SILCC -- IX. The multi-phase interstellar medium at low metallicity

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Main Authors: Brugaletta, Vittoria, Walch, Stefanie, Naab, Thorsten, Rathjen, Tim-Eric, Girichidis, Philipp, Seifried, Daniel, Nürnberger, Pierre Colin, Wünsch, Richard, Glover, Simon C. O., Pal, Sanjit, Wasmuth, Lukas
Format: Preprint
Published: 2025
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author Brugaletta, Vittoria
Walch, Stefanie
Naab, Thorsten
Rathjen, Tim-Eric
Girichidis, Philipp
Seifried, Daniel
Nürnberger, Pierre Colin
Wünsch, Richard
Glover, Simon C. O.
Pal, Sanjit
Wasmuth, Lukas
author_facet Brugaletta, Vittoria
Walch, Stefanie
Naab, Thorsten
Rathjen, Tim-Eric
Girichidis, Philipp
Seifried, Daniel
Nürnberger, Pierre Colin
Wünsch, Richard
Glover, Simon C. O.
Pal, Sanjit
Wasmuth, Lukas
contents The gas-phase metallicity affects heating and cooling processes in the star-forming galactic interstellar medium (ISM) as well as ionising luminosities, wind strengths, and lifetimes of massive stars. To investigate its impact, we conduct magnetohydrodynamic simulations of the ISM using the FLASH code as part of the SILCC project. The simulations assume a gas surface density of 10 M$_\odot$ pc$^{-2}$ and span metallicities from 1/50 Z$_\odot$ to 1 Z$_\odot$. We include non-equilibrium thermo-chemistry, a space- and time-variable far-UV background and cosmic ray ionisation rate, metal-dependent stellar tracks, the formation of HII regions, stellar winds, type II supernovae, and cosmic ray injection and transport. With the metallicity decreasing over the investigated range, the star formation rate decreases by more than a factor of ten, the mass fraction of cold gas decreases from 60% to 2.3%, while the volume filling fraction of the warm gas increases from 20% to 80%. Furthermore, the fraction of H$_\mathrm{2}$ in the densest regions drops by a factor of four, and the dense ISM fragments into approximately five times fewer structures at the lowest metallicity. Outflow mass loading factors remain largely unchanged, with values close to unity, except for a significant decline at the lowest metallicity. Including the major processes that regulate ISM properties, this study highlights the strong impact of gas phase metallicity on the star-forming ISM.
format Preprint
id arxiv_https___arxiv_org_abs_2507_08126
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle SILCC -- IX. The multi-phase interstellar medium at low metallicity
Brugaletta, Vittoria
Walch, Stefanie
Naab, Thorsten
Rathjen, Tim-Eric
Girichidis, Philipp
Seifried, Daniel
Nürnberger, Pierre Colin
Wünsch, Richard
Glover, Simon C. O.
Pal, Sanjit
Wasmuth, Lukas
Astrophysics of Galaxies
The gas-phase metallicity affects heating and cooling processes in the star-forming galactic interstellar medium (ISM) as well as ionising luminosities, wind strengths, and lifetimes of massive stars. To investigate its impact, we conduct magnetohydrodynamic simulations of the ISM using the FLASH code as part of the SILCC project. The simulations assume a gas surface density of 10 M$_\odot$ pc$^{-2}$ and span metallicities from 1/50 Z$_\odot$ to 1 Z$_\odot$. We include non-equilibrium thermo-chemistry, a space- and time-variable far-UV background and cosmic ray ionisation rate, metal-dependent stellar tracks, the formation of HII regions, stellar winds, type II supernovae, and cosmic ray injection and transport. With the metallicity decreasing over the investigated range, the star formation rate decreases by more than a factor of ten, the mass fraction of cold gas decreases from 60% to 2.3%, while the volume filling fraction of the warm gas increases from 20% to 80%. Furthermore, the fraction of H$_\mathrm{2}$ in the densest regions drops by a factor of four, and the dense ISM fragments into approximately five times fewer structures at the lowest metallicity. Outflow mass loading factors remain largely unchanged, with values close to unity, except for a significant decline at the lowest metallicity. Including the major processes that regulate ISM properties, this study highlights the strong impact of gas phase metallicity on the star-forming ISM.
title SILCC -- IX. The multi-phase interstellar medium at low metallicity
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2507.08126