Numerical Modeling of Galactic Superwinds with Time-evolving Stellar Feedback

Fuente: arXiv
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Autori principali: Danehkar, A., Oey, M. S., Gray, W. J.
Natura: Preprint
Pubblicazione: 2024
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author Danehkar, A.
Oey, M. S.
Gray, W. J.
author_facet Danehkar, A.
Oey, M. S.
Gray, W. J.
contents Mass-loss and radiation feedback from evolving massive stars produce galactic-scale superwinds, sometimes surrounded by pressure-driven bubbles. Using the time-dependent stellar population typically seen in star-forming regions, we conduct hydrodynamic simulations of a starburst-driven superwind model coupled with radiative efficiency rates to investigate the formation of radiative cooling superwinds and bubbles. Our numerical simulations depict the parameter space where radiative cooling superwinds with or without bubbles occur. Moreover, we employ the physical properties and time-dependent ionization states to predict emission line profiles under the assumption of collisional ionization and non-equilibrium ionization caused by wind thermal feedback in addition to photoionization created by the radiation background. We see the dependence of non-equilibrium ionization structures on the time-evolving ionizing source, leading to a deviation from collisional ionization in radiative cooling wind regions over time.
format Preprint
id arxiv_https___arxiv_org_abs_2406_17912
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Numerical Modeling of Galactic Superwinds with Time-evolving Stellar Feedback
Danehkar, A.
Oey, M. S.
Gray, W. J.
Astrophysics of Galaxies
Mass-loss and radiation feedback from evolving massive stars produce galactic-scale superwinds, sometimes surrounded by pressure-driven bubbles. Using the time-dependent stellar population typically seen in star-forming regions, we conduct hydrodynamic simulations of a starburst-driven superwind model coupled with radiative efficiency rates to investigate the formation of radiative cooling superwinds and bubbles. Our numerical simulations depict the parameter space where radiative cooling superwinds with or without bubbles occur. Moreover, we employ the physical properties and time-dependent ionization states to predict emission line profiles under the assumption of collisional ionization and non-equilibrium ionization caused by wind thermal feedback in addition to photoionization created by the radiation background. We see the dependence of non-equilibrium ionization structures on the time-evolving ionizing source, leading to a deviation from collisional ionization in radiative cooling wind regions over time.
title Numerical Modeling of Galactic Superwinds with Time-evolving Stellar Feedback
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2406.17912