On the Accuracy of Underground Muon Intensity Calculations
arXiv:2109.11559 · doi:10.3847/1538-4357/ac5027
Abstract
Cosmic ray muons detected by deep underground and underwater detectors have served as an information source on the high-energy cosmic ray spectrum and hadronic interactions in air showers for almost a century. The theoretical interest in underground muons has nearly faded because space-borne experiments probe the cosmic ray spectrum more directly, and accelerators provide precise measurements of hadron yields. However, underground muons probe unique hadron interaction energies and phase space, which are still inaccessible to present accelerator experiments. The cosmic ray nucleon energies reach the hundred-TeV and PeV ranges, which are barely accessible with space-borne experiments. Our new calculation combines two modern computational tools: MCEq, for surface muon fluxes, and PROPOSAL, for underground transport. We demonstrate excellent agreement with measurements of cosmic ray muon intensities underground within estimated errors. Beyond that, the precision of historical data turns out to be significantly smaller than our error estimates. This result shows that the sources of high-energy atmospheric lepton flux uncertainties at the surface or underground can be significantly constrained without taking more data or building new detectors. The reduction of uncertainties can be expected to impact data analyses at large-volume neutrino telescopes and for the design of future ton-scale direct dark matter detectors.
15 pages, 12 figures, accepted for publication in ApJ. Added references and new figure in Section 4
References in corpus (15)
- Observation and Characterization of a Cosmic Muon Neutrino Flux from the Northern Hemisphere using six years of IceCube data
- Calculation of atmospheric neutrino flux using the interaction model calibrated with atmospheric muon data
- One-dimensional Hybrid Approach to Extensive Air Shower Simulation
- Measurement of the multi-TeV neutrino cross section with IceCube using Earth absorption
- Uncertainties in Atmospheric Neutrino Fluxes
- The spectrum of high-energy cosmic rays measured with KASCADE-Grande
- Muon simulation codes MUSIC and MUSUN for underground physics
- Inclusive production of charged pions in p+C collisions at 158 GeV/c beam momentum
- Influence of hadronic interaction models and the cosmic ray spectrum on the high energy atmospheric muon and neutrino flux
- Study of cosmic ray interaction model based on atmospheric muons for the neutrino flux calculation
- High-energy neutrino fluxes and flavor ratio in the Earth's atmosphere
- Uncertainties in Atmospheric Muon-Neutrino Fluxes Arising from Cosmic-Ray Primaries
- High-energy atmospheric muon flux calculations in comparison with recent measurements
- Atmospheric neutrinos and the knee of the Cosmic Ray spectrum
- Neutron Production by Cosmic-Ray Muons in Various Materials
Cited by in corpus (9)
- DAEMONFLUX: DAta-drivEn MuOn-calibrated atmospheric Neutrino Flux
- Data-driven hadronic interaction model for atmospheric lepton flux calculations
- Sibyll
- Atmospheric muons measured with the KM3NeT detectors in comparison with updated numeric predictions
- Prometheus: An Open-Source Neutrino Telescope Simulation
- Cosmic Ray Muons in Laboratories Deep Underground
- Atmospheric muons and their variations with temperature
- The SABRE South Technical Design Report Executive Summary
- Cosmogenic Muon Background Characterization for the Colorado Underground Research Institute (CURIE)