Identification of a Fundamental Transition in a Turbulently-Supported Interstellar Medium
arXiv:1112.0317 · doi:10.1088/0004-637X/746/1/57
Abstract
The interstellar medium in star-forming galaxies is a multiphase gas in which turbulent support is at least as important as thermal pressure. Sustaining this configuration requires continuous radiative cooling, such that the overall average cooling rate matches the decay rate of turbulent energy into the medium. Here we carry out a set of numerical simulations of a stratified, turbulently stirred, radiatively cooled medium, which uncover a fundamental transition at a critical one-dimensional turbulent velocity of ~ 35 km/s. At turbulent velocities below ~35 km/s, corresponding to temperatures below 300,000 K, the medium is stable, as the time for gas to cool is roughly constant as a function of temperature. On the other hand, at turbulent velocities above the critical value, the gas is shocked into an unstable regime in which the cooling time increases strongly with temperature, meaning that a substantial fraction of the interstellar medium is unable to cool on a turbulent dissipation timescale. This naturally leads to runaway heating and ejection of gas from any stratified medium with a one-dimensional turbulent velocity above ~35 km/s, a result that has implications for galaxy evolution at all redshifts.
16 Pages, 11 figures, ApJ, in press
References in corpus (22)
- The effect of photo-ionization on the cooling rates of enriched, astrophysical plasmas
- The SINS survey of z~2 galaxy kinematics: properties of the giant star forming clumps
- From rings to bulges: evidence for rapid secular galaxy evolution at z~2 from integral field spectroscopy in the SINS survey
- The Statistics of Supersonic Isothermal Turbulence
- Maximally Star-Forming Galactic Disks I. Starburst Regulation Via Feedback-Driven Turbulence
- Turbulent Structure of a Stratified Supernova-Driven Interstellar Medium
- Uncertainties in H2 and HD Chemistry and Cooling and their Role in Early Structure Formation
- Dependence of Interstellar Turbulent Pressure on Supernova Rate
- High star formation rates as the origin of turbulence in early and modern disk galaxies
- Large scale galactic turbulence: can self-gravity drive the observed HI velocity dispersions?
- The Generation and Dissipation of Interstellar Turbulence - Results from Large Scale High Resolution Simulations
- GHASP : An Halpha kinematic survey of 203 spiral and irregular galaxies - VII. Revisiting the analysis of Halpha data cubes for 97 galaxies
- Intermittency and Universality in Fully-Developed Inviscid and Weakly-Compressible Turbulent Flows
- Density Probability Distribution Functions in Supersonic Hydrodynamic and MHD Turbulence
- Cloud and Star Formation in Disk Galaxy Models with Feedback
- Gemini GMOS/IFU spectroscopy of NGC 1569 - I: Mapping the properties of a young star cluster and its environment
- Mixing in Supersonic Turbulence
- Dynamical properties of a large young disk galaxy at z=2.03
- Three-Dimensional Simulations of Magnetized Superbubbles: New Insights into the Importance of MHD Effects on Observed Quantities
- Dissipative Structures in Supersonic Turbulence
- Formation of Compact Stellar Clusters by High-Redshift Galaxy Outflows I: Nonequillibrium Coolant Formation
- Passive Scalar Structures in Supersonic Turbulence
Cited by in corpus (9)
- Modelling the supernova-driven ISM in different environments
- The brighter galaxies reionised the Universe
- Winds of change: reionization by starburst galaxies
- Energy budget of forming clumps in numerical simulations of collapsing clouds
- Atomic Chemistry In Turbulent Astrophysical Media I: Effect of Atomic Cooling
- Galaxy Outflows Without Supernovae
- Understanding Galaxy Outflows as the Product of Unstable Turbulent Support
- Modeling Photoionized Turbulent Material in the Circumgalactic Medium
- Warped diffusive radio halo around the quiescent spiral edge-on galaxy NGC 4565