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Global Hierarchical Collapse In Molecular Clouds. Towards a Comprehensive Scenario

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arxiv 1903.11247 v2 pith:PRYGJLKM submitted 2019-03-27 astro-ph.GA

classification astro-ph.GA
keywords masscloudscollapseglobalmolecularscalesappearcollapses
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We present a unified description of the scenario of Global Hierarchical Collapse and fragmentation (GHC) in molecular clouds (MCs), owing to the continuous decrease of the average Jeans mass in the contracting cloud. GHC constitutes a regime of collapses within collapses, in which small-scale collapses begin at later times, but occur on shorter timescales than large-scale ones. The difference in timescales allows for most of the clouds' mass to be dispersed by feedback from the first massive stars, maintaining the global star formation rate low. All scales accrete from their parent structures. The main features of GHC are: star-forming MCs are in an essentially pressureless regime, which produces filaments that accrete onto clumps and cores ("hubs"). The filaments constitute the collapse flow from cloud to hub scales and may approach a quasi-stationary state; the molecular and dense mass fractions of the clouds increase over time; the first (low-mass) stars appear several Myr after global contraction began; more massive stars appear after a few Myr in massive hubs resulting from the collapse of larger scales; the minimum fragment mass may extend well into the brown-dwarf regime; Bondi-Hoyle-Lyttleton accretion occurs at the protostellar and core scales, accounting for a near-Salpeter IMF; the extreme anisotropy of the filamentary network explains the difficulty in detecting large-scale infall signatures; the balance between inertial and gravitationally-driven motions in clumps evolves during the contraction; prestellar cores adopt Bonnor-Ebert-like profiles, but are contracting ever since early times when they may appear to be unbound and to require pressure confinement; stellar clusters develop radial age and mass segregation gradients. Finally, we discuss the incompatibility between supersonic turbulence and the observed scalings in the molecular hierarchy.

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Cited by 5 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Hub-filament systems and the growth of massive stars: episodic accretion, clustered environments, and projection effects

    astro-ph.GA 2026-08 conditional novelty 6.0 of 10

    In a 3D MHD star-formation simulation, future massive stars gain about 40% of their mass in short enhanced-accretion episodes occurring preferentially near 3D hub-filament junctions, but only 27-49% of those junctions...

  2. ALMA observations of Magnetic Fields in the Massive Star-forming Region IRAS 18360-0537

    astro-ph.GA 2026-07 conditional novelty 6.0 of 10

    An ordered hourglass B-field in IRAS 18360-0537 lies perpendicular to the outflow/rotation axis and is reshaped by rotation, outflow cavity walls, and accretion rather than pure magnetic regulation.

  3. How do bound star clusters form?

    astro-ph.GA 2019-09 conditional novelty 6.0 of 10

    Using Bayesian analysis of stellar ages, young stellar object counts, and the Milky Way's star formation rate, the paper concludes that bound star clusters form through sustained gas accretion with low star formation ...

  4. Fragmentation and filaments at the onset of star and cluster formation: SABOCA 350 $\mu$m view of ATLASGAL selected massive clumps

    astro-ph.GA 2019-09 conditional novelty 6.0 of 10

    A 350 micron census of 575 massive clumps finds that the mass of the most massive embedded core is about 30% of the clump mass, and identifies 27 massive quiescent core candidates.

  5. KFPA Examinations of Young STellar Object Natal Environments (KEYSTONE): Hierarchical Ammonia Structures in Galactic Giant Molecular Clouds

    astro-ph.GA 2019-08 conditional novelty 6.0 of 10

    Across eleven giant molecular clouds, about 63% of 835 ammonia-traced dense clumps are gravitationally bound, and clumps on and off filaments show no significant difference in virial state.

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