The ISM in spiral galaxies: can cooling in spiral shocks produce molecular clouds?
arXiv:0806.4312 · doi:10.1111/j.1365-2966.2008.13646.x
Abstract
We investigate the thermodynamics of the ISM and the formation of molecular hydrogen through numerical simulations of spiral galaxies. The model follows the chemical, thermal and dynamical response of the disc to an external spiral potential. Self-gravity and magnetic fields are not included. The calculations demonstrate that gas can cool rapidly when subject to a spiral shock. Molecular clouds in the spiral arms arise through a combination of compression of the ISM by the spiral shock and orbit crowding. These results highlight that local self-gravity is not required to form molecular clouds. Self-shielding provides a sharp transition density, below which gas is essentially atomic, and above which the molecular gas fraction is >0.001. The timescale for gas to move between these regimes is very rapid (<~1 Myr). From this stage, the majority of gas generally takes between 10 to 20 Myr to obtain high H fractions (>50 %). Although our calculations are unable to resolve turbulent motions on scales smaller than the spiral arm and do not include self-gravity. True cloud formation timescales are therefore expected to be even shorter. The mass budget of the disc is dominated by cold gas residing in the spiral arms. Between 50 and 75 % of this gas is in the atomic phase. When this gas leaves the spiral arm and drops below the self-shielding limit it is heated by the galactic radiation field. Consequently, most of the volume in the interarm regions is filled with warm atomic gas. However, some cold spurs and clumps can survive in interarm regions for periods comparable to the interarm passage timescale. Altogether between 7 and 40% of the gas in our disc is molecular, depending on the surface density of the calculation, with approximately 20% molecular for a surface density comparable to the solar neighbourhood.
16 pages, 19 figures, accepted for publication in MNRAS
References in corpus (19)
- SPLASH: An interactive visualisation tool for Smoothed Particle Hydrodynamics simulations
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- 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
- Simulating the formation of molecular clouds. II. Rapid formation from turbulent initial conditions
- The impact of magnetic fields on single and binary star formation
- From the warm magnetized atomic medium to molecular clouds
- On the Rapid Collapse and Evolution of Molecular Clouds
- The Birth of Molecular Clouds: Formation of Atomic Precursors in Colliding Flows
- Cooling, Gravity and Geometry: Flow-driven Massive Core Formation
- Star formation at very low metallicity. I: Chemistry and cooling at low densities
- Formation of Spiral-Arm Spurs and Bound Clouds in Vertically Stratified Galactic Gas Disks
- The formation of molecular clouds in spiral galaxies
- Spurs and feathering in spiral galaxies
- Incorporating the molecular gas phase in galaxy-size numerical simulations: first applications in dwarf galaxies
- The Effect of the Interstellar Model on Star Formation Properties in Galactic Disks
- Instabilities of Spiral Shocks -- II. A quasi-steady State in the multi-phase inhomogeneous ISM
- Galactic Spiral Shocks with Thermal Instability
- Magnetic fields and the dynamics of spiral galaxies
Cited by in corpus (30)
- Dawes Review 4: Spiral Structures in Disc Galaxies
- Kinematic Distances to Molecular Clouds identified in the Galactic Ring Survey
- CO-dark gas and molecular filaments in Milky Way type galaxies
- The link between turbulence, magnetic fields, filaments, and star formation in the Central Molecular Zone cloud G0.253+0.016
- Models of turbulent dissipation regions in the diffuse interstellar medium
- Rapid Molecular Cloud and Star Formation: Mechanisms and Movies
- Magnetic field amplification in turbulent astrophysical plasmas
- GMC formation by agglomeration and self gravity
- Short GMC lifetimes: an observational estimate with the PdBI Arcsecond Whirlpool Survey (PAWS)
- The SEDIGISM survey: Molecular clouds in the inner Galaxy
- The morphology of the Milky Way - I. Reconstructing CO maps from simulations in fixed potentials
- Thermal and radiative AGN feedback have a limited impact on star formation in high-redshift galaxies
- Photochemistry and Heating/Cooling of the Multiphase Interstellar Medium with UV Radiative Transfer for Magnetohydrodynamic Simulations
- The roles of stellar feedback and galactic environment in star forming molecular clouds
- Synthetic CO, H2 and HI surveys of the Galactic 2nd Quadrant, and the properties of molecular gas
- Photoionising feedback in spiral arm molecular clouds
- The onset of large scale turbulence in the interstellar medium of spiral galaxies
- The formation of clusters and OB associations in different density spiral arm environments
- The link between solenoidal turbulence and slow star formation in G0.253+0.016
- Modelling the chemistry of star-forming filaments - II. Testing filament characteristics with synthetic observations
- Stellar winds and photoionization in a spiral arm
- A Synthetic 21-cm Galactic Plane Survey of an SPH Galaxy Simulation
- Global enhancement and structure formation of the magnetic field in spiral galaxies
- The effects of local stellar radiation and dust depletion on non-equilibrium interstellar chemistry
- Star cluster formation and feedback in different environments of a Milky Way-like galaxy
- Synthetic line and continuum observations of simulated turbulent clouds: the apparent widths of filaments
- HYACINTH: HYdrogen And Carbon chemistry in the INTerstellar medium in Hydro simulations
- Interactions of a shock with a molecular cloud at various stages of its evolution due to thermal instability and gravity
- Description of turbulent dynamics in the interstellar medium: Multifractal microcanonical analysis: II. Sparse filtering of Herschel observation maps and visualization of filamentary structures at different length scales
- Supernovae and photoionizing feedback in spiral arm molecular clouds