论文标题

了解银河宇宙射线各向异性的相位逆转

Understanding the phase reversals of Galactic cosmic ray anisotropies

论文作者

Qiao, Bing-Qiang, Luo, Qing, Yuan, Qiang, Guo, Yi-Qing

论文摘要

能量光谱和各向异性是对宇宙射线起源的非常重要的探针。最近的测量表明,在光谱和能量依赖性各向异性中都存在复杂但非常有趣的结构,表明这些结构的共同起源。特别有趣的现象是,偶极性各向异性的阶段有逆转,这挑战了理论建模。在这项工作中,我们首次确定可能在$ \ sim \ sim 100 $ GEV偶极运动中可能会有额外的相位逆转,如少数地下宇宙探测器所示,而费米卫星的第一个直接测量是与光谱的数百GV Hartenings的第一个直接测量。我们建议,这两个相位逆转以及振幅和光谱的能量进化,可以自然地用附近的源重叠到弥漫性背景上。结果,光谱和各向异性可以理解为该模型的标量和矢量成分,而阶段的两个逆转仅表征了附近源和背景之间宇宙射线流的竞争。沿局部大规模磁场的宇宙射线流的对准可能在调节宇宙射线传播中起重要但次主导的作用。通过空间探测器和通过空气淋浴实验对单个物种进行高能的各向异性进化的更精确测量对于进一步测试这种情况至关重要。

The energy spectra and anisotropies are very important probes of the origin of cosmic rays. Recent measurements show that complicated but very interesting structures exist, at similar energies, in both the spectra and energy-dependent anisotropies, indicating a common origin of these structures. Particularly interesting phenomenon is that there is a reversal of the phase of the dipole anisotropies, which challenges a theoretical modeling. In this work, for the first time, we identify that there might be an additional phase reversal at $\sim 100$ GeV energies of the dipole anisotropies as indicated by a few underground muon detectors and the first direct measurement by the Fermi satellite, coincident with the hundreds of GV hardenings of the spectra. We propose that these two phase reversals, together with the energy-evolution of the amplitudes and spectra, can be naturally explained with a nearby source overlapping onto the diffuse background. As a consequence, the spectra and anisotropies can be understood as the scalar and vector components of this model, and the two reversals of the phases characterize just the competition of the cosmic ray streamings between the nearby source and the background. The alignment of the cosmic ray streamings along the local large-scale magnetic field may play an important but sub-dominant role in regulating the cosmic ray propagation. More precise measurements of the anisotropy evolution at both low energies by space detectors and high energies by air shower experiments for individual species will be essential to further test this scenario.

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