Cosmic ray-driven galactic winds: streaming or diffusion?
arXiv:1608.02585 · doi:10.1093/mnras/stx127
Abstract
Cosmic rays (CRs) have recently re-emerged as attractive candidates for mediating feedback in galaxies because of their long cooling timescales. They can have energy densities comparable to the thermal gas, but do not suffer catastrophic cooling losses. Recent simulations have shown that the momentum and energy deposited by CRs moving with respect to the ambient medium can drive galactic winds. However, simulations are hampered by our ignorance of the details of CR transport. Two key limits previously considered model CR transport as a purely diffusive process (with a constant diffusion coefficient) and as an advective streaming process. With a series of GADGET simulations, we compare and contrast the results of these different assumptions. In idealised three-dimensional galaxy formation models, we show that these two cases result in significant differences for the galactic wind mass loss rates and star formation suppression in dwarf galaxies with halo masses : diffusive CR transport results in more than ten times larger mass loss rates compared to CR streaming models. We demonstrate that this is largely due to the excitation of Alfvén waves during the CR streaming process that drains energy from the CR population to the thermal gas, which is subsequently radiated away. By contrast, CR diffusion conserves the CR energy in the absence of adiabatic changes and if CRs are efficiently scattered by Alfvén waves that are propagating up the CR gradient. Moreover, because pressure gradients are preserved by CR streaming, but not diffusion, the two can have a significantly different dynamical evolution regardless of this energy exchange. In particular, the constant diffusion coefficients usually assumed can lead to unphysically high CR fluxes.
18 pages, 11 figures
References in corpus (12)
- Properties of galaxies reproduced by a hydrodynamic simulation
- Feedback Heating by Cosmic Rays in Clusters of Galaxies
- Detecting shock waves in cosmological smoothed particle hydrodynamics simulations
- Cosmic Ray Propagation: Nonlinear Diffusion Parallel and Perpendicular to Mean Magnetic Field
- Magnetic Fields in Starburst Galaxies and The Origin of the FIR-Radio Correlation
- Cosmic ray feedback in hydrodynamical simulations of galaxy formation
- Cosmic ray physics in calculations of cosmological structure formation
- Galaxies that Shine: radiation-hydrodynamical simulations of disk galaxies
- Magnetic Fields in the Milky Way
- Time-dependent galactic winds I. Structure and evolution of galactic outflows accompanied by cosmic ray acceleration
- Damping of Alfven waves by Turbulence and its Consequences: from Cosmic-Rays Streaming to Launching Winds
- Interaction of Cosmic Rays with Cold Clouds in Galactic Halos
Cited by in corpus (8)
- The dependence of cosmic ray driven galactic winds on halo mass
- Simulating Gamma-ray Emission in Star-forming Galaxies
- Magnetohydrodynamic-Particle-in-Cell Simulations of the Cosmic-Ray Streaming Instability: Linear Growth and Quasi-linear Evolution
- Interaction of Cosmic Rays with Cold Clouds in Galactic Halos
- Lack of thermal energy in superbubbles: hint of cosmic rays?
- The SAMI Galaxy Survey: understanding observations of large-scale outflows at low redshift with EAGLE simulations
- The SAMI Galaxy Survey: Disk-halo interactions in radio-selected star-forming galaxies
- The self-control of Cosmic Rays