Effective viscosity from cloud-cloud collisions in three-dimensional global SPH simulations
arXiv:1201.2152 · doi:10.1111/j.1365-2966.2012.20465.x
Abstract
Analytic estimates of the viscous time-scale due to cloud-cloud collisions have been as high as thousands of Gyr. Consequently, cloud collisions are widely ignored as a source of viscosity in galactic disks. However, capturing the hydrodynamics of discs in simple analytic models is a challenge, both because of the wide dynamic range and importance of 2D and 3D effects. To test the validity of analytic models we present estimates for the viscous time-scale that are measured from three dimensional SPH simulations of disc formation and evolution. We have deliberately removed uncertainties associated with star-formation and feedback thereby enabling us to place lower bounds on the time-scale for this process. We also contrast collapse simulations with results from simulations of initially stable discs and examine the impact of numerical parameters and assumptions on our work, to constrain possible systematics in our estimates. We find that cloud-collision viscous time-scales are in the range of 0.6-16 Gyr, considerably shorter than previously estimated. This large discrepency can be understood in terms of how the efficiency of collisions is included in the analytical estimates. We find that the viscous time-scale only depends weakly on the number of clouds formed, and so while the viscous time-scale will increase with increasing resolution, this effect is too weak to alter our conclusions.
11 pages, accepted to MNRAS
References in corpus (18)
- Formation of Massive Galaxies at High Redshift: Cold Streams, Clumpy Disks and Compact Spheroids
- Star Formation and Feedback in Smoothed Particle Hydrodynamic Simulations--I. Isolated Galaxies
- Forming Disk Galaxies in Lambda CDM Simulations
- A primer on hierarchical galaxy formation: the semi-analytical approach
- Rapid formation of exponential disks and bulges at high redshift from the dynamical evolution of clump cluster and chain galaxies
- Simulating the formation of molecular clouds. I. Slow formation by gravitational collapse from static initial conditions
- Molecular Hydrogen and Global Star Formation Relations in Galaxies
- The role of stellar feedback in the formation of galaxies
- Star Formation in Disk Galaxies. I. Formation and Evolution of Giant Molecular Clouds via Gravitational Instability and Cloud Collisions
- Properties of gravitoturbulent accretion disks
- Large scale galactic turbulence: can self-gravity drive the observed HI velocity dispersions?
- The Blueshifting and Baldwin effects for the [OIII] 5007 Emission Line in Type 1 Active Galactic Nuclei
- Physical viscosity in smoothed particle hydrodynamics simulations of galaxy clusters
- Cloud and Star Formation in Disk Galaxy Models with Feedback
- An N-body/SPH Study of Isolated Galaxy Mass Density Profiles
- Simulations of spiral galaxies with an active potential: molecular cloud formation and gas dynamics
- The Formation of Polar Disk Galaxies
- High-resolution simulations of clump-clump collisions using SPH with Particle Splitting
Cited by in corpus (7)
- A simple and accurate approximation for the Q stability parameter in multi-component and realistically thick discs
- A Comparative Study of AGN Feedback Algorithms
- AGN Feedback models: Correlations with star formation and observational implications of time evolution
- Testing Hydrodynamics Schemes in Galaxy Disc Simulations
- Accretion Disc Particle Accretion in Major Merger Simulations
- WISDOM Project XII. Clump properties and turbulence regulated by clump-clump collisions in the dwarf galaxy NGC404
- Cloud angular momentum and effective viscosity in global SPH simulations with feedback