A Heavy-metal Scenario of Ultra-high-energy Cosmic Rays

Jakub Vícha, Alena Bakalová, Ana L. Müller, Olena Tkachenko and Maximilian K. Stadelmaier
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Abstract

The mass composition of ultra-high-energy cosmic rays is an open problem in astroparticle physics. It is usually inferred from the depth of the shower maximum (Xmax) of cosmic-ray showers, which is only ambiguously determined by modern hadronic interaction models. We examine a data-driven scenario, in which we consider the expectation value of Xmax as a free parameter. We test the novel hypothesis of whether the cosmic-ray data from the Pierre Auger Observatory can be interpreted in a consistent picture, under the assumption that the mass composition of cosmic rays at the highest energies is dominated by high metallicity, resulting in pure iron nuclei at energies above ≈40 EeV. We investigate the implications on astrophysical observations and hadronic interactions, and we discuss the global consistency of the data assuming this heavy-metal scenario. We conclude that the data from the Pierre Auger Observatory can be interpreted consistently if the expectation values for Xmax from modern hadronic interaction models are shifted to larger values.
超高能量宇宙射线的重金属场景
超高能宇宙射线的质量组成是天体粒子物理学中的一个开放性问题。它通常是从宇宙射线阵雨的最大阵雨深度(Xmax)推断出来的,而现代强子相互作用模型只能模糊地确定它。我们研究一个数据驱动的场景,在这个场景中,我们将Xmax的期望值视为一个自由参数。我们测试了一个新的假设,即皮埃尔·奥格天文台的宇宙射线数据是否可以在一个一致的图像中解释,假设最高能量的宇宙射线的质量组成由高金属丰度主导,导致能量高于≈40 EeV的纯铁核。我们研究了对天体物理观测和强子相互作用的影响,并讨论了假设这种重金属情景的数据的全球一致性。我们的结论是,如果将现代强子相互作用模型的Xmax期望值移到更大的值,皮埃尔·奥格天文台的数据可以得到一致的解释。
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