of Science™ Citations
10
checked on Mar 09, 2026
Page Views
4
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Downloads
7
checked on Mar 09, 2026
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OpenAlex FWCI
0.8559
Sustainable Development Goals
7
AFFORDABLE AND CLEAN ENERGY


