Time-dependent particle acceleration in supernova remnants in different environments
arXiv:1004.2766 · doi:10.1111/j.1365-2966.2010.16857.x
Abstract
We simulate time-dependent particle acceleration in the blast wave of a young supernova remnant (SNR), using a Monte Carlo approach for the diffusion and acceleration of the particles, coupled to an MHD code. We calculate the distribution function of the cosmic rays concurrently with the hydrodynamic evolution of the SNR, and compare the results with those obtained using simple steady-state models. The surrounding medium into which the supernova remnant evolves turns out to be of great influence on the maximum energy to which particles are accelerated. In particular, a shock going through a density profile causes acceleration to typically much higher energies than a shock going through a medium with a homogeneous density profile. We find systematic differences between steady-state analytical models and our time-dependent calculation in terms of spectral slope, maximum energy, and the shape of the cut-off of the particle spectrum at the highest energies. We also find that, provided that the magnetic field at the reverse shock is sufficiently strong to confine particles, cosmic rays can be easily re-accelerated at the reverse shock.
19 pages, 20 figures, accepted for publication in MNRAS
References in corpus (10)
- Analytical solutions for energy spectra of electrons accelerated by nonrelativistic shock-waves in shell type supernova remnants
- Long Term Evolution of Magnetic Turbulence in Relativistic Collisionless Shocks: Electron-Positron Plasmas
- Nonthermal Radiation of Young Supernova Remnants
- Measuring the cosmic ray acceleration efficiency of a supernova remnant
- Theory of cosmic ray production in the supernova remnant RX J1713.7-3946
- Nonlinear Diffusive Shock Acceleration with Magnetic Field Amplification
- Cosmic ray physics in calculations of cosmological structure formation
- Characterizing the non-thermal emission of Cas A
- The maximum momentum of particles accelerated at cosmic ray modified shocks
- 3D simulations of supernova remnants evolution including non-linear particle acceleration
Cited by in corpus (24)
- Supernova remnants: the X-ray perspective
- The microphysics of collisionless shock waves
- Observational signatures of particle acceleration in supernova remnants
- Diffusive shock acceleration and magnetic field amplification
- Cosmic ray acceleration at oblique shocks
- Escape of cosmic-ray electrons from supernova remnants
- Particle Spectra from Acceleration at Forward and Reverse Shocks of Young Type Ia Supernova Remnants
- Particle acceleration and non-thermal emission during the V407 Cygni nova outburst
- On the origin and composition of Galactic cosmic rays
- The relation between post-shock temperature, cosmic-ray pressure and cosmic-ray escape for non-relativistic shocks
- A Decline in the Nonthermal X-ray Emission from Cassiopeia A
- Modeling supernova remnants: effects of diffusive cosmic-ray acceleration on the evolution, application to observations
- Is the high-energy neutrino event IceCube-200530A associated with a hydrogen-rich superluminous supernova?
- High-energy particle transport in 3D hydrodynamic models of colliding-wind binaries
- A more accurate numerical scheme for diffusive shock acceleration
- Spectral softening in core-collapse supernova remnant expanding inside wind-blown bubble
- 3D simulations of the non-thermal broad-band emission from young supernova remnants including efficient particle acceleration
- Observational constraints on the modeling of SN1006
- Optically Informed Searches of High-Energy Neutrinos from Interaction-Powered Supernovae
- Neutrino Emission from Luminous Fast Blue Optical Transients
- Radio, X-ray and gamma-ray surface brightness profiles as powerful diagnostic tools for non-thermal SNR shells
- Particle acceleration, escape and non-thermal emission from core-collapse supernovae inside non-identical wind-blown bubbles
- Constraints on magnetic field strength in the remnant SN1006 from its nonthermal images
- A source of gamma rays coincident with the shell of the supernova remnant CTB 80