Images of Bursting Sources of High-Energy Cosmic Rays. I: Effects of Magnetic Fields
Eli Waxman, Jordi Miralda-Escude
Abstract
It has recently been shown that the highest energy cosmic rays (CRs) may originate in the same cosmological objects producing γ-ray bursts. This model requires the presence of intergalactic magnetic fields (IGMF) to delay the arrival times of 1020 eV CRs by 50 years or longer relative to the γ-rays, of an amplitude that is consistent with other observational constraints. Sources of CRs coming from individual bursts should be resolved with the planned ``Auger'' experiment, with as many as hundreds of CRs for the brightest sources. We analyze here the apparent angular and energy distribution of CRs from bright sources below the pion production threshold (in the energy range 1019 eV < E < 4×1019 eV) expected in this model. This observable distribution depends on the structure of the IGMF: the apparent spectral width ΔE is small, ΔE/E1\%, if the intergalactic field correlation length λ is much larger than 1 Mpc, and large, ΔE/E=0.3, in the opposite limit λ 1 Mpc. The apparent angular size is also larger for smaller λ. If the sources of CRs we predict are found, they will corroborate the bursting model and they will provide us with a technique to investigate the structure of the IGMF.
Create a lesson
Related papers
On binary pulsars and the force of gravity
Davor Palle
Tidal torques. A critical review of some techniques
Michael Efroimsky, James G. Williams
Dynamics of a Spherical Accretion Shock with Neutrino Heating and Alpha-Particle Recombination
Rodrigo Fernández, Christopher Thompson
Asymptotically FRW black holes
J. T. Firouzjaee, Reza Mansouri
Reaction of Accretion Disks to Abrupt Mass Loss During Binary Black Hole Merger
Sean M. O'Neill, M. Coleman Miller, Tamara Bogdanovic et al.
A Gamma-Ray Burst/Pulsar for Cosmic-Ray Positrons with a Dark Matter-like Spectrum
Kunihito Ioka