Turbulent Reacceleration of Streaming Cosmic Rays
arXiv:2208.02261 · doi:10.3847/1538-4357/aca021
Abstract
Subsonic, compressive turbulence transfers energy to cosmic rays (CRs), a process known as non-resonant reacceleration. It is often invoked to explain observed ratios of primary to secondary CRs at energies, assuming wholly diffusive CR transport. However, such estimates ignore the impact of CR self-confinement and streaming. We study these issues in stirring box magnetohydrodynamic (MHD) simulations using Athena++, with field-aligned diffusive and streaming CR transport. For diffusion only, we find CR reacceleration rates in good agreement with analytic predictions. When streaming is included, reacceleration rates depend on plasma . Due to streaming-modified phase shifts between CR and gas variables, they are slower than canonical reacceleration rates in low- environments like the interstellar medium (ISM) but remain unchanged in high- environments like the intracluster medium (ICM). We also quantify the streaming energy loss rate in our simulations. For sub-Alfvénic turbulence, it is resolution-dependent (hence unconverged in large scale simulations) and heavily suppressed -- by an order of magnitude -- compared to the isotropic loss rate , due to misalignment between the mean field and isotropic CR gradients. Counterintuitively, and unlike acceleration efficiencies, CR losses are almost independent of magnetic field strength over and are, therefore, not the primary factor behind lower acceleration rates when streaming is included. While this paper is primarily concerned with how turbulence affects CRs, in a follow-up paper (Bustard and Oh, in prep), we consider how CRs affect turbulence by diverting energy from the MHD cascade, altering the pathway to gas heating and steepening the turbulent power spectrum.
Accepted to ApJ and published in December 2022
References in corpus (18)
- The Athena++ Adaptive Mesh Refinement Framework: Design and Magnetohydrodynamic Solvers
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- Compressible Turbulence in Galaxy Clusters: Physics and Stochastic Particle Re-acceleration
- Spectral breaks as a signature of cosmic ray induced turbulence in the Galaxy
- 3D Turbulent Reconnection: Theory, Tests and Astrophysical Implications
- Cosmic-ray propagation with DRAGON2: I. numerical solver and astrophysical ingredients
- The sonic scale revealed by the world's largest supersonic turbulence simulation
- Galactic cosmic rays after the AMS-02 observations
- Turbulence and Particle Acceleration in Giant Radio Haloes: the Origin of Seed Electrons
- Cosmic Ray Electrons, Positrons and the Synchrotron emission of the Galaxy: consistent analysis and implications
- The Matryoshka Run (II): Time Dependent Turbulence Statistics, Stochastic Particle Acceleration and Microphysics Impact in a Massive Galaxy Cluster
- Cosmic ray production in superbubbles
- Power requirements for cosmic ray propagation models involving diffusive reacceleration; estimates and implications for the damping of interstellar turbulence
- Power requirements for cosmic ray propagation models involving re-acceleration and a comment on second order Fermi acceleration theory
- Interaction of Cosmic Rays with Cold Clouds in Galactic Halos
- Simulations of cosmic ray propagation
- CR Driven Multi-phase Gas Formed via Thermal Instability
- CRAFT (Cosmic Ray Acceleration From Turbulence) in Molecular Clouds
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