Filamentary condensations in a young cluster
arXiv:1105.0688 · doi:10.1088/0004-637X/735/2/82
Abstract
New models are presented for star-forming condensations in clusters. In each model, the condensation mass increases linearly with radius on small scales, and more rapidly on large scales, as in "thermal-nonthermal" models. Spherical condensations with this structure form protostars which match the IMF if their infall is subject to equally likely stopping. However such spherical models do not match the filamentary nature of cluster gas, and they are too extended to form protostars having high mass and short spacing. Two hybrid models are presented, which are spherical on small scales and filamentary on large scales. In and around clusters, cores embedded in linear filaments match the elongation of cluster gas, and the central concentration of low-mass stars. In cluster centers, condensations require a low volume filling factor to produce massive stars with short spacing. These may have stellate shape, where cores are nodes of filamentary networks, as seen in some simulations of colliding flows and of collapsing turbulent clumps. A dense configuration of such stellate condensations may be indistinguishable from a clump forming multiple protostars via filamentary flow paths.
accepted for publication in The Astrophysical Journal
References in corpus (13)
- From filamentary clouds to prestellar cores to the stellar IMF: Initial highlights from the Herschel Gould Belt survey
- A Spitzer Survey of Young Stellar Clusters within One Kiloparsec of the Sun: Cluster Core Extraction and Basic Structural Analysis
- Filamentary structure of star-forming complexes
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- Dynamical mass segregation on a very short timescale
- The Large and Small Scale Structures of Dust in the Star-Forming Perseus Molecular Cloud
- An Ammonia Spectral Atlas of Dense Cores in Perseus
- Limiting Accretion onto Massive Stars by Fragmentation-Induced Starvation
- The Spitzer Gould Belt Survey of Large Nearby Interstellar Clouds: Discovery of a Dense Embedded Cluster in the Serpens-Aquila Rift
- Young Stellar Groups and Their Most Massive Stars
- The Early Expansion of Cluster Cores
- A Large Scale Survey of NGC1333
- A SCUBA survey of L1689 - The dog that didn't bark
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- The Cloud Factory I: Generating resolved filamentary molecular clouds from galactic-scale forces
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- Filamentary Accretion Flows in the Infrared Dark Cloud G14.225-0.506 Revealed by ALMA
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- VLA observations of ammonia in high-mass star formation regions
- Line Profiles of Cores within Clusters: II Signatures of Dynamical Collapse during High Mass Star Formation
- Fragmentation in filamentary molecular clouds
- Understanding star formation in molecular clouds IV. Column density PDFs from quiescent to massive molecular clouds
- Cloud Structure of Galactic OB Cluster Forming Regions from Combining Ground and Space Based Bolometric Observations
- Two-level hierarchical fragmentation in the Orion Molecular Cloud 1 northern filament
- The Role of Turbulence and Magnetic Fields in Simulated Filamentary Structure
- Observational constraints on star cluster formation theory - I. The mass-radius relation
- Characterizing star cluster formation with WISE: 652 newly found star clusters and candidates
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- Star formation in dense clusters
- Dynamical histories of the IC348 and NGC1333 star-forming regions in Perseus
- External photoevaporation of protoplanetary discs: does location matter?
- On the fragmentation of filaments in a molecular cloud simulation
- The evolutionary tracks of young massive star clusters
- Filamentary Star Formation: Observing the Evolution toward Flattened Envelopes
- Filament Intersections and Cold Dense Cores in Orion A North
- The isothermal evolution of a shock-filament interaction
- Radiation Hydrodynamics Simulations of Spherical Protostellar Collapse for Very Low Mass Objects
- Decaying turbulence in molecular clouds: how does it affect filament networks and star formation?
- Clustered Star Formation: A Review
- Cloud G074.11+00.11: a stellar cluster in formation