Radiation Pressure Driven Galactic Winds from Self-Gravitating Discs
arXiv:1005.4691 · doi:10.1111/j.1365-2966.2012.21291.x
Abstract
(Abridged) We study large-scale winds driven from uniformly bright self-gravitating discs radiating near the Eddington limit. We show that the ratio of the radiation pressure force to the gravitational force increases with height above the disc surface to a maximum of twice the value of the ratio at the disc surface. Thus, uniformly bright self-gravitating discs radiating at the Eddington limit are fundamentally unstable to driving large-scale winds. These results contrast with the spherically symmetric case, where super-Eddington luminosities are required for wind formation. We apply this theory to galactic winds from rapidly star-forming galaxies that approach the Eddington limit for dust. For hydrodynamically coupled gas and dust, we find that the asymptotic velocity of the wind is v_\infty ~ 1.5 v_rot and that v_\infty SFR^{0.36}, where v_rot is the disc rotation velocity and SFR is the star formation rate, both of which are in agreement with observations. However, these results of the model neglect the gravitational potential of the surrounding dark matter halo and an old passive stellar bulge or extended disc, which act to decrease v_\infty. A more realistic treatment shows that the flow can either be unbound, or bound, forming a "fountain flow" with a typical turning timescale of t_turn ~ 0.1-1 Gyr. We provide quantitative criteria and scaling relations for assessing whether or not a rapidly star-forming galaxy of given properties can drive unbound flows via the mechanism described in this paper. Importantly, we note that because t_turn is longer than the star formation timescale in the rapidly star-forming galaxies and ULIRGs for which our theory is most applicable, if rapidly star-forming galaxies are selected as such, they may be observed to have strong outflows, even though their winds are eventually bound on large scales.
10 pages, 6 figures, Accepted for publication in MNRAS
References in corpus (18)
- The Mass-Metallicity Relation at z~2
- Concentration, Spin and Shape of Dark Matter Haloes as a Function of the Cosmological Model: WMAP1, WMAP3 and WMAP5 results
- Cosmological Simulations of Intergalactic Medium Enrichment from Galactic Outflows
- Ubiquitous outflows in DEEP2 spectra of star-forming galaxies at z=1.4
- Stellar Feedback in Galaxies and the Origin of Galaxy-scale Winds
- Mass, Metal, and Energy Feedback in Cosmological Simulations
- New constraints on the evolution of the stellar-to-dark matter connection: a combined analysis of galaxy-galaxy lensing, clustering, and stellar mass functions from z=0.2 to z=1
- The Origin of the Galaxy Mass-Metallicity Relation and Implications for Galactic Outflows
- Feedback and Recycled Wind Accretion: Assembling the z=0 Galaxy Mass Function
- Self-Regulated Star Formation in Galaxies via Momentum Input from Massive Stars
- Radiation pressure from massive star clusters as a launching mechanism for super-galactic winds
- Absorption-line probes of the prevalence and properties of outflows in present-day star-forming galaxies
- A Maximum Stellar Surface Density in Dense Stellar Systems
- Mapping Large-Scale Gaseous Outflows in Ultraluminous Infrared Galaxies with Keck II ESI Spectra: Spatial Extent of the Outflow
- Enrichment and Pre-Heating in Intragroup Gas from Galactic Outflows
- The Origin and Kinematics of Cold Gas in Galactic Winds: Insight from Numerical Simulations
- The DEEP2 Redshift Survey: Lyman Alpha Emitters in the Spectroscopic Database
- Dust-driven wind from disk galaxies
Cited by in corpus (37)
- The Mass-Metallicity Relation with the Direct Method on Stacked Spectra of SDSS Galaxies
- Galaxy Evolution in Cosmological Simulations with Outflows II: Metallicities and Gas Fractions
- Galaxy Evolution in Cosmological Simulations With Outflows I: Stellar Masses and Star Formation Rates
- Demographics and Physical Properties of Gas Out/Inflows at 0.4 < z < 1.4
- Evidence for Wide-Spread AGN Driven Outflows in the Most Massive z~1-2 Star Forming Galaxies
- An Origin for Multi-Phase Gas in Galactic Winds and Halos
- Direct Numerical Simulation of Radiation Pressure-Driven Turbulence and Winds in Star Clusters and Galactic Disks
- Dynamics of Dusty Radiation Pressure Driven Shells and Clouds: Fast Outflows from Galaxies, Star Clusters, Massive Stars, and AGN
- Numerical Simulations of Radiatively-Driven Dusty Winds
- The stellar accretion origin of stellar population gradients in massive galaxies at large radii
- Cosmic ray-driven galactic winds: streaming or diffusion?
- Entrainment in Trouble: Cool Cloud Acceleration and Destruction in Hot Supernova-Driven Galactic Winds
- Implications of Dramatic Broad Absorption Line Variability in the Quasar FBQS J1408+3054
- The effect of metal enrichment and galactic winds on galaxy formation in cosmological zoom simulations
- Sub-Eddington Star-Forming Regions are Super-Eddington: Momentum Driven Outflows from Supersonic Turbulence
- Bulge Formation via Mergers in Cosmological Simulations
- Fast, Collimated Outflow in the Western Nucleus of Arp 220
- Filament formation in wind-cloud interactions. II. Clouds with turbulent density, velocity, and magnetic fields
- Role of Cosmic Ray Streaming and Turbulent Damping in Driving Galactic Winds
- On the dynamics and survival of fractal clouds in galactic winds
- Galactic Winds in Cosmological Simulations of the Circumgalactic Medium
- Fast Winds Drive Slow Shells: A Model for the Circumgalactic Medium as Galactic Wind-Driven Bubbles
- The combined effect of AGN and supernovae feedback in launching massive molecular outflows in high-redshift galaxies
- AGN feedback in a galaxy merger: Multi-phase, galaxy-scale outflows including a fast molecular gas blob ~6 kpc away from IRAS F08572+3915
- Radiation Hydrodynamic Simulations of Dust-Driven Winds
- The Hot, Accreted Halo of NGC 891
- Numerical Simulations of Turbulent Molecular Clouds Regulated by Radiation Feedback Forces II: Radiation-Gas Interactions and Outflows
- Resolution Requirements and Resolution Problems in Simulations of Radiative Feedback in Dusty Gas
- A Spatially-Resolved Survey of Distant Quasar Host Galaxies: I. Dynamics of galactic outflows
- Spectral shifting strongly constrains molecular cloud disruption by radiation pressure on dust
- Scaling relations and baryonic cycling in local star-forming galaxies. III. Outflows, effective yields and metal loading factors
- Dust Scattering and the Radiation Pressure Force in the M82 Superwind
- Kinematics, Structure, and Mass Outflow Rates of Extreme Starburst Galactic Outflows
- The connection between AGN-driven dusty outflows and the surrounding environment
- Photon Feedback: Screening and the Eddington Limit
- The imprint of magnetic fields on absorption spectra from circumgalactic wind-cloud systems
- Capture and Escape: The Dependence of Radiation Forces on Clumping in Dusty Envelopes