On the acceleration of cosmic rays at the post-adiabatic shocks of supernova remnants
arXiv:2510.21988 · doi:10.1051/0004-6361/202557311
Abstract
When a supernova remnant (SNR) interacts with the dense material of an interstellar cloud, its shock wave decelerates rapidly, and the post-shock temperature drops to levels that permit efficient cooling of the shocked plasma. At this stage, the shock enters the post-adiabatic phase of its evolution. During this phase, the internal structure of the SNR undergoes significant changes, particularly in the immediate post-shock region, at spatial scales relevant to cosmic ray acceleration. Once the shock enters the post-adiabatic regime, the efficiency of diffusive shock acceleration increases due to a higher plasma compression, to a change in the direction of the advection velocity, and to an increased rate of momentum gain. As a result, the momentum spectrum of relativistic particles hardens, deviating from a pure power law at high energies. Particles could reach higher maximum values compared to classical predictions. We highlight the dynamics of post-adiabatic flows in SNRs, study their impact on particle acceleration, and present supporting observational evidence in the radio band.
proposed for acceptance to A&A, comments are welcome
References in corpus (11)
- PLUTO: a Numerical Code for Computational Astrophysics
- Detection of the Characteristic Pion-Decay Signature in Supernova Remnants
- On the Origin of Asymmetries in Bilateral Supernova Remnants
- Modeling Bright Gamma-ray and Radio Emission at Fast Cloud Shocks
- Shock evolution in non-radiative supernova remnants
- Expansion of Kes 73, a Shell Supernova Remnant Containing a Magnetar
- Magneto-hydrodynamic simulations of young supernova remnants and their energy-conversion phase
- Study of the extended radio emission of two supernova remnants and four planetary nebulae associated to MIPSGAL bubbles
- A Study of Fermi-LAT GeV gamma-ray Emission towards the Magnetar-harboring Supernova Remnant Kesteven 73 and Its Molecular Environment
- Particle acceleration at radiative supernova remnant shocks
- Individual particle approach to the diffusive shock acceleration. Effect of the non-uniform flow velocity downstream of the shock