Spectrally resolved cosmic rays: II -- Momentum-dependent cosmic ray diffusion drives powerful galactic winds
arXiv:2109.13250 · doi:10.1093/mnras/stab3462
Abstract
Recently, cosmic ray (CR) feedback has been identified as a critical process in galaxy formation but most previous simulations have integrated out the energy-dependence of the CR distribution, despite its large extent over more than twelve decades in particle energy. To improve upon this simplification, we present the implementation and first application of spectrally resolved CRs which are coupled to the magneto-hydrodynamics in simulations of galaxy formation. The spectral model for the CRs enables more accurate cooling of CRs and allows for an energy-dependent spatial diffusion, for which we introduce a new stable numerical algorithm that proves essential in highly dynamical systems. We perform galaxy formation simulations with this new model and compare the results to a grey CR approach with a simplified diffusive transport and effective cooling that assumes steady-state spectra. We find that the galaxies with spectrally resolved CRs differ in morphology, star formation rate, and strength and structure of the outflows. Interestingly, the first outflow front is driven by CRs with average momenta of . The subsequent formation of outflows, which reach mass loading factors of order unity, are primarily launched by CRs of progressively smaller average momenta of . The CR spectra in the galactic centre quickly approach a steady state, which does not significantly vary over time. In the outer disc and outflow regions, the spectral shape approaches steady state only after of evolution. Furthermore, the shapes of the approximate steady state spectra differ for individual regions of the galaxy, which highlights the importance of actively including the full CR spectrum.
21 pages, 13 figures, published in MNRAS, erratum added
References in corpus (19)
- Detection of the Characteristic Pion-Decay Signature in Supernova Remnants
- Cosmic Ray Propagation: Nonlinear Diffusion Parallel and Perpendicular to Mean Magnetic Field
- Cosmic ray feedback in hydrodynamical simulations of galaxy formation
- Vertical structure of a supernova-driven turbulent magnetized ISM
- First results from SMAUG: Characterization of Multiphase Galactic Outflows from a Suite of Local Star-Forming Galactic Disk Simulations
- Cosmic ray physics in calculations of cosmological structure formation
- AMS-02 beryllium data and its implication for cosmic ray transport
- Cosmic ray-driven galactic winds: streaming or diffusion?
- SILCC VI -- Multi-phase ISM structure, stellar clustering, and outflows with supernovae, stellar winds, ionising radiation and cosmic rays
- The dependence of cosmic ray driven galactic winds on halo mass
- Time-dependent galactic winds I. Structure and evolution of galactic outflows accompanied by cosmic ray acceleration
- Cosmic ray feedback from supernovae in dwarf galaxies
- Cosmic-Ray Diffusion Suppression in Star-forming Regions Inhibits Clump Formation in Gas-rich Galaxies
- Cosmic rays and non-thermal emission in simulated galaxies. II. -ray maps, spectra and the far infrared--ray relation
- Probing Cosmic Ray Transport with Radio Synchrotron Harps in the Galactic Center
- The Spatially Uniform Spectrum of the Fermi Bubbles: the Leptonic AGN Jet Scenario
- Cosmic rays and non-thermal emission in simulated galaxies. I. Electron and proton spectra compared to Voyager-1 data
- Numerical simulations of buoyancy instabilities in galaxy cluster plasmas with cosmic rays and anisotropic thermal conduction
- The angular momentum structure of cosmic ray driven galactic outflows triggered by stream accretion