Core Mass Function: The Role of Gravity
arXiv:0801.2257 · doi:10.1086/588608
Abstract
We analyze the mass distribution of cores formed in an isothermal, magnetized, turbulent, and self-gravitating nearly critical molecular cloud model. Cores are identified at two density threshold levels. Our main results are that the presence of self-gravity modifies the slopes of the core mass function (CMF) at the high mass end. At low thresholds, the slope is shallower than the one predicted by pure turbulent fragmentation. The shallowness of the slope is due to the effects of core coalescence and gas accretion. Most importantly, the slope of the CMF at the high mass end steepens when cores are selected at higher density thresholds, or alternatively, if the CMF is fitted with a log-normal function, the width of the lognormal distribution decreases with increasing threshold. This is due to the fact that gravity plays a more important role in denser structures selected at higher density threshold and leads to the conclusion that the role of gravity is essential in generating a CMF that bears more resemblance with the IMF when cores are selected with an increasing density threshold in the observations.
13 pages, 4 figures, accepted to ApJ Letters. An additional simulation has been added. The sign of the beta values in Fig. 1 changed to fit their definition in the text. The main conclusions, however unchanged, are better clarified
References in corpus (13)
- Bolocam Survey for 1.1 mm Dust Continuum Emission in the c2d Legacy Clouds. II. Ophiuchus
- The Large and Small Scale Structures of Dust in the Star-Forming Perseus Molecular Cloud
- A SCUBA survey of Orion, the low-mass end of the core mass function
- Cooling, Gravity and Geometry: Flow-driven Massive Core Formation
- Large Area Mapping at 850 Microns. V. Analysis of the Clump Distribution in the Orion A South Molecular Cloud
- The Origin of the Arches Stellar Cluster Mass Function
- The relationship between the prestellar core mass function and the stellar initial mass function
- High Mass Star Formation. III. The Functional Form of the Submillimeter Clump Mass Function
- Massive Clumps in the NGC 6334 Star Forming Region
- Massive Quiescent Cores in Orion. -- II. Core Mass Function
- Star formation in the Vela Molecular Ridge. Large scale mapping of cloud D in the mm continuum
- The Formation and Evolution of Prestellar Cores
- Primordial Mass Segregation in Starburst Stellar Clusters
Cited by in corpus (5)
- Analytical theory for the initial mass function: CO clumps and prestellar cores
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- The Fractal Density Structure in Supersonic Isothermal Turbulence: Solenoidal versus Compressive Energy Injection
- GMC formation by agglomeration and self gravity
- Fragmentation of Shocked Flows: Gravity, Turbulence and Cooling