Random gas motions inside sub-parsec scale supercritical filaments
arXiv:2604.04501 · doi:10.1007/s11433-026-2964-7
Abstract
Supercritical gas filaments in molecular clouds host the dense cores in which new stars form. The mechanisms governing their formation and subsequent gas accretion remain poorly understood. In this study, we conduct a statistical analysis of a large sample of sub-parsec supercritical filaments using H13COp J=1-0 data from the ALMA Three-millimeter Observations of Massive Star-forming regions (ATOMS) Survey. We identified velocity-coherent filaments in position-position-velocity (PPV) space and systematically examined velocity gradients both along and perpendicular to their skeletons. Our analysis uncovers a remarkable result: at scales of ~ 0.1-1 pc, the local velocity gradients within these supercritical filaments show no preferred alignment with the filament skeletons and exhibit no correlation with the local gravitational field. This random orientation suggests the presence of chaotic gas motions deep inside these dense structures. These findings may indicate that turbulence-rather than gravity-dominates gas dynamics and structural evolution at small scales, even in regions on the verge of star formation, challenging the paradigm of gravity-dominated structure formation within molecular clouds. This scenario should be further tested by more state-of-the-art simulations. This study offers key observational insights into the roles of turbulence and gravity in establishing the initial conditions for star formation.
This paper accepted by SCIENCE CHINA Physics, Mechanics & Astronomy. Added complete reference list for supplementary materials. The published journal version in SCIENCE CHINA Physics, Mechanics & Astronomy does not include references cited in supplementary materials, which are supplemented in this arXiv updated version
References in corpus (48)
- The Stellar IMF from Turbulent Fragmentation
- Cold Dark Clouds: The Initial Conditions for Star Formation
- Herschel view of the Taurus B211/3 filament and striations: Evidence of filamentary growth?
- Analytical theory for the initial mass function: CO clumps and prestellar cores
- Filamentary structure of star-forming complexes
- A Super-Alfvenic Model of Dark Clouds
- Dynamic star formation in the massive DR21 filament
- ATLASGAL --- properties of a complete sample of Galactic clumps
- Filamentary Accretion Flows in the Embedded Serpens South Protocluster
- The stellar mass spectrum from non-isothermal gravoturbulent fragmentation
- Filamentary structures and compact objects in the Aquila and Polaris clouds observed by Herschel
- SDC13 infrared dark clouds: Longitudinally collapsing filaments?
- Chemistry in Infrared Dark Cloud Clumps: a Molecular Line Survey at 3 mm
- Magnetic Fields and Massive Star Formation
- The Stellar IMF, Core Mass Function, & The Last-Crossing Distribution
- The Origin of Massive Stars: The Inertial-Inflow Model
- Dynamics of cluster-forming hub-filament systems: The case of the high-mass star-forming complex Monoceros R2
- Near-Infrared Imaging Polarimetry Toward Serpens South: Revealing the Importance of the Magnetic Field
- Filamentary Fragmentation and Accretion in High-Mass Star-Forming Molecular Clouds
- CARMA Large Area Star Formation Survey: Observational Analysis of Filaments in the Serpens South Molecular Cloud
- ATOMS: ALMA Three-millimeter Observations of Massive Star-forming regions -- I. Survey description and a first look at G9.62+0.19
- On the relation between the column density structures and the magnetic field orientation in the Vela C molecular complex
- Filamentary Accretion Flows in the Infrared Dark Cloud G14.225-0.506 Revealed by ALMA
- ATOMS: ALMA Three-millimeter Observations of Massive Star-forming regions -- XI. From inflow to infall in hub-filament systems
- The stellar IMF from Isothermal MHD Turbulence
- Gravity, Magnetic Field, and Turbulence: Relative Importance and Impact on Fragmentation in the Infrared Dark Cloud G34.43+00.24
- Alignment Between Protostellar Outflows and Filamentary Structure
- From parallel to perpendicular -- On the orientation of magnetic fields in molecular clouds
- Probing accretion of ambient cloud material into the Taurus B211/B213 filament
- Filament Fragmentation in High-Mass Star Formation
- Abundant cyanopolyynes as a probe of infall in the Serpens South cluster-forming region
- ATOMS: ALMA Three-millimeter Observations of Massive Star-forming regions -- XV. Steady Accretion from Global Collapse to Core Feeding in Massive Hub-filament System SDC335
- Morphology and Kinematics of Filaments in the Serpens and Perseus Molecular Clouds
- Velocity-coherent Filaments in NGC 1333: Evidence for Accretion Flow?
- Kinematic structure of massive star-forming regions - I. Accretion along filaments
- Molecular filament formation and filament-cloud interaction: Hints from Nobeyama 45m telescope observations
- Star formation laws in both Galactic massive clumps and external galaxies: An extensive study with dust continuum, HCN (4-3), and CS (7-6)
- Formation of the Hub-Filament System G33.92+0.11: Local Interplay between Gravity, Velocity, and Magnetic Field
- Far-infrared observations of a massive cluster forming in the Monoceros R2 filament hub
- The Serpens filament: at the onset of slightly supercritical collapse
- Star formation in the Sh 2-53 region influenced by accreting molecular filaments
- Rotating filament in Orion B: Do cores inherit their angular momentum from their parent filament?
- The Planck Cold Clump G108.37-01.06: A Site of Complex Interplay between H II Regions, Young Clusters and Filaments
- On the evolution of the observed Mass-to-Length relationship for star-forming filaments
- Emergence of high-mass stars in complex fiber networks (EMERGE) V. From filaments to spheroids: the origin of the hub-filament systems
- Relative alignment between gas structures and magnetic field in Orion A at different scales using different molecular gas tracers
- Independent Core Rotation in Massive Filaments in Orion
- Mapping gravity in stellar nurseries -- establishing the effectiveness of 2D acceleration maps