On the Two-Phase Structure of Protogalactic Clouds
arXiv:astro-ph/0004055 · doi:10.1086/309317
Abstract
Within protogalaxies, thermal instability leads to the formation of a population of cool fragments, confined by the pressure of residual hot gas. The hot gas remains in quasi-hydrostatic equilibrium, at approximately the virial temperature of the dark matter halo. It is heated by compression and shock dissipation and is cooled by bremsstrahlung emission and conductive losses into the cool clouds. The cool fragments are photoionized and heated by the extragalactic UV background and nearby massive stars. The smallest clouds are evaporated due to conductive heat transfer from the hot gas. All are subject to disruption due to hydrodynamic instabilities. They also gain mass due to collisions and mergers and condensation from the hot gas due to conduction. The size distribution of the fragments in turn determines the rate and efficiency of star formation during the early phase of galactic evolution. We have performed one-dimensional hydrodynamic simulations of the evolution of the hot and cool gas. The cool clouds are assumed to follow a power-law size distribution, and fall into the galactic potential, subject to drag from the hot gas. The relative amounts of the hot and cool gas is determined by the processes discussed above, and star formation occurs at a rate sufficient to maintain the cool clouds at 10 K. We present density distributions for the two phases and also for the stars for several cases, parametrized by the circular speeds of the potentials. Under some conditions, primarily low densities of the hot gas, conduction is more efficient than radiative processes at cooling the hot gas, limiting the x-ray radiation from the halo gas.
To appear in the ApJ. Gzip compressed tar file. 42 pages, incl. 15 figures
References in corpus (1)
Cited by in corpus (23)
- Gaseous Galaxy Halos
- Multi-Phase Galaxy Formation: High Velocity Clouds and the Missing Baryon Problem
- Gravitational Quenching in Massive Galaxies and Clusters by Clumpy Accretion
- On disc driven inward migration of resonantly coupled planets with application to the system around GJ876
- Radiative Shock-Induced Collapse of Intergalactic Clouds
- Halo Gas Cross Sections And Covering Fractions of MgII Absorption Selected Galaxies
- Halo Gas and Galaxy Disk Kinematics Derived from Observations and LCDM Simulations of MgII Absorption Selected Galaxies at Intermediate Redshift
- The Formation of the First Stars in the Universe
- Paschen beta emission as a tracer of outflow activity from T-Tauri stars, as compared to Optical Forbidden emission
- Galaxy Group at z=0.3 Associated with the Damped Lyman Alpha System Towards Quasar Q1127-145
- Evolution of the ISM of Starburst galaxies: the SN heating efficiency
- The many streams of the Magellanic Stream
- Ionized Gas in Damped Lyman Alpha Protogalaxies: II. Comparison Between Models and the Kinematic Data
- Physical regimes for feedback in galaxy formation
- Energy Dissipation in Multi-Phase Infalling Clouds in Galaxy Halos
- Ejection of Supernova-Enriched Gas From Dwarf Disk Galaxies
- Lyman Alpha and MgII as Probes of Galaxies and their Environments
- Interaction of an outflow with surrounding gaseous clouds as the origin of the late-time radio flares in TDEs
- Hydrodynamic Shielding and the Survival of Cold Streams
- Russell Lecture: Dark Star Formation and Cooling Instability
- Exponentially growing bubbles around early super massive black holes
- On the Coagulation and Size Distribution of Pressure Confined Cores
- On the IMF in a Triggered Star Formation Context