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ORIGIN OF THE PROTON-TO-HELIUM RATIO ANOMALY IN COSMIC RAYS

机译:宇宙射线中质子-氦比率异常的起源

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Recent data on Galactic cosmic rays (CRs) revealed that the helium energy spectrum is harder than the proton spectrum. The AMS experiment has now reported that the proton-to-helium ratio as function of rigidity R (momentum-to-charge ratio) falls off steadily as p/He proportional to R-Delta, with Delta = -0.08 between R similar to 40 GV and R similar to 2 TV. Besides, the single spectra of proton and helium are found to progressively harden at R greater than or similar to 100 GV. The p/He anomaly is generally ascribed to particle-dependent acceleration mechanisms occurring in Galactic CR sources. However, this explanation poses a challenge to the known mechanisms of particle acceleration since they are believed to be "universal," composition-blind rigidity mechanisms. Using the new AMS data, we show that the p/He anomaly can be simply explained in terms of a two-component scenario where the GeV-TeV flux is ascribed to a hydrogen-rich source, possibly a nearby supernova remnant, characterized by a soft acceleration spectrum. This simple idea provides a common interpretation for the p/He ratio and for the single spectra of proton and helium: both anomalies are explained by a flux transition between two components. The "universality" of particle acceleration in sources is not violated in this model. A distinctive signature of our scenario is the high-energy flattening of the p/He ratio at multi-TeV energies, which is hinted at by existing data and will be resolutely tested by new space experiments ISS-CREAM and CALET.
机译:关于银河宇宙射线(CR)的最新数据显示,氦能谱比质子谱更难。 AMS实验现已报告,作为刚性R(动能荷电比)函数的质子/氦气比率随着p / He与R-Delta成正比而稳步下降,R = 40之间的Delta = -0.08 GV和R类似于2电视。此外,发现质子和氦的单光谱在大于或类似于100 GV的R处逐渐硬化。 p / He异常通常归因于银河CR源中发生的与粒子有关的加速机制。但是,这种解释对已知的粒子加速机制提出了挑战,因为它们被认为是“通用的”成分盲刚性机制。使用新的AMS数据,我们显示p / He异常可以简单地用两组分情况来解释,其中GeV-TeV通量归因于富氢源,可能是附近的超新星残留物,其特征是软加速度谱。这个简单的想法为p / He比以及质子和氦的单光谱提供了一种通用的解释:两个异常都可以通过两个分量之间的通量跃迁来解释。在该模型中没有违反源中粒子加速的“通用性”。我们的情景的一个显着特征是多TeV能量下p / He比的高能平坦化,现有数据暗示了这一点,并将通过新的空间实验ISS-CREAM和CALET进行严格测试。

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