Minimal model for extragalactic cosmic rays and neutrinos

被引:44
作者
Kachelriess, M. [1 ]
Kalashev, O. [2 ]
Ostapchenko, S. [3 ,4 ]
Semikoz, D. V. [5 ,6 ]
机构
[1] NTNU, Inst Fys, N-7491 Trondheim, Norway
[2] Russian Acad Sci, Inst Nucl Res, Moscow 117312, Russia
[3] Frankfurt Inst Adv Studies, D-60438 Frankfurt, Germany
[4] Moscow MV Lomonosov State Univ, Skobeltsyn Inst Nucl Phys, Moscow 119992, Russia
[5] AstroParticle & Cosmol APC, F-75205 Paris 13, France
[6] Natl Res Nucl Univ MEPHI, Moscow 111250, Russia
关键词
ACTIVE GALACTIC NUCLEI; ENERGY; ELECTRODYNAMICS;
D O I
10.1103/PhysRevD.96.083006
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We aim to explain in a unified way the experimental data on ultrahigh-energy cosmic rays (UHECRs) and neutrinos, using a single source class and obeying limits on the extragalactic diffuse gamma-ray background. If UHECRs only interact hadronically with gas around their sources, the resulting diffuse cosmic-ray (CR) flux can be matched well to the observed one, providing at the same time large neutrino fluxes. Since the required fraction of heavy nuclei is, however, rather large, the maxima of air showers in the Earth's atmosphere induced by UHECRs with energies E greater than or similar to 3 x 10(18) eV would be too high. Therefore, additional photohadronic interactions of UHECRs close to the accelerator have to be present, in order to modify the nuclear composition of CRs in a relatively narrow energy interval. We thus include both photon and gas backgrounds and combine the resulting CR spectra with the high-energy part of the Galactic CR fluxes predicted by the escape model. As result, we find a good description of experimental data on the total CR flux, the mean shower maximum depth X-max and its width rms(X-max) in the whole energy range above E similar or equal to 10(17) eV. The predicted high-energy neutrino flux matches IceCube measurements, while the contribution to the extragalactic diffuse gamma ray background is of order 30%.
引用
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页数:6
相关论文
共 48 条
[41]   Ultra-high energy cosmic ray production in the polar cap regions of black hole magnetospheres [J].
Neronov, A. Yu ;
Semikoz, D. V. ;
Tkachev, I. I. .
NEW JOURNAL OF PHYSICS, 2009, 11
[42]   LHC data on inelastic diffraction and uncertainties in the predictions for longitudinal extensive air shower development [J].
Ostapchenko, S. .
PHYSICAL REVIEW D, 2014, 89 (07)
[43]   Monte Carlo treatment of hadronic interactions in enhanced Pomeron scheme: QGSJET-II model [J].
Ostapchenko, S. .
PHYSICAL REVIEW D, 2011, 83 (01)
[44]   Constraining pion interactions at very high energies by cosmic ray data [J].
Ostapchenko, Sergey ;
Bleicher, Marcus .
PHYSICAL REVIEW D, 2016, 93 (05)
[45]   EPOS LHC: Test of collective hadronization with data measured at the CERN Large Hadron Collider [J].
Pierog, T. ;
Karpenko, Iu. ;
Katzy, J. M. ;
Yatsenko, E. ;
Werner, K. .
PHYSICAL REVIEW C, 2015, 92 (03)
[46]  
RACHEN JP, 1993, ASTRON ASTROPHYS, V273, P377
[47]   AN EMPIRICAL DETERMINATION OF THE INTERGALACTIC BACKGROUND LIGHT FROM UV TO FIR WAVELENGTHS USING FIR DEEP GALAXY SURVEYS AND THE GAMMA-RAY OPACITY OF THE UNIVERSE [J].
Stecker, Floyd W. ;
Scully, Sean T. ;
Malkan, Matthew A. .
ASTROPHYSICAL JOURNAL, 2016, 827 (01)
[48]   Origin of the ankle in the ultrahigh energy cosmic ray spectrum, and of the extragalactic protons below it [J].
Unger, Michael ;
Farrar, Glennys R. ;
Anchordoqui, Luis A. .
PHYSICAL REVIEW D, 2015, 92 (12)