Joint constraint on the propagation origin of the cosmic-ray spectral knee from energy spectrum and anisotropy observations
arXiv:2601.17851 · doi:10.3847/1538-4357/ae3d2d
Abstract
The origin mechanism of the cosmic-ray knee region remains an unresolved mystery, with acceleration, interaction, and propagation models drawing significant attention. The latest experimental observations of the PeV total spectrum, composition energy spectrum, and anisotropy-particularly the precise measurements of the proton spectrum by the LHAASO experiment-have provided crucial breakthroughs in uncovering its origin. Based on the latest LHAASO measurements of the proton energy spectrum, combined with cosmic-ray spectral and anisotropy data, this study proposes that the spectral index variation in the knee region arises from changes in the propagation coefficient. By introducing a knee position and an index variation , we construct a rigidity-dependent double-power-law diffusion model to reproduce the knee-region spectral structure. Through modifications to the diffusion coefficient, we successfully replicate the observed knee-region spectral structure in the LHAASO proton spectrum and calculate the corresponding anisotropy. Under current data and model dependencies, a joint analysis of the energy spectrum and anisotropy does not support the propagation origin model of the cosmic-ray knee at a 95\% confidence level. We hope that future LHAASO experiments will provide precise measurements of the energy spectra and anisotropies of various nuclei in the knee region, thereby offering a definitive test of the propagation model as the origin mechanism of the knee-region spectral structure.
13 pages, 7 figures, accepted for publication in the Astrophysical Journal
References in corpus (22)
- Observation of a Large-scale Anisotropy in the Arrival Directions of Cosmic Rays above eV
- Discrepant hardening observed in cosmic-ray elemental spectra
- Measurement of the cosmic-ray proton spectrum from 40 GeV to 100 TeV with the DAMPE satellite
- The Cosmic Ray Energy Spectrum Observed with the Surface Detector of the Telescope Array Experiment
- Measurement of the cosmic-ray energy spectrum above eV using the Pierre Auger Observatory
- Cosmic-ray propagation with DRAGON2: I. numerical solver and astrophysical ingredients
- The Large Scale Cosmic-Ray Anisotropy as Observed with Milagro
- Measurement of the cosmic ray helium energy spectrum from 70 GeV to 80 TeV with the DAMPE space mission
- Measurement of the Anisotropy of Cosmic Ray Arrival Directions with IceCube
- Evolution of the cosmic ray anisotropy above 10^{14} eV
- Observation of Cosmic Ray Anisotropy with the IceTop Air Shower Array
- Northern sky Galactic Cosmic Ray anisotropy between 10-1000 TeV with the Tibet Air Shower Array
- Observation of Spectral Structures in the Flux of Cosmic-Ray Protons from 50 GeV to 60 TeV with the Calorimetric Electron Telescope on the International Space Station
- Cosmic-ray anisotropies in right ascension measured by the Pierre Auger Observatory
- The primary cosmic-ray energy spectrum measured with the Tunka-133 array
- Measurements of All-Particle Energy Spectrum and Mean Logarithmic Mass of Cosmic Rays from 0.3 to 30 PeV with LHAASO-KM2A
- Large-scale cosmic ray anisotropies with 19 years of data from the Pierre Auger Observatory
- Precise measurements of the cosmic ray proton energy spectrum in the "knee'' region
- Energy spectra of elemental groups of cosmic rays with the KASCADE experiment data and machine learning
- Microquasar jet-cocoon systems as PeVatrons
- Observation of Cosmic-Ray Anisotropy in the Southern Hemisphere with 12 yr of Data Collected by the IceCube Neutrino Observatory
- X-ray Binaries: a potential dominant contributor to the cosmic ray spectral knee structure