The energy production rate density of cosmic rays in the local universe is at all particle energies
arXiv:1311.0287
Abstract
The energy output (per logarithmic interval of particle energies) of Cosmic Rays (CRs) with energies is per solar mass of starformation, based on the CR production rate in the Milky Way and in starburst galaxies, implying a generation rate of in the local universe. It is only times larger than the output, , of Ultra High Energy CRs (UHECRs) at energies (obtained assuming they are mostly protons), which in turn is comparable to the lower limit of of high energy CRs with implied by the saturation of the Waxman-Bahcall bound by the neutrino excess recently discovered by IceCube. These similarities are consistent with a flat production spectrum, for CRs at all observed energies. If a flat production spectrum is generated by our galaxy, the observed CR flux in the range , above the "knee", is suppressed compared to lower energies due to propagation effects rather than acceleration upper limits. As suggested by Parizot and Aublin, the most exciting possibility is that cosmic rays at all energies are emitted from a single type of (unknown) sources, which can not be supernova remnants.
5 pages, 1 figure
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