The Star Formation Factory revisited I. The impact of metallicity on collapsing star-forming clouds

Fuente: arXiv
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Autores principales: Jiménez, S., Kománek, D., Wünsch, R., Palouš, J., Ehlerová, S., Martínez-González, S., Srbljanović, A.
Formato: Preprint
Publicado: 2026
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author Jiménez, S.
Kománek, D.
Wünsch, R.
Palouš, J.
Ehlerová, S.
Martínez-González, S.
Srbljanović, A.
author_facet Jiménez, S.
Kománek, D.
Wünsch, R.
Palouš, J.
Ehlerová, S.
Martínez-González, S.
Srbljanović, A.
contents Context. Stellar feedback regulates star formation and shapes the interstellar medium, yet its role during the collapse of molecular clouds remains uncertain over a wide range of initial conditions. Aims. We explore how stellar winds and supernovae influence star formation in collapsing gas clouds that span a broad parameter space in mass, size, and metallicity. Methods. Using a one-dimensional numerical model, we follow the evolution of feedback-driven bubbles produced by embedded clusters, incorporating time-dependent energy and mass injection, self-gravity, integrated cloud collapse, radiative cooling, shell instabilities, and triggered star formation. Our treatment of gas cooling in the hot bubble explicitly accounts for heat transfer across the bubble-shell interface. Results. We find that metallicity acts as a key regulator of feedback, comparable in importance to cloud mass and radius. In low-metallicity clouds, reduced radiative cooling is offset by weaker stellar winds, leading to prolonged star formation and higher efficiencies. Across a substantial portion of parameter space, the expanding shell undergoes a stalling phase that further enhances the star formation efficiency, an outcome that is not observed at higher metallicities. Conclusions. Our results suggest that the diverse properties of star clusters across cosmic time may arise from the metallicity-dependent interplay between stellar feedback and gas cooling.
format Preprint
id arxiv_https___arxiv_org_abs_2604_00126
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The Star Formation Factory revisited I. The impact of metallicity on collapsing star-forming clouds
Jiménez, S.
Kománek, D.
Wünsch, R.
Palouš, J.
Ehlerová, S.
Martínez-González, S.
Srbljanović, A.
Astrophysics of Galaxies
Context. Stellar feedback regulates star formation and shapes the interstellar medium, yet its role during the collapse of molecular clouds remains uncertain over a wide range of initial conditions. Aims. We explore how stellar winds and supernovae influence star formation in collapsing gas clouds that span a broad parameter space in mass, size, and metallicity. Methods. Using a one-dimensional numerical model, we follow the evolution of feedback-driven bubbles produced by embedded clusters, incorporating time-dependent energy and mass injection, self-gravity, integrated cloud collapse, radiative cooling, shell instabilities, and triggered star formation. Our treatment of gas cooling in the hot bubble explicitly accounts for heat transfer across the bubble-shell interface. Results. We find that metallicity acts as a key regulator of feedback, comparable in importance to cloud mass and radius. In low-metallicity clouds, reduced radiative cooling is offset by weaker stellar winds, leading to prolonged star formation and higher efficiencies. Across a substantial portion of parameter space, the expanding shell undergoes a stalling phase that further enhances the star formation efficiency, an outcome that is not observed at higher metallicities. Conclusions. Our results suggest that the diverse properties of star clusters across cosmic time may arise from the metallicity-dependent interplay between stellar feedback and gas cooling.
title The Star Formation Factory revisited I. The impact of metallicity on collapsing star-forming clouds
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2604.00126