The Physics of Galactic Winds Driven by Cosmic Rays I: Diffusion
arXiv:2102.05696 · doi:10.1093/mnras/stab3273
Abstract
The physics of Cosmic ray (CR) transport remains a key uncertainty in assessing whether CRs can produce galaxy-scale outflows consistent with observations. In this paper, we elucidate the physics of CR-driven galactic winds for CR transport dominated by diffusion. A companion paper considers CR streaming. We use analytic estimates validated by time-dependent spherically-symmetric simulations to derive expressions for the mass-loss rate, momentum flux, and speed of CR-driven galactic winds, suitable for cosmological-scale or semi-analytic models of galaxy formation. For CR diffusion coefficients where is the base radius of the wind and is the isothermal gas sound speed, the asymptotic wind energy flux is comparable to that supplied to CRs, and the outflow rapidly accelerates to supersonic speeds. By contrast, for , CR-driven winds accelerate more slowly and lose most of their energy to gravity, a CR analogue of photon-tired stellar winds. Given CR diffusion coefficients estimated using Fermi gamma-ray observations of pion decay, we predict mass-loss rates in CR-driven galactic winds of order the star formation rate for dwarf and disc galaxies. The dwarf galaxy mass-loss rates are small compared to the mass-loadings needed to reconcile the stellar and dark matter halo mass functions. For nuclear starbursts (e.g., M82, Arp 220), CR diffusion and pion losses suppress the CR pressure in the galaxy and the strength of CR-driven winds. We discuss the implications of our results for interpreting observations of galactic winds and for the role of CRs in galaxy formation.
submitted to MNRAS; 20 p, 10 figs; comments welcome
References in corpus (8)
- The Athena++ Adaptive Mesh Refinement Framework: Design and Magnetohydrodynamic Solvers
- Global cosmic-ray related luminosity and energy budget of the Milky Way
- The Starburst Contribution to the Extra-Galactic Gamma-Ray Background
- Fermi Large Area Telescope observations of Local Group galaxies: Detection of M31 and search for M33
- AMS-02 beryllium data and its implication for cosmic ray transport
- Cosmic ray-driven galactic winds: streaming or diffusion?
- Winds, Clumps, and Interacting Cosmic Rays in M82
- Super-Eddington stellar winds: unifying radiative-enthalpy vs. flux-driven models
Cited by in corpus (15)
- The Structure of Multiphase Galactic Winds
- Hot-mode accretion and the physics of thin-disk galaxy formation
- Standard Self-Confinement and Extrinsic Turbulence Models for Cosmic Ray Transport are Fundamentally Incompatible with Observations
- The Physics of Galactic Winds Driven by Cosmic Rays II: Isothermal Streaming Solutions
- The impact of cosmic rays on dynamical balance and disk-halo interaction in Lstar disk galaxies
- The global structure of magnetic fields and gas in simulated Milky Way-analogue galaxies
- CHANG-ES XXVI: Insights into cosmic-ray transport from radio halos in edge-on galaxies
- Plasmoid Instability in the Multiphase Interstellar Medium
- How Cosmic Rays Mediate the Evolution of the Interstellar Medium
- The Launching of Cosmic Ray Driven Outflows
- The Cosmic Ray Staircase: the Outcome of the Cosmic Ray Acoustic Instability
- Deep Chandra observations of diffuse hot plasma in M83
- The phase structure of cosmic ray driven outflows in stream fed disc galaxies
- AGN cool feedback and analogy with X-ray binaries: from radiation pressure to cosmic ray driven outflows
- A new buoyancy instability in galaxy clusters due to streaming cosmic rays