Radiation Hydrodynamical Instabilities in Cosmological and Galactic Ionization Fronts
arXiv:1009.1937 · doi:10.1007/s10509-011-0597-x
Abstract
Ionization fronts, the sharp radiation fronts behind which H/He ionizing photons from massive stars and galaxies propagate through space, were ubiquitous in the universe from its earliest times. The cosmic dark ages ended with the formation of the first primeval stars and galaxies a few hundred Myr after the Big Bang. Numerical simulations suggest that stars in this era were very massive, 25 - 500 solar masses, with H II regions of up to 30,000 light-years in diameter. We present three-dimensional radiation hydrodynamical calculations that reveal that the I-fronts of the first stars and galaxies were prone to violent instabilities, enhancing the escape of UV photons into the early intergalactic medium (IGM) and forming clumpy media in which supernovae later exploded. The enrichment of such clumps with metals by the first supernovae may have led to the prompt formation of a second generation of low-mass stars, profoundly transforming the nature of the first protogalaxies. Cosmological radiation hydrodynamics is unique because ionizing photons coupled strongly to both gas flows and primordial chemistry at early epochs, introducing a hierarchy of disparate characteristic timescales whose relative magnitudes can vary greatly throughout a given calculation. We describe the adaptive multistep integration scheme we have developed for the self-consistent transport of both cosmological and galactic ionization fronts.
6 pages, 4 figures, accepted for proceedings of HEDLA2010, Caltech, March 15 - 18, 2010
References in corpus (17)
- The Dynamics of Radiation Pressure-Dominated HII Regions
- The First Galaxies: Chemical Enrichment, Mixing, and Star Formation
- Population III star formation in a Lambda CDM universe, I: The effect of formation redshift and environment on protostellar accretion rate
- The Destruction of Cosmological Minihalos by Primordial Supernovae
- The HII Region of a Primordial Star
- Driving Turbulence and Triggering Star Formation by Ionizing Radiation
- Minihalo photoevaporation during cosmic reionization: evaporation times and photon consumption rates
- Ionisation-induced star formation I: The collect and collapse model
- How Very Massive Metal Free Stars Start Cosmological Reionization
- How the First Stars Regulated Local Star Formation I: Radiative Feedback
- Ionization Front Instabilities in Primordial H II Regions
- Secondary Star Formation in a Population III Object
- The Fate of the First Galaxies. III. Properties of Primordial Dwarf Galaxies and their Impact on the Intergalactic Medium
- Three-Dimensional Dynamical Instabilities in Galactic Ionization Fronts
- Formation of Pillars at the Boundaries between H II Regions and Molecular Clouds
- Radiative and Kinetic Feedback by Low-Mass Primordial Stars
- Formation Criteria and the Mass of Secondary Population III Stars
Cited by in corpus (4)
- Lyman Radiation Hydrodynamics of Turbulent H II Regions in Molecular Clouds: A Physical Origin of LyC Leakage and the Associated Ly Spectra
- Accretion onto Black Holes from Large Scales Regulated by Radiative Feedback. III. Enhanced Luminosity of Intermediate Mass Black Holes Moving at Supersonic Speeds
- Fully-Coupled Simulation of Cosmic Reionization. I: Numerical Methods and Tests
- The role of Compton heating in radiation-regulated accretion on to black holes