Evaluations of uncertainties in simulations of propagation of ultrahigh-energy cosmic-ray nuclei derived from microscopic nuclear models
arXiv:2206.03447 · doi:10.1016/j.astropartphys.2023.102866
Abstract
Photodisintegration is a main energy loss process for ultrahigh-energy cosmic-ray (UHECR) nuclei in intergalactic space. Therefore, it is crucial to understand systematic uncertainty in photodisintegration when simulating the propagation of UHECR nuclei. In this work, we calculated the cross sections using the random phase approximation (RPA) of density functional theory (DFT), a microscopic nuclear model. We calculated the strength of 29 nuclei using three different density functionals. We obtained the cross sections of photonuclear reactions, including photodisintegration, with the strength. Then, we implemented the cross sections in the cosmic-ray propagation code CRPropa. We found that assuming certain astrophysical parameter values, the difference between UHECR energy spectrum predictions using the RPA calculation and the default photodisintegration model in CRPropa can be more than the statistical uncertainty of the spectrum. We also found that the differences between the RPA calculations and CRPropa default in certain astrophysical parameters obtained by a combined fit of UHECR energy spectrum and composition data assuming a phenomenological model of UHECR sources can be more than the uncertainty of the data.
37 pages, 16 figures
References in corpus (9)
- Observation of a Large-scale Anisotropy in the Arrival Directions of Cosmic Rays above eV
- Depth of Maximum of Air-Shower Profiles at the Pierre Auger Observatory: Measurements at Energies above 10^17.8 eV
- Measurement of the cosmic-ray energy spectrum above eV using the Pierre Auger Observatory
- A new view on Auger data and cosmogenic neutrinos in light of different nuclear disintegration and air-shower models
- Antisymmetrized molecular dynamics studies for exotic clustering phenomena in neutron-rich nuclei
- Cosmic-ray anisotropies in right ascension measured by the Pierre Auger Observatory
- Secondary neutrino and gamma-ray fluxes from SimProp and CRPropa
- PANDORA project: photo-nuclear reactions below
- Uncertainty evaluation of peak energy of giant dipole resonance propagated from uncertainties of Skyrme parameters