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Depth of Maximum of Air-Shower Profiles at the Pierre Auger Observatory: Composition Implications
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Using the data taken at the Pierre Auger Observatory between December 2004 and December 2012, we have examined the implications of the distributions of depths of atmospheric shower maximum (Xmax), using a hybrid technique, for composition and hadronic interaction models. We do this by fitting the distributions with predictions from a variety of hadronic interaction models for variations in the composition of the primary cosmic rays and examining the quality of the fit. Regardless of what interaction model is assumed, we find that our data are not well described by a mix of protons and iron nuclei over most of the energy range. Acceptable fits can be obtained when intermediate masses are included, and when this is done consistent results for the proton and iron-nuclei contributions can be found using the available models. We observe a strong energy dependence of the resulting proton fractions, and find no support from any of the models for a significant contribution from iron nuclei. However, we also observe a significant disagreement between the models with respect to the relative contributions of the intermediate components.
Forward citations
Cited by 3 Pith papers
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Bounds on Lorentz invariance violation from muon fluctuations at the Pierre Auger Observatory
Muon-count fluctuations in Auger air showers exclude first-order Lorentz invariance violation in the hadronic sector down to η ≈ −1.3×10⁻⁶ at the highest confidence level reported.
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Measurement and Interpretation of UHECR Mass Composition at the Pierre Auger Observatory
Auger Phase I data show UHECR composition is mixed and grows heavier above a few EeV, with no robust north-south FD difference.
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Reconstructing Air-Shower Observables using a Universality-Based Model at the Pierre Auger Observatory
A universality-based fit to surface-detector time traces can reconstruct Xmax and muon number, giving preliminary composition results for cosmic rays above 4 EeV, though the mean Xmax scale is calibrated to fluorescence data.
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