论文标题

Snowmass 2021 LOI:确定局部星际培养基中具有全天各向异性观测的宇宙射线特性

Snowmass 2021 LoI: Determination of cosmic ray properties in the local interstellar medium with all-sky anisotropy observations

论文作者

Desiati, Paolo, Vélez, Juan Carlos Díaz, Pogorelov, Nikolai, Zhang, Ming

论文摘要

星际介质(ISM)中银河宇宙射线(CR)的传播是粒子天体物理学中未解决的问题之一。 CR光谱和组成测量的解释及其与暗物质的可能联系至关重要地依赖于我们对银河系中CR传播的理解。几项空气淋浴实验测量了TEV到PEV能量范围的CRS的显着各向异性。这些观察结果暗示了复杂的重叠多个原因:从银河系的CR分布到此类来源的性质,从星际等离子体的湍流特性到星际介质的不均匀性。相干磁性结构(例如Heliosphere)极大地影响了CR到达方向分布。如果我们要确定局部星际介质(LISM)的原始CR到达方向分布,则必须考虑并消除地球层的失真效果,这是太阳系周围的环境,直到粒子平均自由路径的距离。最近在CR到达方向分布的准确的全套地图和地球层建模中的最新进步的可用性使得使用Liouville映射技术可以推断Lism中的Cr螺距角分布。借助星际CR分布,我们可以研究Cr扩散的全球特征,利用星际等离子体湍流的特性,检验最近和局部CR源假说以及暗物质团的作用在观察到的CR观测中。这项研究可能导致旨在更好地理解地球球的发展,尤其是具有ISM的边界区域,以及对局势特性的其他约束。

Propagation of Galactic cosmic rays (CR) in the interstellar medium (ISM) is among the unsolved problems in particle astrophysics. Interpretation of CR spectrum and composition measurements and their possible link to dark matter crucially relies on our understanding of CR propagation in the Galaxy. Several air shower experiments have measured a significant anisotropy of CRs in the TeV to PeV energy range. These observations hint to a complicated overlap of more than one cause: from the distribution of the CR sources in the Milky Way to the nature of such sources, from the turbulence properties of interstellar plasmas to the inhomogeneous nature of the interstellar medium. Coherent magnetic structures such as the heliosphere greatly influence the CR arrival direction distribution. It is necessary to account for and remove the heliosphere's distortion effects if we want to determine the pristine CR arrival direction distribution in the local interstellar medium (LISM), the environment surrounding the solar system up to the distance of particle mean free path. The recent availability of accurate all-sky maps of CR arrival direction distribution and the latest advancements in heliospheric modeling, make it possible to infer the CR pitch angle distribution in the LISM using a Liouville mapping technique. With the interstellar CR distribution, we can study the global characteristics of CR diffusion, tap into the properties of interstellar plasma turbulence, test the recent and local CR source hypothesis, and whether clumps of dark matter have a role in the observed CR observations. The study can lead to developments aiming to a better understanding of the heliosphere, particularly the boundary region with the ISM, and additional constraints on the LISM properties.

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