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May 8, 2026The Astrophysical Journal0 citationsOpen Access

The Evolution of Star-forming Gas in STARFORGE: From Clouds, to Cores, to Stars

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AKAnanya KaalvaSOStella S. R. OffnerNFNina Filippova

Key Points

  • This research aims to understand how gas collects and evolves in giant molecular clouds to form stars.
  • Utilized the STARFORGE simulation suite to analyze star-forming gas in three giant molecular clouds with different magnetic field strengths.
  • Tracked the lifetime of unaccreted gas correlated with final stellar mass and analyzed protostellar accretion rates for low- and high-mass stars.
  • Assessed physical properties like linewidth-size and mass-size relations of unaccreted gas at the time of protostar formation.
  • Low-mass stars (<0.5 M ⊙) accrete gas over 0.5-0.6 Myr, while high-mass stars (>2 M ⊙) accrete over 3.3-4.7 Myr.
  • The study finds weak dependence of protostellar accretion time on magnetic field strength, while gas radii and velocity dispersions remain largely unchanged.
  • Accretion histories of low- and intermediate-mass stars are well-fit by existing models, but high-mass stars show variability that defies these models.

Abstract

Abstract Star formation occurs within dense regions of giant molecular clouds (GMCs); however, exactly how gas collects and evolves to form individual stars and what role dense cores play remains unclear. We use the Lagrangian cell information in the STARFORGE simulation suite to track star-forming gas in three GMCs with varying magnetic field strengths. We find that once a protostar forms, the lifetime of the unaccreted gas correlates with the final stellar mass, where low-mass stars ( M * 2 M ⊙ ) accrete over 3.3–4.7 Myr from a much larger volume. Although the protostellar accretion time increases weakly with magnetic field strength, the accreting gas radii, velocity dispersions, virial parameters, and magnetic energy ratios are largely insensitive to the global cloud properties. At the time of protostar formation, the unaccreted gas exhibits linewidth-size and mass-size relations characteristic of turbulently regulated, isothermal dense cores, following σ v ∝ R 1.0−1.1 and M ∝ R 0.47−0.55 , respectively. Low- and intermediate-mass stars undergo relatively continuous accretion, and their accretion histories are well-fit by isothermal sphere, turbulent core, or competitive accretion models, where no one model fits all masses. However, many high-mass stars experience intermittent accretion, and their accretion histories are not well-fit by any of these models. While the distribution of accreting gas is more extended than typically defined dense cores, the physical properties and structure of the star-forming gas resemble those of observed cores and are largely regulated by turbulence and feedback.

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Cite This Study

Kaalva et al. (2026) studied this question.

synapsesocial.com/papers/69fd7cd4bfa21ec5bbf05b58https://doi.org/10.3847/1538-4357/ae5d33
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