论文标题

从UHE加速器逃脱的宇宙射线的观察性约束

Observational constraints on cosmic-ray escape from UHE accelerators

论文作者

Luce, Quentin, Marafico, Sullivan, Biteau, Jonathan, Condorelli, Antonio, Deligny, Olivier

论文摘要

已经证明,在特定的天体物理环境中加速的超高能宇宙射线(UHECR)的相互作用已显示出与从约束区逃脱的二级中子的能量产生速率不同。在这里,我们旨在通过UHECR的通量和组成的现象学建模来测试源源相互作用的通用情况。我们拟合了一个模型,其中核子和核遵循不同的颗粒能分布到全颗粒能谱,踝踝能量以下的质子光谱以及高于该能量的最大淋浴深度的分布,如Pierre钻孔天文台所推断。我们可以通过使用源自局部和大尺度上遵循胶外物质密度的来源的空间分布来复制数据,从而为宇宙加速器中的发射机制提供了一组现实的约束,以使其能量学以及远离环境的元素的丰富度。虽然在地球上观察到的宇宙射线质量数的准单元素增加从$ {\ simeq} \:2 \:2 \:$ eev到最高的能量,需要用硬光谱索引加速核的最高能量,而质子的质子的推断为$ {$ {\ simeq} \:0.6 \:0.6:比现在通常获得的。我们证明,跨脚踝进行UHECR数据进行建模证实了在强大的统计框架中源头相互作用的猜想,尽管将机制推向了极端。

Interactions of ultra-high energy cosmic rays (UHECRs) accelerated in specific astrophysical environments have been shown to shape the energy production rate of nuclei differently from that of the secondary neutrons escaping from the confinement zone. Here, we aim at testing a generic scenario of in-source interactions through a phenomenological modeling of the flux and composition of UHECRs. We fit a model in which nucleons and nuclei follow different particle energy distributions to the all-particle energy spectrum, proton spectrum below the ankle energy and distributions of maximum shower depths above this energy, as inferred at the Pierre Auger Observatory. We obtain that the data can be reproduced using a spatial distribution of sources that follows the density of extragalactic matter on both local and large scales, providing hence a realistic set of constraints for the emission mechanisms in cosmic accelerators, for their energetics and for the abundances of elements at escape from their environments. While the quasi mono-elemental increase of the cosmic-ray mass number observed on Earth from ${\simeq}\: 2\:$EeV up to the highest energies calls for nuclei accelerated with a hard spectral index, the inferred flux of protons down to ${\simeq}\: 0.6\:$ EeV is shown to require for this population a spectral index significantly softer than that generally obtained up to now. We demonstrate that modeling UHECR data across the ankle substantiate the conjecture of in-source interactions in a robust statistical framework, although pushing the mechanism to the extreme.

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