On the fragmentation of filaments in a molecular cloud simulation
arXiv:1711.01417 · doi:10.1051/0004-6361/201731836
Abstract
The fragmentation of filaments in molecular clouds has attracted a lot of attention as there seems to be a relation between the evolution of filaments and star formation. The study of the fragmentation process has been motivated by simple analytical models. However, only a few comprehensive studies have analysed the evolution of filaments using numerical simulations where the filaments form self-consistently as part of molecular clouds. We address the early evolution of pc-scale filaments that form within individual clouds. We focus on three questions: How do the line masses of filaments evolve? How and when do the filaments fragment? How does the fragmentation relate to the line masses of the filaments? We examine three simulated molecular clouds formed in kpc-scale numerical simulations performed with the FLASH code. We compare the properties of the identified filaments with the predictions of analytic filament stability models. The line masses and mass fraction enclosed in the identified filaments increase continuously after the onset of self-gravity. The first fragments appear early when the line masses lie well below the critical line mass of Ostriker's hydrostatic equilibrium solution. The average line masses of filaments identified in 3D density cubes increases far more quickly than those identified in 2D column density maps. Our results suggest that hydrostatic or dynamic compression from the surrounding cloud has a significant impact on the early dynamical evolution of filaments. A simple model of an isolated, isothermal cylinder may not provide a good approach for fragmentation analysis. Caution must be exercised in interpreting distributions of properties of filaments identified in column density maps, especially in the case of low-mass filaments. Comparing or combining results from studies that use different filament finding techniques is strongly discouraged.
16 pages, 17 figures, A&A, final version
References in corpus (13)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- A Spitzer Survey of Young Stellar Clusters within One Kiloparsec of the Sun: Cluster Core Extraction and Basic Structural Analysis
- Slow Star Formation in Dense Gas: Evidence and Implications
- Bolocam Survey for 1.1 mm Dust Continuum Emission in the c2d Legacy Clouds. II. Ophiuchus
- On the nature of star-forming filaments: I. Filament morphologies
- Vertical structure of a supernova-driven turbulent magnetized ISM
- Unfolding the Laws of Star Formation: The Density Distribution of Molecular Clouds
- Six Myths on the Virial Theorem for Interstellar Clouds
- A Census of Large-Scale ( 10 pc), Velocity-Coherent, Dense Filaments in the Northern Galactic Plane: Automated Identification Using Minimum Spanning Tree
- Investigating the structure and fragmentation of a highly filamentary IRDC
- Are fibres in molecular cloud filaments real objects?
- Internal and relative motions of the Taurus and Ophiuchus star-forming regions
- Fragmentation and Kinematics of dense molecular cores in the filamentary infrared-dark cloud G011.11-0.12
Cited by in corpus (20)
- Dynamics of cluster-forming hub-filament systems: The case of the high-mass star-forming complex Monoceros R2
- The CARMA-NRO Orion Survey: The filamentary structure as seen in CO emission
- Magnetized interstellar molecular clouds: II. The Large-Scale Structure and Dynamics of Filamentary Molecular Clouds
- Star formation from dense shocked regions in supersonic isothermal magneto-turbulence
- SEDIGISM: The kinematics of ATLASGAL filaments
- L1495 Revisited: A PPMAP View of a Star-Forming Filament
- Similar complex kinematics within two massive, filamentary infrared dark clouds
- Fragmentation and kinematics in high-mass star formation: CORE-extension targeting two very young high-mass star-forming regions
- Highly Embedded 8 micron Cores of Star Formation in the Spiral Arms and Filaments of 15 Nearby Disk Galaxies
- How do velocity structure functions trace gas dynamics in simulated molecular clouds?
- Merging Filaments I: A race against collapse
- On the evolution of the observed Mass-to-Length relationship for star-forming filaments
- Magnetic Fields and Fragmentation of Filaments in the Hub of California-X
- The isothermal evolution of a shock-filament interaction
- ANTIHEROES-PRODIGE: Quantifying the connection from envelope to disk with the IRAM 30m telescope and NOEMA I. Attack of the streamers: L1448N's fight for order in the chaos
- Decaying turbulence in molecular clouds: how does it affect filament networks and star formation?
- From theory to observation: understanding filamentary flows in high-mass star-forming clusters
- Molecular Clouds Associated with {H \small{II}} regions and Candidates within l = 106.65 to 109.50 and b = 1.85 to 0.95
- Unveiling Fiber Networks and Core Formation in the DR21 South Filament
- FIRESTORM I: Stellar Feedback and Gas Kinematics in the Evolved W40 Hub-Filament System