Feedback and Star Formation Efficiency in High-Mass Star-Forming Regions
Birka Zimmermann, Stefanie Walch, Seamus D. Clarke, Richard W\"unsch, Andre Klepitko

TL;DR
This study uses advanced simulations to explore how stellar feedback mechanisms influence star formation efficiency in high-mass star-forming regions, revealing that feedback processes significantly regulate the final efficiency.
Contribution
It provides a comprehensive simulation framework including ionizing radiation, radiation pressure, dust heating, and chemistry, to study their combined effects on star formation efficiency.
Findings
Ionizing radiation halts mass accretion onto stars.
Higher resolution leads to more sink particles and higher SFE.
Feedback processes strongly influence the final star formation efficiency.
Abstract
To advance our understanding of massive star formation, it is essential to perform a comprehensive suite of simulations that explore the relevant parameter space and include enough physics to enable a comparison with observational data. We simulate the gravitational collapse of isolated, parsec-scale turbulent cores using the FLASH code, modelling stars as sink particles. Our simulations incorporate ionizing radiation and the associated radiation pressure from stellar sources, and non-ionizing radiation and its dust heating, along with self-consistent chemistry, to capture the properties of emerging ultra-compact HII regions. Dust, gas, and radiation temperature are computed independently. The initial conditions are informed by ALMAGAL observations. We assess stellar feedback, comparing ionizing radiation and radiation pressure. Ionizing radiation ultimately halts mass accretion on to…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Astronomy and Astrophysical Research · Stellar, planetary, and galactic studies
