The 11-yr variation of galactic cosmic-ray flux lags behind the variation of the sunspot number. An average <^>1-yr time-lag is expected from the outward propagating solar wind with the frozen-in photospheric magnetic field varying in the solar cycle, and from the inward diffusive transport of cosmic-ray particles. The long-term neutron monitor data, however, show that the time-lag is significantly longer (shorter) in the odd (even) solar cycle. In this paper, we analyze the time-lag in proton and electron fluxes observed by the Calorimetric Electron Telescope (CALET). It is found that the time-lag is similar in proton and electron fluxes during an A > 0 polarity epoch of the solar dipole magnetic field. In an even solar cycle 24 including a polarity reversal from A < 0 to A > 0 , on the other hand, it is found that the time-lag of proton (electron) flux variation is significantly shorter (longer) than the average similar to 1-yr lag by analyzing the combined data with CALET and AMS-02. This is the first observation of the charge-sign dependent time-lag. We demonstrate that these observations can be qualitatively interpreted in terms of different 11-yr time profiles of proton and electron fluxes in A > 0 and A < 0 epochs expected from the drift effect.
Adriani, O., Akaike, Y., Asano, K., Asaoka, Y., Berti, E., Betti, P., et al. (2026). Charge-Sign Dependent Drift Effects in the Time-Lag of Cosmic-Ray Variation Relative to Solar Activity Observed with the Calorimetric Electron Telescope (CALET). PROGRESS OF THEORETICAL AND EXPERIMENTAL PHYSICS, 2026(3) [10.1093/ptep/ptag025].
Charge-Sign Dependent Drift Effects in the Time-Lag of Cosmic-Ray Variation Relative to Solar Activity Observed with the Calorimetric Electron Telescope (CALET)
Bigongiari G.;Brogi P.;Checchia C.;Maestro P.;Marrocchesi P. S.;Mattiazzi M.;Messineo A. M.;Stolzi F.;
2026-01-01
Abstract
The 11-yr variation of galactic cosmic-ray flux lags behind the variation of the sunspot number. An average <^>1-yr time-lag is expected from the outward propagating solar wind with the frozen-in photospheric magnetic field varying in the solar cycle, and from the inward diffusive transport of cosmic-ray particles. The long-term neutron monitor data, however, show that the time-lag is significantly longer (shorter) in the odd (even) solar cycle. In this paper, we analyze the time-lag in proton and electron fluxes observed by the Calorimetric Electron Telescope (CALET). It is found that the time-lag is similar in proton and electron fluxes during an A > 0 polarity epoch of the solar dipole magnetic field. In an even solar cycle 24 including a polarity reversal from A < 0 to A > 0 , on the other hand, it is found that the time-lag of proton (electron) flux variation is significantly shorter (longer) than the average similar to 1-yr lag by analyzing the combined data with CALET and AMS-02. This is the first observation of the charge-sign dependent time-lag. We demonstrate that these observations can be qualitatively interpreted in terms of different 11-yr time profiles of proton and electron fluxes in A > 0 and A < 0 epochs expected from the drift effect.| File | Dimensione | Formato | |
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https://hdl.handle.net/11365/1317273
