The GZK Feature in our Neighborhood of the Universe
arXiv:astro-ph/0009466 · doi:10.1016/S0927-6505(00)00157-2
Abstract
We calculate numerically the spectrum of ultra-high energy cosmic rays on Earth assuming that their sources are distributed in space like the observed galaxies. We use the CfA2 and the PSCz galaxy redshift surveys to model the local galaxy distribution, properly taking into account the galaxy selection functions for each survey. When the survey selection effects are included, we find that the local overdensity is only a factor of two, an order of magnitude less than used in some earlier studies. An overdensity of two is not enough to bridge the gap between the predicted number of events above eV and the measured flux at these highest energies. This conclusion is particularly strong for soft injection spectra () where the observed number of events is 6 higher than the expected one. However, if the injection spectrum is hard (), the small local overdensity helps bring the present data within 2 of the low number of events predicted above eV. In this case, the Greisen-Zatzepin-Kuzmin cutoff is not a {\it cutoff} but rather a {\it feature} in the cosmic ray spectrum.
17 pages, 8 figures
References in corpus (4)
Cited by in corpus (39)
- On astrophysical solution to ultra high energy cosmic rays
- Neutrinos from propagation of ultra-high energy protons
- The Diffuse Supernova Neutrino Background is detectable in Super-Kamiokande
- Features of the energy spectrum of cosmic rays above eV using the Pierre Auger Observatory
- A dip in the UHECR spectrum and the transition from galactic to extragalactic cosmic rays
- The high energy cosmic ray spectrum from relic particle decay
- Ultrahigh Energy Cosmic Rays: The state of the art before the Auger Observatory
- Monocular Measurement of the Spectrum of UHE Cosmic Rays by the FADC Detector of the HiRes Experiment
- Ultra-High Energy Cosmic Rays in a Structured and Magnetized Universe
- Fluxes of cosmic rays: A delicately balanced stationary state
- On the statistical significance of the GZK feature in the spectrum of ultra high energy cosmic rays
- The Small Scale Anisotropies, the Spectrum and the Sources of Ultra High Energy Cosmic Rays
- Ultra-high energy cosmic rays from annihilation of superheavy dark matter
- Small Scale Clustering in the Isotropic Arrival Distribution of Ultra-High Energy Cosmic Rays and Implications for Their Source Candidates
- Cosmic Physics: The High Energy Frontier
- The footprint of large scale cosmic structure on the ultra-high energy cosmic ray distribution
- The Anisotropy of the Ultra-High Energy Cosmic Rays
- Space Time Fluctuations and Ultra High Energy Cosmic Ray Interactions
- Extensive Air Showers from Ultra High Energy Gluinos
- Spectrum and Composition of Ultra-high Energy Cosmic Rays from Semi-relativistic Hypernovae
- Propagation of ultra-high energy protons in regular extragalactic magnetic fields
- Violation of Lorentz Invariance and neutral component of UHECR
- Isotropy constraints on powerful sources of ultrahigh-energy cosmic rays at eV
- Propagation of UHECRs from the Sources in the Super-Galactic Plane
- The Enigma of the Highest Energy Particles of Nature
- Anisotropy at the end of the cosmic ray spectrum?
- GZK cutoff distortion due to the energy error distribution shape
- Chasing the GZK with HiRes
- Hard component of ultra-high energy cosmic rays and vortons
- Small Scale Anisotropy Predictions for the Auger Observatory
- Revision of the Selection Function of the Optical Redshift Survey using the Sloan Digital Sky Survey Early Data Release: Toward an Accurate Estimate of Source Number Density of Ultra-High Energy Cosmic Rays
- Ultra high energy cosmic ray sources & experimental results
- Puzzles in astrophysics in the past and present
- Ultrahigh energy cosmic rays from dark matter annihilation
- Ultrahigh Energy Cosmic Rays: New Physics or Old Physics?
- On the Origin of Cosmic Rays
- Astrophysics at the Highest Energy Frontiers
- The Future of Ultra High Energy Cosmic Rays
- Ultra-high Energy Cosmic Rays: a probe into New Physics