Prestellar Cores in Turbulent Clouds: Numerical Modeling and Evolution to Collapse
arXiv:2411.07349 · doi:10.3847/1538-4357/add477
Abstract
A fundamental issue in star formation is understanding the precise mechanisms leading to the formation of prestellar cores, and their subsequent gravitationally unstable evolution. To address this question, we carefully construct a suite of turbulent, self-gravitating numerical simulations, and analyze the development and collapse of individual prestellar cores. We show that the numerical requirements for resolving the sonic scale and internal structure of anticipated cores are essentially the same in self-gravitating clouds, calling for the number of cells per dimension to increase quadratically with the cloud's Mach number. In our simulations, we follow evolution of individual cores by tracking the region around each gravitational potential minimum over time. Evolution in nascent cores is towards increasing density and decreasing turbulence, and there is a wide range of critical density for initiating collapse. At given spatial scale the turbulence level also varies widely, and tends to be correlated with density. By directly measuring the radial forces acting within cores, we identify a distinct transition to a state of gravitational runaway. We use our new theory for turbulent equilibrium spheres to predict the onset of each core's collapse. Instability is expected when the critical radius becomes smaller than the tidal radius; we find good agreement with the simulations. Interestingly, the imbalance between gravity and opposing forces is only during core collapse, meaning that this is a quasi-equilibrium rather than a free-fall process. For most of their evolution, cores exhibit both subsonic contraction and transonic turbulence inherited from core-building flows; supersonic radial velocities accelerated by gravity only appear near the end of the collapse.
36 pages, 19 figures, accepted for publication in ApJ; replaced with the accepted version
References in corpus (65)
- Theory of Star Formation
- The Spitzer c2d Legacy Results: Star Formation Rates and Efficiencies; Evolution and Lifetimes
- Cold Dark Clouds: The Initial Conditions for Star Formation
- Comparing the statistics of interstellar turbulence in simulations and observations: Solenoidal versus compressive turbulence forcing
- Re-examining Larson's Scaling Relationships in Galactic Molecular Clouds
- The Statistics of Supersonic Isothermal Turbulence
- Analytical theory for the initial mass function: CO clumps and prestellar cores
- The Athena++ Adaptive Mesh Refinement Framework: Design and Magnetohydrodynamic Solvers
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- The Universality of Turbulence in Galactic Molecular Clouds
- Turbulent molecular clouds
- A new Jeans resolution criterion for (M)HD simulations of self-gravitating gas: Application to magnetic field amplification by gravity-driven turbulence
- The relation between gas and dust in the Taurus Molecular Cloud
- A Survey for Infall Motions toward Starless Cores. II. and Mapping Observations
- A Uniform Catalog of Molecular Clouds in the Milky Way
- On the nature of star-forming filaments: I. Filament morphologies
- The Stellar IMF, Core Mass Function, & The Last-Crossing Distribution
- Accurate, Meshless Methods for Magneto-Hydrodynamics
- The Origin of Massive Stars: The Inertial-Inflow Model
- The Lifetimes and Evolution of Molecular Cloud Cores
- The sonic scale revealed by the world's largest supersonic turbulence simulation
- First results from SMAUG: Characterization of Multiphase Galactic Outflows from a Suite of Local Star-Forming Galactic Disk Simulations
- Density Power Spectrum of Compressible Hydrodynamic Turbulent Flows
- Star Formation Efficiency and Dispersal of Giant Molecular Clouds with UV Radiation Feedback: Dependence on Gravitational Boundedness and Magnetic Fields
- The dynamics of collapsing cores and star formation
- Formation of Magnetized Prestellar Cores with Ambipolar Diffusion and Turbulence
- Adiabatic Heating of Contracting Turbulent Fluids
- Dense core formation in supersonic turbulent converging flows
- Density Probability Distribution Functions in Supersonic Hydrodynamic and MHD Turbulence
- Dissipation and Heating in Supersonic Hydrodynamic and MHD Turbulence
- Star Formation in Self-Gravitating Turbulent Fluids
- Effects of the environment and feedback physics on the initial mass function of stars in the STARFORGE simulations
- Protostellar Collapse Induced by Compression
- Implementation of Sink Particles in the Athena Code
- Anisotropic Formation of Magnetized Cores in Turbulent Clouds
- Protostar Formation in Supersonic Flows: Growth and Collapse of Spherical Cores
- The effect of a finite mass reservoir on the collapse of spherical isothermal clouds and the evolution of protostellar accretion
- Centrally Condensed Collapse of Starless Cores
- Self-gravitating Filament Formation from Shocked Flows: Velocity Gradients across Filaments
- Collapse in Self-gravitating Turbulent Fluids
- Formation and Collapse of Quiescent Cloud Cores Induced by Dynamic Compressions
- Prestellar Core Formation, Evolution, and Accretion from Gravitational Fragmentation in Turbulent Converging Flows
- The FRIGG project: From intermediate galactic scales to self-gravitating cores
- The AMANOGAWA-2SB Galactic Plane Survey I: Data on the Galactic Equator
- Turbulence, Coherence and Collapse: Three Phases for Core Evolution
- The Probability Distribution of Density Fluctuations in Supersonic Turbulence
- Geometry, Kinematics, and Magnetization of Simulated Prestellar Cores
- Mach number study of supersonic turbulence: The properties of the density field
- 3D shape explains star formation mystery of California and Orion A
- The Athena++ Adaptive Mesh Refinement Framework: Multigrid Solvers for Self-Gravity
- The Inevitable Future of the Starless Core Barnard 68
- Cloud Properties and Correlations with Star Formation in Numerical Simulations of the Three-Phase ISM
- Transition from Coherent Cores to Surrounding Cloud in L1688
- High Accretion Rate during Class 0 Phase due to External Trigger
- The highly variable time evolution of star-forming cores identified with dendrograms
- Dense Regions in Supersonic Isothermal Turbulence
- Contraction Signatures Toward Dense Cores in the Perseus Molecular Cloud
- G-virial: Gravity-based structure analysis of molecular clouds
- Turbulence in Zeeman Measurements from Molecular Clouds
- Mapping the HD and NH emission towards prestellar cores. Testing dynamical models of the collapse using gas tracers
- Collapsing Molecular Clouds with Tracer Particles: Part I, What Collapses?
- Reconstructing the genesis of a globular cluster system at a look-back time of 9.1 Gyr with the JWST
- Finite shock model of density in supersonic turbulence
- Theory of Turbulent Equilibrium Spheres with Power-Law Linewidth-Size Relation
- Structure of iso-density sets in supersonic isothermal turbulence