The Nature of the Dense Core Population in the Pipe Nebula: Thermal Cores Under Pressure
arXiv:0709.1164 · doi:10.1086/523837
Abstract
In this paper we present the results of a systematic investigation of an entire population of starless dust cores within a single molecular cloud. Analysis of extinction data shows the cores to be dense objects characterized by a narrow range of density. Analysis of C18O and NH3 molecular-line observations reveals very narrow lines. The non-thermal velocity dispersions measured in both these tracers are found to be subsonic for the large majority of the cores and show no correlation with core mass (or size). Thermal pressure is thus the dominate source of internal gas pressure and support for most of the core population. The total internal gas pressures of the cores are found to be roughly independent of core mass over the entire range of the core mass function (CMF) indicating that the cores are in pressure equilibrium with an external source of pressure. This external pressure is most likely provided by the weight of the surrounding Pipe cloud within which the cores are embedded. Most of the cores appear to be pressure confined, gravitationally unbound entities whose nature, structure and future evolution are determined by only a few physical factors which include self-gravity, the fundamental processes of thermal physics and the simple requirement of pressure equilibrium with the surrounding environment. The observed core properties likely constitute the initial conditions for star formation in dense gas. The entire core population is found to be characterized by a single critical Bonnor-Ebert mass. This mass coincides with the characteristic mass of the Pipe CMF indicating that most cores formed in the cloud are near critical stability. This suggests that the mass function of cores (and the IMF) has its origin in the physical process of thermal fragmentation in a pressurized medium.
To appear in the Astrophysical Journal
References in corpus (5)
- The Nature of the Dense Core Population in the Pipe Nebula: Thermal Cores Under Pressure
- A Large Scale Survey of NGC1333
- The Spitzer c2d Survey of Nearby Dense Cores: IV. Revealing the Embedded Cluster in B59
- The Dynamical State fo the Starless Dense Core FeSt 1-457: A Pulsating Globule?
- Ambipolar Diffusion in Molecular Cloud Cores and the Gravomagneto Catastrophe
Cited by in corpus (18)
- Structural Analysis of Molecular Clouds: Dendrograms
- The Mass Distribution and Lifetime of Prestellar Cores in Perseus, Serpens, and Ophiuchus
- Can Supermassive Black Holes Form in Metal-Enriched High-Redshift Protogalaxies ?
- The Nature of the Dense Core Population in the Pipe Nebula: Thermal Cores Under Pressure
- Magnetically Regulated Star Formation in 3D: The Case of Taurus Molecular Cloud Complex
- The Different Structures of the Two Classes of Starless Cores
- Optical polarimetry toward the Pipe nebula: Revealing the importance of the magnetic field
- On the Constancy of the Characteristic Mass of Young Stars
- iVINE - Ionization in the parallel tree/SPH code VINE: First results on the observed age-spread around O-stars
- The nature of the dense core population in the Pipe Nebula: A survey of NH3, CCS, and HC5N molecular line emission
- The structure of molecular clouds and the universality of the clump mass function
- Protostar Formation in Supersonic Flows: Growth and Collapse of Spherical Cores
- Stellar contents and star formation in the young open cluster Stock 8
- On the Evolution of the Dense Core Mass Function
- Protostar Mass Due to Infall and Dispersal
- On the fidelity of the core mass functions derived from dust column density data
- Spitzer Observations of L429: A Near-collapse or Collapsing Starless Core
- Molecular Tracers of Embedded Star Formation in Ophiuchus