English

The Cosmic-Ray Composition between 2 PeV and 2 EeV Observed with the TALE Detector in Monocular Mode

High Energy Astrophysical Phenomena 2021-03-22 v2

Abstract

We report on a measurement of the cosmic ray composition by the Telescope Array Low-Energy Extension (TALE) air fluorescence detector (FD). By making use of the Cherenkov light signal in addition to air fluorescence light from cosmic ray (CR) induced extensive air showers, the TALE FD can measure the properties of the cosmic rays with energies as low as 2\sim 2 PeV and exceeding 1 EeV. In this paper, we present results on the measurement of XmaxX_{\rm max} distributions of showers observed over this energy range. Data collected over a period of 4\sim 4 years was analyzed for this study. The resulting XmaxX_{\rm max} distributions are compared to the Monte Carlo (MC) simulated data distributions for primary cosmic rays with varying composition and a 4-component fit is performed. The comparison and fit are performed for energy bins, of width 0.1 or 0.2 in log10(E/eV)\log_{10} (E/{\rm eV}), spanning the full range of the measured energies. We also examine the mean XmaxX_{\rm max} value as a function of energy for cosmic rays with energies greater than 1015.810^{15.8} eV. Below 1017.310^{17.3} eV, the slope of the mean XmaxX_{\rm max} as a function of energy (the elongation rate) for the data is significantly smaller than that of all elements in the models, indicating that the composition is becoming heavier with energy in this energy range. This is consistent with a rigidity-dependent cutoff of events from galactic sources. Finally, an increase in the XmaxX_{\rm max} elongation rate is observed at energies just above 101710^{17} eV indicating another change in the cosmic rays composition.

Keywords

Cite

@article{arxiv.2012.10372,
  title  = {The Cosmic-Ray Composition between 2 PeV and 2 EeV Observed with the TALE Detector in Monocular Mode},
  author = {Telescope Array Collaboration},
  journal= {arXiv preprint arXiv:2012.10372},
  year   = {2021}
}

Comments

20 pages, 22 figures, accepted for publication in ApJ