Less wrong: a more realistic initial condition for simulations of turbulent molecular clouds
arXiv:2110.14816 · doi:10.1093/mnras/stab3739
Abstract
Simulations of isolated giant molecular clouds (GMCs) are an important tool for studying the dynamics of star formation, but their turbulent initial conditions (ICs) are uncertain. Most simulations have either initialized a velocity field with a prescribed power spectrum on a smooth density field (failing to model the full structure of turbulence) or "stirred" turbulence with periodic boundary conditions (which may not model real GMC boundary conditions). We develop and test a new GMC simulation setup (called TURBSPHERE) that combines advantages of both approaches: we continuously stir an isolated cloud to model the energy cascade from larger scales, and use a static potential to confine the gas. The resulting cloud and surrounding envelope achieve a quasi-equilibrium state with the desired hallmarks of supersonic ISM turbulence (e.g. density PDF and a velocity power spectrum), whose bulk properties can be tuned as desired. We use the final stirred state as initial conditions for star formation simulations with self-gravity, both with and without continued driving and protostellar jet feedback, respectively. We then disentangle the respective effects of the turbulent cascade, simulation geometry, external driving, and gravity/MHD boundary conditions on the resulting star formation. Without external driving, the new setup obtains results similar to previous simple spherical cloud setups, but external driving can suppress star formation considerably in the new setup. Periodic box simulations with the same dimensions and turbulence parameters form stars significantly slower, highlighting the importance of boundary conditions and the presence or absence of a global collapse mode in the results of star formation calculations.
Submitted to MNRAS. 11 pages, 8 figures. See http://www.starforge.space/turbsphere_sigma_gas.mp4 for an animated version of Figure 2
References in corpus (65)
- On the variation of the Initial Mass Function
- The cosmological simulation code GADGET-2
- Theory of Star Formation
- Control of star formation by supersonic turbulence
- GIZMO: A New Class of Accurate, Mesh-Free Hydrodynamic Simulation Methods
- A General Theory of Turbulence-Regulated Star Formation, From Spirals to ULIRGs
- The Formation of a Star Cluster: Predicting the Properties of Stars and Brown Dwarfs
- The Star Formation Rate of Turbulent Magnetized Clouds: Comparing Theory, Simulations, and Observations
- Theoretical Challenges in Galaxy Formation
- Competitive accretion in embedded stellar cluster
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- Towards a complete accounting of energy and momentum from stellar feedback in galaxy formation simulations
- The hierarchical formation of a stellar cluster
- Gravitational Collapse in Turbulent Molecular Clouds. I. Gasdynamical Turbulence
- The Effects of Radiative Transfer on Low-Mass Star Formation
- The Structure of the Interstellar Medium of Star Forming Galaxies
- Star Formation in Disk Galaxies. I. Formation and Evolution of Giant Molecular Clouds via Gravitational Instability and Cloud Collisions
- Inefficient star formation through turbulence, magnetic fields and feedback
- Protostellar Turbulence Driven by Collimated Outflows
- The impact of magnetic fields on single and binary star formation
- Supernova Driving. I. The Origin of Molecular Cloud Turbulence
- Limiting Accretion onto Massive Stars by Fragmentation-Induced Starvation
- Radiation-Hydrodynamic Simulations of the Formation of Orion-Like Star Clusters II. The Initial Mass Function from Winds, Turbulence, and Radiation
- Importance of the Initial Conditions for Star Formation - I. Cloud Evolution and Morphology
- STARFORGE: Toward a comprehensive numerical model of star cluster formation and feedback
- The Exciting Lives of Giant Molecular Clouds
- Modeling jet and outflow feedback during star cluster formation
- Accurate, Meshless Methods for Magneto-Hydrodynamics
- The effect of magnetic fields on star cluster formation
- Star formation and molecular hydrogen in dwarf galaxies: a non-equilibrium view
- The Formation of Self-Gravitating Cores in Turbulent Magnetized Clouds
- Turbulent Molecular Cloud Cores: Rotational Properties
- GMC formation by agglomeration and self gravity
- Radiation-Hydrodynamic Simulations of Massive Star Formation with Protostellar Outflows
- An Unstable Truth: How Massive Stars get their Mass
- Star Cluster Formation in Turbulent, Magnetized Dense Clumps with Radiative and Outflow Feedback
- Driven and Decaying Turbulence Simulations of Low-Mass Star Formation: From Clumps to Cores to Protostars
- The Power Spectrum of Supersonic Turbulence in Perseus
- A Constrained-Gradient Method to Control Divergence Errors in Numerical MHD
- Interstellar Turbulence: II. Energy Spectra of Molecular Regions in the Outer Galaxy
- An Excursion-Set Model for the Structure of GMCs and the ISM
- The Role of Magnetic Fields in Protostellar Outflows and Star Formation
- Impact of Protostellar Outflows on Turbulence and Star Formation Efficiency in Magnetized Dense Cores
- Feedback Effects on Low-Mass Star Formation
- Gravitational contraction versus Supernova driving and the origin of the velocity dispersion-size relation in molecular clouds
- Star Formation in Self-Gravitating Turbulent Fluids
- Structure Function Scaling in the Taurus and Perseus Molecular Cloud Complexes
- STARFORGE: The effects of protostellar outflows on the IMF
- The Effects of Magnetic Fields and Protostellar Feedback on Low-mass Cluster Formation
- GMC Collisions as Triggers of Star Formation. III. Density and Magnetically Regulated Star Formation
- Live Fast, Die Young: GMC lifetimes in the FIRE cosmological simulations of Milky Way-mass galaxies
- Time Varying Dynamical Star Formation Rate
- The Role of Outflows, Radiation Pressure, and Magnetic Fields in Massive Star Formation
- Stellar mass spectrum within massive collapsing clumps I. Influence of the initial conditions
- From the Top Down and Back Up Again: Star Cluster Structure from Hierarchical Star Formation
- Collapse in Self-gravitating Turbulent Fluids
- Evolution of giant molecular clouds across cosmic time
- Massive Star Formation via the Collapse of Subvirial and Virialized Turbulent Massive Cores
- The IMF and multiplicity of stars from gravity, turbulence, magnetic fields, radiation and outflow feedback
- Can magnetized turbulence set the mass scale of stars?
- Flipping-up the field: gravitational feedback as a mechanism for young clusters dispersal
- Are turbulent spheres suitable initial conditions for star-forming clouds?
- Recent progress in simulating galaxy formation from the largest to the smallest scales
- Accelerating self-gravitating hydrodynamics simulations with adaptive force updates
- Density PDFs of Super-Sonic Turbulence
Cited by in corpus (3)
- Effects of the environment and feedback physics on the initial mass function of stars in the STARFORGE simulations
- Infrared Radiation Feedback Does Not Regulate Star Cluster Formation
- How magnetic field and stellar radiative feedback influences the collapse and the stellar mass spectrum of a massive star forming clump