Cosmic rays: the spectrum and chemical composition from to eV
arXiv:1502.00305 · doi:10.1088/1475-7516/2015/07/042
Abstract
The production of energetic particles in the universe remains one of the great mysteries of modern science. The mechanisms of acceleration in astrophysical sources and the details about the propagation through the galactic and extragalactic media are still to be defined. In recent years, the cosmic ray flux has been measured with high precision in the energy range from \energy{10} to \energyEV{20.5} by several experiments using different techniques. In some energy ranges, it has been possible to determine the flux of individual elements (hydrogen to iron nuclei). This paper explores an astrophysical scenario in which only our Galaxy and the radio galaxy Cen A produce all particles measured on Earth in the energy range from \energy{10} to \energyEV{20.5}. Data from AMS-02, CREAM, KASCADE, KASCADE-Grande and the Pierre Auger Observatories are considered. The model developed here is able to describe the total and individual particle flux of all experiments considered. It is shown that the theory used here is able to describe the smooth transition from space-based to ground-based measurements. The flux of each element as determined by KASCADE and KASCADE-Grande and the mass sensitivity parameter \xmax measured by the Pierre Auger Observatory above \energyEV{18} are also explored within the framework of the model. The transition from \energy{16} to \energyEV{18} is carefully analyzed. It is shown that the data measured in this energy range suggest the existence of an extra component of cosmic rays yet to be understood.
References in corpus (6)
- Depth of Maximum of Air-Shower Profiles at the Pierre Auger Observatory: Measurements at Energies above 10^17.8 eV
- Discrepant hardening observed in cosmic-ray elemental spectra
- Ankle-like Feature in the Energy Spectrum of Light Elements of Cosmic Rays Observed with KASCADE-Grande
- The origin of cosmic rays: Explosions of massive stars with magnetic winds and their supernova mechanism
- Cosmic ray electrons and positrons from supernova explosions of massive stars
- Doppler Boosting, Superluminal Motion, and the Kinematics of AGN Jets
Cited by in corpus (7)
- Lepton fluxes from atmospheric charm revisited
- Cosmogenic Neutrinos Challenge the Cosmic Ray Proton Dip Model
- Effects of uncertainties in simulations of extragalactic UHECR propagation, using CRPropa and SimProp
- The prompt atmospheric neutrino flux in the light of LHCb
- Nuclear Physics Meets the Sources of the Ultra-High Energy Cosmic Rays
- Supernova explosions of massive stars and cosmic rays
- Nearby active galactic nuclei and starburst galaxies as sources of the measured UHECRs anisotropy signal