Modeling Strangeness Enhancements to resolve the Muon Excess in Cosmic Ray Extensive Air Shower Data
arXiv:2208.04266 · doi:10.1088/1475-7516/2023/02/017
Abstract
Experimental observations of extensive air showers have revealed an excess of the muon content with respect to their theoretical simulations, which we refer to as the muon puzzle. This muon puzzle hampers a precise determination of the ultra-high-energy cosmic ray mass composition. We investigate the potential of producing states of dense quark-gluon matter (which we call fireballs) to resolve the muon puzzle as quantified with data from the Pierre Auger Observatory on the depth of the shower maximum and the number of muons at ground. Adopting a phenomenological fireball model, we find that the inelasticity enhancement associated with the formation of a plasma state is in tension with data on the electromagnetic longitudinal shower development. Instead, we restrict the fireball model to only enhance the strangeness produced in Standard Model hadronic interactions, and dub this model the strangeball model. With an analytic approach based on the Heitler-Matthews model we then find explicit sets of strangeball parameters that resolve the muon puzzle. Constraints from data on shower-to-shower fluctuations of the muon number require strangeness enhancements already at energies accessible to current-generation collider experiments. At Tevatron and LHC energies we estimate 40% of the interactions to produce strangeballs, corresponding to a 5-9% increase of the average fraction of energy retained in the hadronic cascade compared to predictions from current hadronic interaction models. A comparison with relevant measurements of the LHCf and LHCb detectors does not directly exclude this scenario, though the obtained tension with LHCb suggests a stringent test at 14 TeV.
This is the Accepted Manuscript version of an article accepted for publication in Journal of Cosmology and Astroparticle Physics. Neither SISSA Medialab Srl nor IOP Publishing Ltd is responsible for any errors or omissions in this version of the manuscript or any version derived from it. The Version of Record is available online at DOI 10.1088/1475-7516/2023/02/017. 29 pages, 13 figures, 3 tables
References in corpus (18)
- Depth of Maximum of Air-Shower Profiles at the Pierre Auger Observatory: Measurements at Energies above 10^17.8 eV
- One-dimensional Hybrid Approach to Extensive Air Shower Simulation
- Core-Corona Separation in Ultra-Relativistic Heavy Ion Collisions
- Measurement of the cosmic-ray energy spectrum above eV using the Pierre Auger Observatory
- Hadronic Multiparticle Production at Ultra-High Energies and Extensive Air Showers
- The Muon Puzzle in cosmic-ray induced air showers and its connection to the Large Hadron Collider
- Report on Tests and Measurements of Hadronic Interaction Properties with Air Showers
- Evidence for a mixed mass composition at the `ankle' in the cosmic-ray spectrum
- Measurement of the fluctuations in the number of muons in extensive air showers with the Pierre Auger Observatory
- Strangeness production from SPS to LHC
- Centrality dependence of strangeness production in heavy-ion collisions as a geometrical effect of core-corona superposition
- An explanation of the muon puzzle of ultrahigh-energy cosmic rays and the role of the Forward Physics Facility for model improvement
- From Strangeness Enhancement to Quark-Gluon Plasma Discovery
- Strangeness enhancement across collision systems without a plasma
- Muon production and string percolation effects in cosmic rays at the highest energies
- Brief history of the search for critical structures in heavy-ion collisions
- Air shower genealogy for muon production
- Size of the thermal source in relativistic heavy-ion collisions