Gravitational contraction versus Supernova driving and the origin of the velocity dispersion-size relation in molecular clouds
arXiv:1511.05602 · doi:10.3847/0004-637X/824/1/41
Abstract
Molecular cloud observations show that clouds have non-thermal velocity dispersions that scale with the cloud size as at constant surface density, and for varying surface density scale with both the cloud`s size and surface density, . The energy source driving these chaotic motions remains poorly understood. We describe the velocity dispersions observed in a cloud population formed in a kiloparsec-scale numerical simulation of a magnetized, supernova-driven, self-gravitating, interstellar medium, including diffuse heating and radiative cooling. We compare the relationships between velocity dispersion, size, and surface density measured in the simulated cloud population to those found in observations of Galactic molecular clouds. We find that external supernova explosions can not drive turbulent motions of the observed magnitudes within dense clouds. On the other hand, self-gravity also induces non-thermal motions as gravitationally bound clouds begin to collapse in our model, and by doing so their internal velocity dispersions recover the observed relations. Energy conservation suggests that the observed behavior is consistent with the kinetic energy being proportional to the gravitational energy. However, the clouds in our model show no sign of reaching a stable equilibrium state at any time, even for strongly magnetized clouds. We conclude that gravitationally bound molecular clouds are always in a state of gravitational collapse and their properties are a natural result of this chaotic collapse. In order to agree with observed star formation efficiencies, this process must be terminated by the early destruction of the clouds, presumably from internal stellar feedback.
16 Pages, 10 Figures, 2 Animations. Accepted for publication in ApJ. For the animations go to: http://jibanezmejia.com/Gravity-vs-SN_paper.html
References in corpus (24)
- The Boston University-Five College Radio Astronomy Observatory Galactic Ring Survey
- The Critical Density and the Effective Excitation Density of Commonly Observed Molecular Dense Gas Tracers
- On the Star Formation Efficiency of Turbulent Magnetized Clouds
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- What is Driving the HI Velocity Dispersion?
- Turbulent Structure of a Stratified Supernova-Driven Interstellar Medium
- On the Density Distribution in Star-forming Interstellar Clouds
- Before the first supernova: combined effects of HII regions and winds on molecular clouds
- On the Rapid Collapse and Evolution of Molecular Clouds
- The Birth of Molecular Clouds: Formation of Atomic Precursors in Colliding Flows
- Modeling jet and outflow feedback during star cluster formation
- Dependence of Interstellar Turbulent Pressure on Supernova Rate
- Vertical structure of a supernova-driven turbulent magnetized ISM
- Modelling the supernova-driven ISM in different environments
- Rapid Molecular Cloud and Star Formation: Mechanisms and Movies
- Six Myths on the Virial Theorem for Interstellar Clouds
- Mutual influence of supernovae and molecular clouds
- The Generation and Dissipation of Interstellar Turbulence - Results from Large Scale High Resolution Simulations
- The Nature of the Velocity Field in Molecular Clouds. I. The Non-Magnetic Case
- Can Protostellar Jets Drive Supersonic Turbulence in Molecular Clouds?
- Discovery of New Interacting Supernova Remnants in the Inner Galaxy
- Time Varying Dynamical Star Formation Rate
- Tidal foces as a regulator of star formation in Taurus
- Kinematic and Thermal Structure at the onset of high-mass star formation
Cited by in corpus (76)
- Physical properties of molecular clouds for the entire Milky Way disk
- Global Hierarchical Collapse In Molecular Clouds. Towards a Comprehensive Scenario
- Cloud-Scale Molecular Gas Properties in 15 Nearby Galaxies
- The Origin of Massive Stars: The Inertial-Inflow Model
- Cooler and smoother -- the impact of cosmic rays on the phase structure of galactic outflows
- SILCC-Zoom: The dynamical and chemical evolution of molecular clouds
- The molecular cloud lifecycle
- Molecular Cloud Populations in the Context of Their Host Galaxy Environments: A Multiwavelength Perspective
- The Cloud Factory I: Generating resolved filamentary molecular clouds from galactic-scale forces
- A Model for the Onset of Self-gravitation and Star Formation in Molecular Gas Governed by Galactic Forces: I. Cloud-scale Gas Motions
- Tracing the formation of molecular clouds via [CII], [CI] and CO emission
- The dynamical evolution of molecular clouds near the Galactic Centre - II. Spatial structure and kinematics of simulated clouds
- A general theory for the lifetimes of giant molecular clouds under the influence of galactic dynamics
- The impact of stellar feedback on the density and velocity structure of the interstellar medium
- From diffuse gas to dense molecular cloud cores
- The SILCC project - V. The impact of magnetic fields on the chemistry and the formation of molecular clouds
- Massive 70 micron quiet clumps II: non-thermal motions driven by gravity in massive star formation?
- On the Appearance of Thresholds in the Dynamical Model of Star Formation
- The role of galactic dynamics in shaping the physical properties of giant molecular clouds in Milky Way-like galaxies
- Modelling of the Effects of Stellar Feedback during Star Cluster Formation Using a Hybrid Gas and N-Body Method
- Gravity or turbulence? IV. Collapsing cores in out-of-virial disguise
- Collisional N-Body Dynamics Coupled to Self-Gravitating Magnetohydrodynamics Reveals Dynamical Binary Formation
- Physical properties and scaling relations of molecular clouds: the effect of stellar feedback
- Is molecular cloud turbulence driven by external supernova explosions?
- Feeding vs. Falling: The growth and collapse of molecular clouds in a turbulent interstellar medium
- WISDOM Project -- IX Giant Molecular Clouds in the Lenticular Galaxy NGC4429: Effects of Shear and Tidal Forces on Clouds
- Isothermal Fragmentation: Is there a low-mass cut-off?
- Energy budget of forming clumps in numerical simulations of collapsing clouds
- The roles of stellar feedback and galactic environment in star forming molecular clouds
- A model for the onset of self-gravitation and star formation in molecular gas governed by galactic forces: II. the bottleneck to collapse set by cloud-environment decoupling
- Code Comparison in Galaxy Scale Simulations with Resolved Supernova Feedback: Lagrangian vs. Eulerian Methods
- Effect of the heating rate on the stability of the three-phase interstellar medium
- MHD simulation of the formation of clumps and filaments in quiescent diffuse medium by thermal instability
- Simulations of the star-forming molecular gas in an interacting M51-like galaxy: cloud population statistics
- On the fragmentation of filaments in a molecular cloud simulation
- A new mechanical stellar wind feedback model for the Rosette Nebula
- Fast methods for tracking grain coagulation and ionization. I. Analytic derivation
- Gravity Versus Magnetic Fields in Forming Molecular Clouds
- Molecular Cloud Evolution VI. Measuring cloud ages
- Less wrong: a more realistic initial condition for simulations of turbulent molecular clouds
- The organization of cloud-scale gas density structure: high resolution CO vs. 3.6 m brightness contrasts in nearby galaxies
- Density distribution function of a self-gravitating isothermal compressible turbulent fluid in the context of Molecular Clouds ensembles
- The Effect of Supernovae on the Turbulence and Dispersal of Molecular Clouds
- Kinematics of the molecular interstellar medium probed by Gaia: steep velocity dispersion-size relation, isotropic turbulence, and location-dependent energy dissipation
- How do velocity structure functions trace gas dynamics in simulated molecular clouds?
- Dense Regions in Supersonic Isothermal Turbulence
- 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
- The Catalogue for Astrophysical Turbulence Simulations (CATS)
- Constructing multi-scale gravitational energy spectra from molecular cloud surface density PDF -- Interplay between turbulence and gravity
- Fast Molecular Cloud Destruction Requires Fast Cloud Formation
- Probing the multi-scale interplay between gravity and turbulence - Power-law like gravitational energy spectra of the Orion Complex
- The impact of magnetic fields on the chemical evolution of the supernova-driven ISM
- Accretion driven turbulence in filaments I: Non-gravitational accretion
- Spatially associated clump populations in Rosette from CO and dust maps
- PHANGS-ALMA: Arcsecond CO(2-1) Imaging of Nearby Star-Forming Galaxies
- Dynamical cooling of galactic discs by molecular cloud collisions -- Origin of giant clumps in gas-rich galaxy discs
- Gas kinematics around filamentary structures in the Orion B cloud
- The Nature of Turbulence in the LITTLE THINGS Dwarf Irregular Galaxies
- Evolution of the angular momentum during gravitational fragmentation of molecular clouds
- High-resolution APEX/LAsMA CO and CO (3-2) observation of the G333 giant molecular cloud complex : II. Survival and gravitational collapse of dense gas structures under feedback
- Regulation of star formation by large scale gravito-turbulence
- Simulated observations of star formation regions: infrared evolution of globally collapsing clouds
- Density distribution function of a self-gravitating isothermal compressible turbulent fluid in the context of Molecular Clouds ensembles II: the contribution of the turbulent term and the potential of the outer shells
- The kinetic and magnetic energy budget of hub-filament systems during the gravitational fragmentation of molecular clouds
- The effect of tidal forces on the Jeans instability criterion in star-forming regions
- Turbulence and its connection to episodic accretion in binary YSOs
- Does slow and steady win the race? Investigating feedback processes in giant molecular clouds
- Unveiling the gravitationally unstable disc of a massive star-forming galaxy using NOEMA and MUSE
- The Hierarchical Dynamical State of Molecular Gas from 3 to 300 pc in NGC 253
- Shear-gravity transition determines the steep velocity dispersion-size relation in molecular clouds: confronting analytical formula with observations
- Centrally concentrated star formation in young clusters
- Stellar Feedback Effects on the Mass Distribution of Clouds and Cloud Complexes
- Statistical mass function of prestellar cores from the density distribution of their natal clouds
- Diffuse Hot Plasma in the Interstellar Medium and Galactic Outflows
- Why most molecular clouds are gravitationally dominated