The Jeans mass and the origin of the knee in the IMF
arXiv:astro-ph/0603444 · doi:10.1111/j.1365-2966.2006.10214.x
Abstract
We use numerical simulations of the fragmentation of a 1000 solar mass molecular cloud and the formation of a stellar cluster to study how the initial conditions for star formation affect the resulting initial mass function (IMF). In particular, we are interested in the relation between the thermal Jeans mass in a cloud and the knee of the initial mass function, i.e. the mass separating the region with a flat IMF slope from that typified by a steeper, Salpeter-like, slope. In three isothermal simulations with M_J=1 solar mass, M_J=2 solar masses and M_J=5 solar masses, the number of stars formed, at comparable dynamical times, scales roughly with the number of initial Jeans masses in the cloud. The mean stellar mass also increases (though less than linearly) with the initial Jeans mass in the cloud. It is found that the IMF in each case displays a prominent knee, located roughly at the mass scale of the initial Jeans mass. Thus clouds with higher initial Jeans masses produce IMFs which are shallow to higher masses. This implies that a universal IMF requires a physical mechanism that sets the Jeans mass to be near 1 solar mass. Simulations including a barotropic equation of state as suggested by Larson, with cooling at low densities followed by gentle heating at higher densities, are able to produce realistic IMFs with the knee located at approximately 1 solar mass, even with an initial M_J=5 solar masses. We therefore suggest that the observed universality of the IMF in the local Universe does not require any fine tuning of the initial conditions in star forming clouds but is instead imprinted by details of the cooling physics of the collapsing gas.
6 pages, 4 figures, MNRAS in press
Cited by in corpus (39)
- Theory of Star Formation
- Radiation-Hydrodynamic Simulations of Collapse and Fragmentation in Massive Protostellar Cores
- Star formation through gravitational collapse and competitive accretion
- A Minimum Column Density of 1 g cm^-2 for Massive Star Formation
- The Effects of Radiative Transfer on Low-Mass Star Formation
- The Importance of Radiative Feedback for the Stellar Initial Mass Function
- On the Rapid Collapse and Evolution of Molecular Clouds
- Gravitational fragmentation and the formation of brown dwarfs in stellar clusters
- Transition of the initial mass function in the metal-poor environments
- Driven and Decaying Turbulence Simulations of Low-Mass Star Formation: From Clumps to Cores to Protostars
- The statistical properties of stars and their dependence on metallicity: the effects of opacity
- Evidence for a Turnover in the IMF of Low Mass Stars and Sub-stellar Objects: Analysis from an Ensemble of Young Clusters
- On the Constancy of the Characteristic Mass of Young Stars
- VINE -- A numerical code for simulating astrophysical systems using particles I: Description of the physics and the numerical methods
- Impact of the cosmic background radiation on the initial mass function of metal-poor stars
- The Stellar Mass Spectrum in Warm and Dusty Gas: Deviations from Salpeter in the Galactic Centre and in Circum-Nuclear Starburst Regions
- The chemical enrichment of the ICM from hydrodynamical simulations
- The lower mass function of the young open cluster Blanco 1: from 30 Mjup to 3 Mo
- Bondi-Hoyle-Littleton accretion and the upper mass stellar IMF
- The star formation efficiency and its relation to variations in the initial mass function
- The low-mass Initial Mass Function in the young cluster NGC 6611
- Combining radiative transfer and diffuse interstellar medium physics to model star formation
- The low mass star and sub-stellar populations of the 25 Orionis group
- EDGE: The sensitivity of ultra-faint dwarfs to a metallicity-dependent initial mass function
- System IMF of the 25 Ori Group from Planetary-Mass Objects to Intermediate/High-Mass Stars
- Revisiting the universality of (multiple) star formation in present-day star formation regions
- The role of the turbulence driving mode for the Initial Mass Function
- On the emergent System Mass Function: the contest between accretion and fragmentation
- Insights from Simulations of Star Formation
- A Preferential Attachment Model for the Stellar Initial Mass Function
- Astrophysics in 2006
- Using binary statistics in Taurus-Auriga to distinguish between brown dwarf formation processes
- Lower mass normalization of the stellar initial mass function for dense massive early-type galaxies at z ~ 1.4
- Models for the Formation of Massive Stars
- Compact object populations over cosmic time II. Compact object merger rates and masses over redshift from varying initial conditions
- The impact of magnetic fields on the IMF in star-forming clouds near a supermassive black hole
- Stellar initial mass function in the 100-pc solar neighbourhood
- Formation of prestellar cores via non-isothermal gas fragmentation
- Compact object populations over cosmic time I. BOSSA: a Binary Object environment-Sensitive Sampling Algorithm