The relation between mid-plane pressure and molecular hydrogen in galaxies: Environmental dependence
arXiv:1208.4604 · doi:10.1088/0004-637X/761/2/167
Abstract
Molecular hydrogen (H2) is the primary component of the reservoirs of cold, dense gas that fuel star formation in our galaxy. While the H2 abundance is ultimately regulated by physical processes operating on small scales in the interstellar medium (ISM), observations have revealed a tight correlation between the ratio of molecular to atomic hydrogen in nearby spiral galaxies and the pressure in the mid-plane of their disks. This empirical relation has been used to predict H2 abundances in galaxies with potentially very different ISM conditions, such as metal-deficient galaxies at high redshifts. Here, we test the validity of this approach by studying the dependence of the pressure -- H2 relation on environmental parameters of the ISM. To this end, we follow the formation and destruction of H2 explicitly in a suite of hydrodynamical simulations of galaxies with different ISM parameters. We find that a pressure -- H2 relation arises naturally in our simulations for a variety of dust-to-gas ratios or strengths of the interstellar radiation field in the ISM. Fixing the dust-to-gas ratio and the UV radiation field to values measured in the solar neighborhood results in fair agreement with the relation observed in nearby galaxies with roughly solar metallicity. However, the parameters (slope and normalization) of the pressure -- H2 relation vary in a systematical way with ISM properties. A particularly strong trend is the decrease of the normalization of the relation with a lowering of the dust-to-gas ratio of the ISM. We show that this trend and other properties of the pressure -- H2 relation are natural consequences of the transition from atomic to molecular hydrogen with gas surface density.
10 pages, 4 figures, 3 tables, submitted to APJ, comments welcome
References in corpus (15)
- Dust Masses, PAH Abundances, and Starlight Intensities in the SINGS Galaxy Sample
- Fermi-LAT Observations of the Diffuse Gamma-Ray Emission: Implications for Cosmic Rays and the Interstellar Medium
- The Role of Pressure in GMC Formation II: The H_2 - Pressure Relation
- The Atomic to Molecular Transition in Galaxies. II: HI and H_2 Column Densities
- A General Model for the CO-H2 Conversion Factor in Galaxies with Applications to the Star Formation Law
- Molecular Hydrogen and Global Star Formation Relations in Galaxies
- Simulating the formation of molecular clouds. II. Rapid formation from turbulent initial conditions
- Environmental Dependence of the Kennicutt-Schmidt Relation in Galaxies
- The Atomic to Molecular Transition in Galaxies. I: An Analytic Approximation for Photodissociation Fronts in Finite Clouds
- The Atomic to Molecular Transition and its Relation to the Scaling Properties of Galaxy Disks in the Local Universe
- The Impact of Feedback on Disk Galaxy Scaling Relations
- The X-factor in Galaxies: I. Dependence on Environment and Scale
- The Cosmic Decline in the H2/HI-Ratio in Galaxies
- An Excursion-Set Model for the Structure of GMCs and the ISM
- Incorporating the molecular gas phase in galaxy-size numerical simulations: first applications in dwarf galaxies
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- Star Formation and Metallicity Gradients in Semi-analytic Models of Disk Galaxy Formation
- VALES: I. The molecular gas content in star-forming dusty H-ATLAS galaxies up to z=0.35
- On the cosmic evolution of the specific star formation rate
- How galactic environment regulates star formation
- The unusual ISM in Blue and Dusty Gas Rich Galaxies (BADGRS)