Clumpy and fractal shocks, and the generation of a velocity dispersion in molecular clouds
arXiv:astro-ph/0610720 · doi:10.1111/j.1365-2966.2006.11227.x
Abstract
We present an alternative explanation for the nature of turbulence in molecular clouds. Often associated with classical models of turbulence, we instead interpret the observed gas dynamics as random motions, induced when clumpy gas is subject to a shock. From simulations of shocks, we show that a supersonic velocity dispersion occurs in the shocked gas provided the initial distribution of gas is sufficiently non-uniform. We investigate the velocity size-scale relation for simulations of clumpy and fractal gas, and show that clumpy shocks can produce realistic velocity size-scale relations with mean . For a fractal distribution, with a fractal dimension of 2.2 similar to what is observed in the ISM, we find . The form of the velocity size-scale relation can be understood as due to mass loading, i.e. the post-shock velocity of the gas is determined by the amount of mass encountered as the gas enters the shock. We support this hypothesis with analytical calculations of the velocity dispersion relation for different initial distributions. A prediction of this model is that the line-of sight velocity dispersion should depend on the angle at which the shocked gas is viewed.
11 pages, 17 figures, accepted for publication in MNRAS
References in corpus (2)
Cited by in corpus (25)
- A Comparative Study of Giant Molecular Clouds in M51, M33 and the Large Magellanic Cloud
- Why are most molecular clouds not gravitationally bound?
- Turbulent Driving Scales in Molecular Clouds
- Rapid Molecular Cloud and Star Formation: Mechanisms and Movies
- GMC formation by agglomeration and self gravity
- How long does it take to form a molecular cloud?
- The frequency and nature of `cloud-cloud collisions' in galaxies
- A Model for the Onset of Self-gravitation and Star Formation in Molecular Gas Governed by Galactic Forces: I. Cloud-scale Gas Motions
- Simulations of spiral galaxies with an active potential: molecular cloud formation and gas dynamics
- Shocks, cooling and the origin of star formation rates in spiral galaxies
- Giant Molecular clouds: what are they made from, and how do they get there?
- Magnetic fields and the dynamics of spiral galaxies
- The simulation of molecular clouds formation in the Milky Way
- The scaling relations and star formation laws of ministarburst complexes
- The SAMI Galaxy Survey: Gas velocity dispersions in low- star-forming galaxies and the drivers of turbulence
- Shock generated vorticity in the interstellar medium and the origin of the stellar initial mass function
- Cloud Properties and Correlations with Star Formation in Numerical Simulations of the Three-Phase ISM
- Star Formation in Disks: Spiral Arms, Turbulence, and Triggering Mechanisms
- The Effects of Inhomogeneities within Colliding Flows on the Formation and Evolution of Molecular Clouds
- The organization of cloud-scale gas density structure: high resolution CO vs. 3.6 m brightness contrasts in nearby galaxies
- The SAMI Galaxy Survey: Bayesian Inference for Gas Disk Kinematics using a Hierarchical Gaussian Mixture Model
- Classifying and modelling spiral structures in hydrodynamic simulations of astrophysical discs
- Numerical Simulations of a Shock-Filament Interaction
- Clumpy shocks as the driver of velocity dispersion in molecular clouds: the effects of self-gravity and magnetic fields
- On the star formation rate and turbulent dissipation in galactic models