The Formation of Stellar Clusters: Gaussian Initial Conditions II
arXiv:astro-ph/0006016 · doi:10.1086/319053
Abstract
Using hydrodynamic simulations we investigate the time evolution and fragmentation of regions within molecular clouds which have lost their turbulent support leading to gravitational contraction. The initial density distributions are described by random Gaussian fluctuations with varying slopes x of the power spectrum P(k) ~ k^-x, covering the range from flat (x=0) to very steep spectra (x=3). We consider molecular cloud volumes containing different masses relative to the average Jeans mass M_J, from 1 M_J to 222 M_J. This parameter study extends the detailed analysis of systems with initially P(k) ~ k^-2 and mass 222 M_J presented by Klessen & Burkert (2000). The dynamical evolution of the simulated molecular cloud regions is insensitive to the slope of the initial density fluctuation spectrum. The system evolves into a complicated network of intersecting filaments and collapsing clumps leading to the formation of a compact cluster of accreting and interacting embedded protostellar cores. The cluster builds up as bound entity, but dissolves later due to collisional effects. In all simulations, the mass spectrum of collapsed cores is very broad, has approximately log-normal shape and peaks roughly at the average Jeans mass. This supports the hypothesis that the average Jeans mass is the main parameter determining the peak in the stellar spectrum, and suggests that the interplay between self-gravity on the one side and thermal and turbulent pressure on the other side is the dominant process that regulates the formation of stellar clusters.
29 pages including 6 resolution reduced figures, minor revisions, scheduled for publication in ApJ, volume 549, March 1. 2001 (full resolution version available at http://www.ucolick.org/~ralf/rsk-publications.html)
References in corpus (5)
- Star Formation in a Crossing Time
- Gravitational Collapse in Turbulent Molecular Clouds. I. Gasdynamical Turbulence
- Turbulent Flow-Driven Molecular Cloud Formation: A Solution to the Post-T Tauri Problem?
- Gravitational Collapse in Turbulent Molecular Clouds. II. Magnetohydrodynamical Turbulence
- Thermal Instability and the Formation of Clumpy Gas Clouds
Cited by in corpus (103)
- Embedded Clusters in Molecular Clouds
- Theory of Star Formation
- Control of star formation by supersonic turbulence
- Toward Understanding Massive Star Formation
- Interstellar Turbulence I: Observations and Processes
- The Formation of a Star Cluster: Predicting the Properties of Stars and Brown Dwarfs
- Slow Star Formation in Dense Gas: Evidence and Implications
- Rapid Formation of Molecular Clouds and Stars in the Solar Neighborhood
- Stellar, brown dwarf and multiple star properties from a radiation hydrodynamical simulation of star cluster formation
- Stellar, Brown Dwarf, and Multiple Star Properties from Hydrodynamical Simulations of Star Cluster Formation
- Massive star formation: Nurture, not nature
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- The Physics of Star Formation
- The Big Problems in Star Formation: the Star Formation Rate, Stellar Clustering, and the Initial Mass Function
- Gravitational fragmentation in turbulent primordial gas and the initial mass function of Population III stars
- The Importance of Radiative Feedback for the Stellar Initial Mass Function
- Early Evolution of Stellar Groups and Clusters: Environmental Effects on Forming Planetary Systems
- The Formation of Stellar Clusters: Mass Spectra from Turbulent Molecular Cloud Fragmentation
- Flows, Fragmentation, and Star Formation. I. Low-mass Stars in Taurus
- Simulating star formation in molecular cloud cores I. The influence of low levels of turbulence on fragmentation and multiplicity
- Limiting Accretion onto Massive Stars by Fragmentation-Induced Starvation
- Collapse, outflows and fragmentation of massive, turbulent and magnetized prestellar barotropic cores
- Collapse and Fragmentation in Finite Sheets
- The Effect of Gas Loss on the Formation of Bound Stellar Clusters
- The Stellar IMF, Core Mass Function, & The Last-Crossing Distribution
- A Holistic Scenario of Turbulent Molecular Cloud Evolution and Control of the Star Formation Efficiency. First Tests
- The early dynamical evolution of cool, clumpy star clusters
- On the Structure of the Orion A Cloud and the Formation of the Orion Nebula Cluster
- A General Theory of Turbulent Fragmentation
- Comments on Inferences of Star Formation Histories and Birthlines
- Quiescent and coherent cores from gravoturbulent fragmentation
- High- and Low-Mass Star Forming Regions from Hierarchical Gravitational Fragmentation. High local Star Formation Rates with Low Global Efficiencies
- Simulating star formation in molecular cores II. The effects of different levels of turbulence
- Hierarchical Cluster Assembly in Globally Collapsing Clouds
- The Physics of Star Cluster Formation and Evolution
- Dynamic cores in hydrostatic disguise
- Analysis of Clumps in Molecular Cloud Models: Mass Spectrum, Shapes, Alignment and Rotation
- Dynamical Masses of Young Star Clusters in NGC 4038/4039
- The Jeans mass and the origin of the knee in the IMF
- Driven and Decaying Turbulence Simulations of Low-Mass Star Formation: From Clumps to Cores to Protostars
- On the Constancy of the Characteristic Mass of Young Stars
- The dependence of star formation on initial conditions and molecular cloud structure
- Bondi-Hoyle Accretion in a Turbulent Medium
- Aspect Ratio Dependence of the Free-Fall Time for Non-Spherical Symmetries
- The Formation of Star Clusters I: 3D Simulations of Hydrodynamic Turbulence
- Importance of the Initial Conditions for Star Formation - II. Fragmentation Induced Starvation and Accretion Shielding
- Bondi Accretion in the Presence of Vorticity
- Physical Processes in Star Formation
- The dependence of the sub-stellar IMF on the initial conditions for star formation
- Protostellar mass accretion rates from gravoturbulent fragmentation
- The Formation of Star Clusters II: 3D Simulations of Magnetohydrodynamic Turbulence in Molecular Clouds
- Fragmentation and Evolution of Molecular Clouds. I: Algorithm and First Results
- The IMF of stellar clusters: effects of accretion and feedback
- The star formation efficiency and its relation to variations in the initial mass function
- Universal Scaling Relations in Scale-Free Structure Formation
- Protostellar Angular Momentum Evolution during Gravoturbulent Fragmentation
- The structure of self-gravitating clouds
- The first million years of the Sun: A calculation of formation and early evolution of a solar-mass star
- Star Cluster Survival in Star Cluster Complexes under Extreme Residual Gas Expulsion
- Diffusion in supersonic, turbulent, compressible flows
- High-resolution simulations of clump-clump collisions using SPH with Particle Splitting
- The Maximum Stellar Surface Density Due to the Failure of Stellar Feedback
- The FRIGG project: From intermediate galactic scales to self-gravitating cores
- The Formation of Stellar Clusters: Time Varying Protostellar Accretion Rates
- Hierarchical Stellar Structures in the Local Group Dwarf Galaxy NGC 6822
- MODEST-1: Integrating Stellar Evolution and Stellar Dynamics
- Star Formation in Molecular Clouds
- Modest-2: A Summary
- Supersonic Cloud Collision - I
- Massive Quiescent Cores in Orion. -- II. Core Mass Function
- Simulating star formation in molecular cloud cores IV. The role of turbulence and thermodynamics
- Merging time-scales of stellar sub-clumps in young star-forming regions
- Some Stars are Totally Metal: A New Mechanism Driving Dust Across Star-Forming Clouds, and Consequences for Planets, Stars, and Galaxies
- Angular Momentum and the Formation of Stars and Black Holes
- How fast is mass-segregation happening in hierarchical formed embedded star clusters?
- Star-forming filament models
- Stellar and substellar initial mass function: a model that implements gravoturbulent fragmentation and accretion
- Origin of the dense core mass function in contracting filaments
- The physics and modes of star cluster formation: simulations
- Insights from Simulations of Star Formation
- Competitive Accretion in Sheet Geometry and the Stellar IMF
- The TOP-SCOPE survey of PGCCs: PMO and SCUBA-2 observations of 64 PGCCs in the 2nd Galactic Quadrant
- Gravitational drag on a point mass in hypersonic motion within a Gaussian disk
- Unravelling the structure of magnetised molecular clouds with SILCC-Zoom: sheets, filaments and fragmentation
- The mean surface density of companions in a stellar-dynamical context
- On the evolution of the observed Mass-to-Length relationship for star-forming filaments
- Bipolar H{\sc ii} regions produced by cloud/cloud collisions
- Probing the initial conditions of high-mass star formation. III. Fragmentation and triggered star formation
- Shell instability of a collapsing dense core
- The Seahorse Nebula: New views of the filamentary infrared dark cloud G304.74+01.32 from SABOCA, Herschel, and WISE
- Multi-seeded multi-mode formation of embedded clusters in the RMC: Structured star formation toward the south-east boundary
- Hubble-Lemaître fragmentation and the path to equilibrium of merger-driven cluster formation
- ALMAGAL V. Relations between the core populations and the parent clump physical properties
- Touching the Stars: Using High-Resolution 3D Printing to Visualize Stellar Nurseries
- Modeling High-Mass Star Formation and Ultracompact HII Regions
- The Relative Importance of Thermal Gas, Radiation, and Magnetic Pressures Around Star-Forming Regions in Normal Galaxies and Dusty Starbursts
- Understanding the IMF
- Simulations of the IMF in Clusters
- Stars Form By Gravitational Collapse, Not Competitive Accretion
- Tidal Disruption of Protoclusters in Giant Molecular Clouds
- Empirical formulae to describe some physical properties of small groups of protogalaxies with multiplicity
- Star Formation from Turbulent Fragmentation
- Turbulent Structure of the Interstellar Medium