On the Coagulation and Size Distribution of Pressure Confined Cores
arXiv:1304.0454 · doi:10.1088/0004-637X/769/1/23
Abstract
Observations of the Pipe Nebula have led to the discovery of dense starless cores. The mass of most cores is too small for their self gravity to hold them together. Instead, they are thought to be pressure confined. The observed dense cores' mass function (CMF) matches well with the initial mass function (IMF) of stars in young clusters. Similar CMF's are observed in other star forming regions such as the Aquila Nebula, albeit with some dispersion. The shape of these CMF provides important clues to the competing physical processes which lead to star formation and its feedback on the interstellar media. In this paper, we investigate the dynamical origin of the the mass function of starless cores which are confined by a warm, less dense medium. We consider the coagulation between the cold cores and their ablation due to Kelvin-Helmholtz instability induced by their relative motion through the warm medium. We are able to reproduce the observed CMF among the starless cores in the Pipe nebula. Our results indicate that in environment similar to the Pipe nebula: 1) before the onset of their gravitational collapse, the mass distribution of the progenitor cores is similar to that of the young stars, 2) the observed CMF is a robust consequence of dynamical equilibrium between the coagulation and ablation of cores, and 3) a break in the slope of the CMF is due to the enhancement of collisional cross section and suppression of ablation for cores with masses larger than the cores' Bonnor-Ebert mass.
Accepted by ApJ
References in corpus (10)
- Theory of Star Formation
- Slow Star Formation in Dense Gas: Evidence and Implications
- Analytical theory for the initial mass function: CO clumps and prestellar cores
- The Nature of the Dense Core Population in the Pipe Nebula: Thermal Cores Under Pressure
- 2MASS wide field extinction maps - I. The Pipe nebula
- Driven and Decaying Turbulence Simulations of Low-Mass Star Formation: From Clumps to Cores to Protostars
- Optical polarimetry toward the Pipe nebula: Revealing the importance of the magnetic field
- The Origin of the Arches Stellar Cluster Mass Function
- Core Mass Function: The Role of Gravity
- The role of theta Oph in the formation and evolution of the Pipe Nebula - is star formation ever isolated?
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- Massive stars reveal variations of the stellar initial mass function in the Milky Way stellar clusters
- Hydrodynamic Shielding and the Survival of Cold Streams
- MHD simulations of dense core collision
- On the IMF in a Triggered Star Formation Context