An Evolutionary Model for Collapsing Molecular Clouds and Their Star Formation Activity
arXiv:1105.4777 · doi:10.1088/0004-637X/751/1/77
Abstract
We present an idealized, semi-empirical model for the evolution of gravitationally contracting molecular clouds (MCs) and their star formation rate (SFR) and efficiency (SFE). The model assumes that the instantaneous SFR is given by the mass above a certain density threshold divided by its free-fall time. The instantaneous number of massive stars is computed assuming a Kroupa IMF. These stars feed back on the cloud through ionizing radiation, eroding it. The main controlling parameter of the evolution turns out to be the maximum cloud mass, $\Mmax$. This allows us to compare various properties of the model clouds against their observational counterparts. A giant molecular cloud (GMC) model ($\Mmax \sim 10^5 \Msun$) adheres very well to the evolutionary scenario recently inferred by Kawamura et al. (2009) for GMCs in the Large Magellanic Cloud. A model cloud with $\Mmax \approx 2000 \Msun$ evolves in the Kennicutt-Schmidt diagram first passing through the locus of typical low- to-intermediate mass star-forming clouds, and then moving towards the locus of high-mass star-forming ones over the course of Myr. Also, the stellar age histograms for this cloud a few Myr before its destruction agree very well with those observed in the -Oph stellar association, whose parent cloud has a similar mass, and imply that the SFR of the clouds increases with time. Our model thus agrees well with various observed properties of star-forming MCs, suggesting that the scenario of gravitationally collapsing MCs, with their SFR regulated by stellar feedback, is entirely feasible and in agreement with key observed properties of molecular clouds.
Version accepted for publication in ApJ. At referee's suggestion, includes comparison with numerical models in addition to comparison with observational data
References in corpus (20)
- Theory of Star Formation
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- On the Density Distribution in Star-forming Interstellar Clouds
- Magnetic Fields in Dark Cloud Cores: Arecibo OH Zeeman Observations
- The Birth of Molecular Clouds: Formation of Atomic Precursors in Colliding Flows
- The Global Evolution of Giant Molecular Clouds. I: Model Formulation and Quasi-Equilibrium Behavior
- Gravity or turbulence? II. Evolving column density PDFs in molecular clouds
- On the Structure of the Orion A Cloud and the Formation of the Orion Nebula Cluster
- Molecular Cloud Evolution IV: Magnetic Fields, Ambipolar Diffusion, and the Star Formation Efficiency
- Rapid Molecular Cloud and Star Formation: Mechanisms and Movies
- The Global Evolution of Giant Molecular Clouds II: The Role of Accretion
- Modes of Star Formation in Finite Molecular Clouds
- Rapid Star Formation and Global Gravitational Collapse
- Probing the formation of intermediate- to high-mass stars in protoclusters II. Comparison between millimeter interferometric observations of NGC 2264-C and SPH simulations of a collapsing clump
- The Nature of the Velocity Field in Molecular Clouds. I. The Non-Magnetic Case
- Star formation efficiency as a function of metallicity: from star clusters to galaxies
- Supersonic turbulence in shock-bound interaction zones I: symmetric settings
- Statistics of Core Lifetimes in Numerical Simulations of Turbulent, Magnetically Supercritical Molecular Clouds
Cited by in corpus (56)
- Star Clusters Across Cosmic Time
- Global Hierarchical Collapse In Molecular Clouds. Towards a Comprehensive Scenario
- The Big Problems in Star Formation: the Star Formation Rate, Stellar Clustering, and the Initial Mass Function
- Fast and inefficient star formation due to short-lived molecular clouds and rapid feedback
- Star formation rates and efficiencies in the Galactic Centre
- Partially Ionized Plasmas in Astrophysics
- Superbubble dynamics in globular cluster infancy II. Consequences for secondary star formation in the context of self-enrichment via fast rotating massive stars
- The physical origin of long gas depletion times in galaxies
- The Physics of Star Cluster Formation and Evolution
- The Star Formation Rate in the Gravoturbulent Interstellar Medium
- PHIBSS2: survey design and z=0.5-0.8 results. Molecular gas reservoirs during the winding-down of star formation
- Analytical theory for the initial mass function: III time dependence and star formation rate
- A Model for the Onset of Self-gravitation and Star Formation in Molecular Gas Governed by Galactic Forces: I. Cloud-scale Gas Motions
- Molecular Cloud Evolution V. Cloud Destruction by Stellar Feedback
- A general theory for the lifetimes of giant molecular clouds under the influence of galactic dynamics
- Dense core properties in the Infrared Dark cloud G14.225-0.506 revealed by ALMA
- From diffuse gas to dense molecular cloud cores
- Short-lived radioisotopes in meteorites from Galactic-scale correlated star formation
- How do bound star clusters form?
- Time Varying Dynamical Star Formation Rate
- What sets the massive star formation rates and efficiencies of giant molecular clouds?
- Feedback regulated star formation: II. dual constraints on the SFE and the age spread of stars in massive clusters
- The Dependence of Star Formation Efficiency on Gas Surface Density
- An Evolutionary Model for Collapsing Molecular Clouds and Their Star Formation Activity. II. Mass Dependence of the Star Formation Rate
- Internal motions in OB-associations with Gaia DR2
- Feeding vs. Falling: The growth and collapse of molecular clouds in a turbulent interstellar medium
- Star cluster formation with stellar feedback and large-scale inflow
- Rapid Circumstellar Disk Evolution and an Accelerating Star Formation Rate in the Infrared Dark Cloud M17 SWex
- The Multi-phase Turbulence Density Power Spectra in the Perseus Molecular Cloud
- Energy budget of forming clumps in numerical simulations of collapsing clouds
- Young massive star cluster formation in the Galactic Centre is driven by global gravitational collapse of high-mass molecular clouds
- Structure and Expansion Law of HII Regions in structured Molecular Clouds
- The Density Distribution in Turbulent Bi-stable Flows
- Molecular Cloud Evolution VI. Measuring cloud ages
- Star Formation in a Turbulent Framework: From Giant Molecular Clouds to Protostars
- On the emergent System Mass Function: the contest between accretion and fragmentation
- The properties, origin and evolution of stellar clusters in galaxy simulations and observations
- The Accelerating Pace of Star Formation
- Simultaneous evolution of the virial parameter and star formation rate in molecular clumps undergoing global hierarchical collapse
- Galactic Cold Cores. VIII. Filament formation and evolution: Filament properties in context with evolutionary models
- Understanding formation of young, distributed low-mass stars and clusters in the W4 cloud complex
- Stellar Population Synthesis of star forming clumps in galaxy pairs and non-interacting spiral galaxies
- Formation of hub-filament structure triggered by cloud-cloud collision in W33 complex
- Modelling the structure of molecular clouds: I. A multi-scale energy equipartition
- Star formation in evolving molecular clouds
- The Interstellar Medium and Star Formation in Local Galaxies: Variations of the Star Formation Law in Simulations
- Testing assumptions and predictions of star-formation theories
- Playing with FIRE: A Galactic Feedback-Halting Experiment Challenges Star Formation Rate Theories
- Probing the Global Dust Properties and Cluster Formation Potential of the Giant Molecular Cloud G148.24+00.41
- Assessing the accuracy of the star formation rate measurements by direct star count in molecular clouds
- Gravity or turbulence? VII. The Schmidt-Kennicutt law, the star formation efficiency, and the mass density of clusters from gravitational collapse rather than turbulent support
- The turbulence driving parameter of molecular clouds in disc galaxies
- The feedback of massive stars on interstellar astrochemical processes
- Why most molecular clouds are gravitationally dominated
- Cluster Assembly in Hierarchically Collapsing Clouds
- Star Formation