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Atmospheric muons measured with the KM3NeT detectors in comparison with updated numeric predictions

  • National Institute for Subatomic Physics
  • National Institute for Nuclear Physics
  • Université de Strasbourg
  • Université de Haute-Alsace
  • CPPM
  • Sharjah Academy for Astronomy, Space Sciences & Technology
  • University of Valencia
  • University of Naples Federico II
  • Polytechnic University of Catalonia
  • Demokritos National Centre for Scientific Research
  • University of Granada
  • Nantes Université
  • Polytechnic University of Valencia
  • Friedrich-Alexander University Erlangen-Nürnberg
  • Mohammed V University in Rabat
  • Université Paris Cité
  • CNRS/IN2P3
  • Czech Technical University in Prague
  • Comenius University
  • University of Bologna
  • University of Campania Luigi Vanvitelli
  • University of Hull
  • North West University
  • Mohamed I University
  • University of Salerno
  • Institute for Space Sciences
  • University of Amsterdam
  • Netherlands Organisation for Applied Scientific Research
  • University of Rome La Sapienza

Research output: Contribution to journalArticlepeer-review

16 Citations (Scopus)
15 Downloads (Pure)

Abstract

The measurement of the flux of muons produced in cosmic ray air showers is essential for the study of primary cosmic rays. Such measurements are important in extensive air shower detectors to assess the energy spectrum and the chemical composition of the cosmic ray flux, complementary to the information provided by fluorescence detectors. Detailed simulations of the cosmic ray air showers are carried out, using codes such as CORSIKA, to estimate the muon flux at sea level. These simulations are based on the choice of hadronic interaction models, for which improvements have been implemented in the post-LHC era. In this work, a deficit in simulations that use state-of-the-art QCD models with respect to the measurement deep underwater with the KM3NeT neutrino detectors is reported. The KM3NeT/ARCA and KM3NeT/ORCA neutrino telescopes are sensitive to TeV muons originating mostly from primary cosmic rays with energies around 10 TeV. The predictions of state-of-the-art QCD models show that the deficit with respect to the data is constant in zenith angle; no dependency on the water overburden is observed. The observed deficit at a depth of several kilometres is compatible with the deficit seen in the comparison of the simulations and measurements at sea level.
Original languageEnglish
Article number696
JournalEuropean Physical Journal C
Volume84
Issue number7
DOIs
Publication statusPublished - Jul 2024

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© The Author(s) 2024.

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