Shock waves in the magnetized cosmic web: the role of obliquity and cosmic-ray acceleration
arXiv:2006.10063 · doi:10.1093/mnras/staa1810
Abstract
Structure formation shocks are believed to be the largest accelerators of cosmic rays in the Universe. However, little is still known about their efficiency in accelerating relativistic electrons and protons as a function of their magnetization properties, i.e. of their magnetic field strength and topology. In this work, we analyzed both uniform and adaptive mesh resolution simulations of large-scale structures with the magnetohydrodynamical grid code Enzo, studying the dependence of shock obliquity with different realistic scenarios of cosmic magnetism. We found that shock obliquities are more often perpendicular than what would be expected from a random three-dimensional distribution of vectors, and that this effect is particularly prominent in the proximity of filaments, due to the action of local shear motions. By coupling these results to recent works from particle-in-cell simulations, we estimated the flux of cosmic-ray protons in galaxy clusters, and showed that in principle the riddle of the missed detection of hadronic gamma-ray emission by the Fermi-LAT can be explained if only quasi-parallel shocks accelerate protons. On the other hand, for most of the cosmic web the acceleration of cosmic-ray electrons is still allowed, due to the abundance of quasi-perpendicular shocks. We discuss quantitative differences between the analyzed models of magnetization of cosmic structures, which become more significant at low cosmic overdensities.
Accepted for publication in MNRAS, 20 pages, 32 figures
References in corpus (18)
- Diffuse Radio Emission from Galaxy Clusters
- Turbulence and Magnetic Fields in the Large Scale Structure of the Universe
- Observations of extended radio emission in clusters
- Detecting shock waves in cosmological smoothed particle hydrodynamics simulations
- Shock Waves in Eulerian Cosmological Simulations: Main Properties and Acceleration of Cosmic Rays
- Non-Thermal Electron Acceleration in Low Mach Number Collisionless Shocks. I. Particle Energy Spectra and Acceleration Mechanism
- Cluster Magnetic Fields from Galactic Outflows
- Simulating cosmic rays in clusters of galaxies - I. Effects on the Sunyaev-Zel'dovich effect and the X-ray emission
- Cosmological Shock Waves in the Large Scale Structure of the Universe: Non-gravitational Effects
- Simulations of extragalactic magnetic fields and of their observables
- The Turbulent Dynamo in Highly Compressible Supersonic Plasmas
- Non-thermal processes in cosmological simulations
- Testing cosmic-ray acceleration with radio relics: a high-resolution study using MHD and tracers
- Cosmological shock waves
- Self-Similar Evolution of Cosmic-Ray-Modified Quasi-Parallel Plane Shocks
- Shocks and non-thermal particles in clusters of galaxies
- A survey of the thermal and non-thermal properties of cosmic filaments
- Limiting the shock acceleration of cosmic-ray protons in the ICM
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- Exploring the spectral properties of radio relics I: Integrated spectral index and Mach number
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- On the Challenges of Cosmic-Ray Proton Shock Acceleration in the Intracluster Medium
- A morphological analysis of the substructures in radio relics
- On the alignment of haloes, filaments and magnetic fields in the simulated cosmic web
- Synchrotron emission and neutral hydrogen in the simulated cosmic web