Chains of dense cores in the Taurus L1495/B213 complex
arXiv:1412.1083 · doi:10.1051/0004-6361/201424576
Abstract
(Abridged) We study the kinematics of the dense gas in the Taurus L1495/B213 filamentary region to investigate the mechanism of core formation. We use observations of N2H+(1-0) and C18O(2-1) carried out with the IRAM 30m telescope. We find that the dense cores in L1495/B213 are significantly clustered in linear chain-like groups about 0.5pc long. The internal motions in these chains are mostly subsonic and the velocity is continuous, indicating that turbulence dissipation in the cloud has occurred at the scale of the chains and not at the smaller scale of the individual cores. The chains also present an approximately constant abundance of N2H+ and radial intensity profiles that can be modeled with a density law that follows a softened power law. A simple analysis of the spacing between the cores using an isothermal cylinder model indicates that the cores have likely formed by gravitational fragmentation of velocity-coherent filaments. Combining our analysis of the cores with our previous study of the large-scale C18O emission from the cloud, we propose a two-step scenario of core formation in L1495/B213. In this scenario, named "fray and fragment," L1495/B213 originated from the supersonic collision of two flows. The collision produced a network of intertwined subsonic filaments or fibers ("fray" step). Some of these fibers accumulated enough mass to become gravitationally unstable and fragment into chains of closely-spaced cores. This scenario may also apply to other regions of star formation.
17 pages, 12 figures. Accepted for publication in Astronomy & Astrophysics
References in corpus (6)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- Filamentary structure of star-forming complexes
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- Cooling, Gravity and Geometry: Flow-driven Massive Core Formation
- The On The Fly Imaging Technique
- Shells, jets, and internal working surfaces in the molecular outflow from IRAS 04166+2706
Cited by in corpus (16)
- The Green Bank Ammonia Survey: Dense Cores Under Pressure in Orion A
- Investigating the structure and fragmentation of a highly filamentary IRDC
- Interstellar filaments and star formation
- Large-scale periodic velocity oscillation in the filamentary cloud G350.54+0.69
- Multiplicity and clustering in Taurus star-forming region. I. Unexpected ultra-wide pairs of high-order multiplicity in Taurus
- Are fibres in molecular cloud filaments real objects?
- Magnetized interstellar molecular clouds: II. The Large-Scale Structure and Dynamics of Filamentary Molecular Clouds
- The fragmentation and stability of hierarchical structure in Serpens South
- Temperature structure and kinematics of the IRDC G035.39-00.33
- Connecting the Scales: Large Area High-resolution Ammonia Mapping of NGC 1333
- Star-forming filament models
- Determining the presence of characteristic fragmentation length-scales in filaments
- Multicomponent kinematics in a massive filamentary IRDC
- Understanding formation of young, distributed low-mass stars and clusters in the W4 cloud complex
- A centrally concentrated sub-solar mass starless core in the Taurus L1495 filamentary complex
- The physical environment around IRAS 17599-2148: infrared dark cloud and bipolar nebula