Constraints on the source of ultra-high energy cosmic rays using anisotropy vs chemical composition
arXiv:1308.5699 · doi:10.1088/0004-637X/776/2/88
Abstract
The joint analysis of anisotropy signals and chemical composition of ultra-high energy cosmic rays offers strong potential for shedding light on the sources of these particles. Following up on an earlier idea, this paper studies the anisotropies produced by protons of energy >E/Z, assuming that anisotropies at energy >E have been produced by nuclei of charge Z, which share the same magnetic rigidity. We calculate the number of secondary protons produced through photodisintegration of the primary heavy nuclei. Making the extreme assumption that the source does not inject any proton, we find that the source(s) responsible for anisotropies such as reported by the Pierre Auger Observatory should lie closer than ~20-30, 80-100 and 180-200 Mpc if the anisotropy signal is mainly composed of oxygen, silicon and iron nuclei respectively. A violation of this constraint would otherwise result in the secondary protons forming a more significant anisotropy signal at lower energies. Even if the source were located closer than this distance, it would require an extraordinary metallicity >120, 1600, 1100 times solar metallicity in the acceleration zone of the source, for oxygen, silicon and iron respectively, to ensure that the concomitantly injected protons not to produce a more significant low energy anisotropy. This offers interesting prospects for constraining the nature and the source of ultra-high energy cosmic rays with the increase in statistics expected from next generation detectors.
16 pages, 3 figures; published in ApJ; comments on Auger's paper modified
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- On ultra-high energy cosmic ray acceleration at the termination shock of young pulsar winds
- Active Galactic Nuclei as potential Sources of Ultra-High Energy Cosmic Rays
- Galactic halo bubble magnetic fields and UHECR deflections
- Searching for All-Scale Anisotropies in the Arrival Directions of Cosmic Rays above the Ankle
- Prospects of detecting a large-scale anisotropy of ultra-high-energy cosmic rays from a nearby source with the K-EUSO orbital telescope
- Maximum entropy analysis of cosmic ray composition