The Characteristic Momentum of Radiatively Cooling Energy-Driven Galactic Winds
arXiv:2011.06004 · doi:10.1093/mnras/stab1101
Abstract
Energy injection by supernovae may drive hot supersonic galactic winds in rapidly star-forming galaxies, driving metal-enriched gas into the circumgalactic medium and potentially accelerating cool gas. If sufficiently mass-loaded, such flows become radiative within the wind-driving region, reducing the overall mass outflow rate from the host galaxy. We show that this sets a maximum on the total outflow momentum for hot energy-driven winds. For a spherical wind of Solar metallicity driven by continuous star formation, $\dot p_\rm{max} \simeq 1.9\times10^4\ M_\odot/\rm{yr\ km/s}\ (α/0.9)^{0.86}(R_\star/300\ \rm{pc})^{0.14}(\dot M_\star/20\ M_\odot/\rm{yr})^{0.86}$, where is the fraction of supernova energy that thermalizes the wind, and and are the star formation rate and radius of the wind-driving region. This maximum momentum for hot winds can also apply to cool, ionized outflows that are typically observed in starburst galaxies, if the hot wind undergoes bulk radiative cooling or if the hot wind transfers mass and momentum to cool clouds within the flow. We show that requiring the hot wind to undergo single-phase cooling on large scales sets a minimum on the total outflow momentum rate. These maximum and minimum outflow momenta have similar values, setting a characteristic momentum rate of hot galactic winds that can become radiative on large scales. We find that most observations of photoionized outflow wind momentum fall below the theoretical maximum and thus may be signatures of cooling hot flows. On the other hand, many systems fall below the minimum momentum required for bulk cooling, indicating that perhaps the cool material observed has instead been entrained in or mixed with the hot flow.
14 pages, 7 figures, accepted by MNRAS
References in corpus (18)
- The Mass-Metallicity Relation at z~2
- The effect of photo-ionization on the cooling rates of enriched, astrophysical plasmas
- The COS-Halos Survey: Physical Conditions and Baryonic Mass in the Low-Redshift Circumgalactic Medium
- Massive molecular outflows and negative feedback in ULIRGs observed by Herschel-PACS
- The Origin of the Galaxy Mass-Metallicity Relation and Implications for Galactic Outflows
- The COS-Halos Survey: Metallicities in the Low-Redshift Circumgalactic Medium
- Ionized gas outflows and global kinematics of low-z luminous star forming galaxies
- The Launching of Cold Clouds by Galaxy Outflows I: Hydrodynamic Interactions with Radiative Cooling
- Iron line and diffuse hard X-ray emission from the starburst galaxy M82
- Molecular outflows in local ULIRGs: energetics from multi-transition OH analysis
- Hydrodynamical Coupling of Mass and Momentum in Multiphase Galactic Winds
- Cholla : A New Massively-Parallel Hydrodynamics Code For Astrophysical Simulation
- Growth and structure of multiphase gas in the cloud-crushing problem with cooling
- Two-Dimensional Hydrodynamic Models of Super Star Clusters with a Positive Star Formation Feedback
- On the hydrodynamics of the matter reinserted within superstellar clusters
- The Production of Cold Gas Within Galaxy Outflows
- On the Formation of Molecular Clumps in QSO Outflows
- Super stellar clusters with a bimodal hydrodynamic solution: an Approximate Analytic Approach
Cited by in corpus (13)
- Characterizing mass, momentum, energy and metal outflow rates of multi-phase galactic winds in the FIRE-2 cosmological simulations
- CLASSY III: The Properties of Starburst-Driven Warm Ionized Outflows
- The Survival of Multiphase Dusty Clouds in Hot Winds
- A simple model for mixing and cooling in cloud-wind interactions
- The Physics of Galactic Winds Driven by Cosmic Rays I: Diffusion
- The Physics of Galactic Winds Driven by Cosmic Rays II: Isothermal Streaming Solutions
- Kinematics, Structure, and Mass Outflow Rates of Extreme Starburst Galactic Outflows
- The Ionization and Dynamics of the Makani Galactic Wind
- Nebular C IV 1550 Imaging of the Metal-Poor Starburst Mrk 71: Direct Evidence of Catastrophic Cooling
- Dynamics of hot galactic winds launched from spherically-stratified starburst cores
- Fading in the Flow: Suppression of cold gas growth in expanding galactic outflows
- On the formation of globular clusters: comparison with observations
- Mass-Loading and Non-Spherical Divergence in Hot Galactic Winds: Implications for X-ray Observations