Explaining muon excess in cosmic rays using the gluon condensation model
Bingyang Liu, Zhixiang Yang, Jianhong Ruan

TL;DR
This paper introduces the gluon condensation model to explain the muon excess observed in cosmic ray air showers, linking increased strangeness production to higher muon counts at ground level.
Contribution
The paper proposes a novel gluon condensation model that accounts for muon excess in cosmic ray showers by enhancing strangeness production during initial collisions.
Findings
The model successfully reproduces the observed muon excess.
Increased strangeness production reduces electromagnetic energy transfer.
Simulation results align with experimental muon counts.
Abstract
Ultrahigh-energy cosmic rays are often characterized indirectly by analyzing the properties of secondary cosmic ray particles produced in the collisions with air nuclei. The particle number of muon and the depth of shower maximum after air shower cascade are mostly studied to infer the energy and mass of the incident cosmic rays. Research have shown that there is a significant excess in the observed number of muons arriving at the ground from extensive air showers (EAS) compared to the simulations using the existing cosmic ray hadronic interaction model. To explain this muon excess phenomenon, a new theoretical model, the gluon condensation model (GC model), is introduced in this paper and simulated by using the AIRES engine. We assume that the GC effect appears mainly in the first collision of the cascade leading to a significant increase in the strangeness…
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