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On inconsistency of experimental data on primary nuclei spectra with sea level muon intensity measurements

机译:关于原核光谱实验数据与海平面μ子强度测量值的不一致

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摘要

For the first time a complete set of the most recent direct data on primary cosmic ray spectra is used as input into calculations of muon flux at sea level in wide energy range $E_\mu=1-3\cdot10^5$ GeV. Computations have been performed with the CORSIKA/QGSJET and CORSIKA/VENUS codes. The comparison of the obtained muon intensity with the data of muon experiments shows, that measurements of primary nuclei spectra conform to sea level muon data only up to several tens of GeV and result in essential deficit of muons at higher energies. As it follows from our examination, uncertainties in muon flux measurements and in the description of nuclear cascades development are not suitable to explain this contradiction, and the only remaining factor, leading to this situation, is underestimation of primary light nuclei fluxes. We have considered systematic effects, that may distort the results of the primary cosmic ray measurements with the application of the emulsion chambers. We suggest, that re-examination of these measurements is required with the employment of different hadronic interaction models. Also, in our point of view, it is necessary to perform estimates of possible influence of the fact, that sizable fraction of events, identified as protons, actually are antiprotons. Study of these cosmic ray component begins to attract much attention, but today nothing definite is known for the energies $>40$ GeV. In any case, to realize whether the mentioned, or some other reasons are the sources of disagreement of the data on primaries with the data on muons, the indicated effects should be thoroughly analyzed.
机译:第一次将完整的一次宇宙射线光谱的最新直接数据集用作宽能量范围$ E_ \ mu = 1-3 \ cdot10 ^ 5 $ GeV中海平面μ子通量计算的输入。已经使用CORSIKA / QGSJET和CORSIKA / VENUS代码进行了计算。所获得的μ子强度与μ子实验数据的比较表明,初级核能谱的测量仅在高达几十个GeV时才符合海平面μ子数据,并导致高能时μ子的基本缺陷。从我们的检查中可以得出,μ子通量测量和核级联发展描述中的不确定性不适合用来解释这种矛盾,导致这种情况的唯一剩余因素是低估了初级光核通量。我们已经考虑了系统性的影响,这些影响可能会随着乳化室的应用而使主要宇宙射线测量的结果失真。我们建议,使用不同的强子相互作用模型需要对这些测量值进行重新检验。同样,根据我们的观点,有必要对事实的可能影响进行估计,事件的相当大一部分(被识别为质子)实际上是反质子。对这些宇宙射线成分的研究开始引起人们的广泛关注,但是今天对于能量大于40 GeV的能量尚无定论。在任何情况下,为了弄清上述或其他一些原因是否是原色数据与μ子数据不一致的原因,应彻底分析所指出的效果。

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