Formation of the cosmic-ray halo: The role of nonlinear Landau damping
arXiv:2209.12302 · doi:10.3847/1538-4357/ac8f42
Abstract
We present a nonlinear model of self-consistent Galactic halo, where the processes of cosmic ray (CR) propagation and excitation/damping of MHD waves are included. The MHD-turbulence, which prevents CR escape from the Galaxy, is entirely generated by the resonant streaming instability. The key mechanism controlling the halo size is the nonlinear Landau (NL) damping, which suppresses the amplitude of MHD fluctuations and, thus, makes the halo larger. The equilibrium turbulence spectrum is determined by a balance of CR excitation and NL damping, which sets the regions of diffusive and advective propagation of CRs. The boundary between the two regions is the halo size, which slowly increases with the energy. For the vertical magnetic field of , we estimate kpc for GeV protons. The derived proton spectrum is in a good agreement with observational data.
8 pages, 3 figures. Accepted to ApJ
References in corpus (5)
- Cosmic-Ray Proton and Helium Spectra from the First CREAM Flight
- The Vertical Structure of Warm Ionised Gas in the Milky Way
- Global cosmic-ray related luminosity and energy budget of the Milky Way
- Observation of Spectral Structures in the Flux of Cosmic-Ray Protons from 50 GeV to 60 TeV with the Calorimetric Electron Telescope on the International Space Station
- Cosmic-ray database update: ultra-high energy, ultra-heavy, and anti-nuclei cosmic-ray data (CRDB v4.0)