Equatorial Flux Cancellation Imprinted in Solar Wind Helium: A Reliable Herald of the Solar Cycle Transition

Background: Predicting the onset of a new solar cycle is challenging because the sunspot minimum can only be identified retrospectively. A real time, in situ proxy is needed. Purpose: We investigate whether the solar wind helium abundance ( A He ) provides a reliable herald of cycle onset and test the hypothesis that equatorial flux cancellation drives the observed “shutoff” event. Methods: Using ACE/SWICS, Wind/SWE, and OMNI data (1995–2025), we analysed daily A He across the Cycle 23?24 and Cycle 24-25 minima. Equatorial flux cancellation rates R cancel were derived from SOHO/MDI and SDO/HMI magnetograms. Cross?correlation and linear regression quantified the relationship between the A He shutoff and peak cancellation. Findings: A He exhibits a three-phase pattern: a pre-minimum rise, a sharp shutoff (15–30 days, 60–80% drop), and rapid recovery. The shutoff precedes the smoothed sunspot minimum by 22–117 days. Peak R cancel leads the shutoff by 19 days on average (cross correlation 0.84, p <0.005), and the helium drop magnitude scales with R cancel , peak ( r =0.71, p =0.002). Conclusion: Equatorial flux cancellation imprints a distinct, repeatable signature in solar wind helium, providing a robust, real?time herald of solar cycle transition. Recommendation: Continuous A He monitoring at L1 should become a standard operational tool for cycle onset prediction, with an alert issued when shutoff recovery exceeds 50% of the pre?shutoff level. We predict the Cycle 26 shutoff between April–October 2029.

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Journal
Frontiers.
Published
2026-10-09
DOI
https://doi.org/10.11648/j.frontiers.20260604.11
Primary Topic
Solar and Space Plasma Dynamics
Type
article
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article

Equatorial Flux Cancellation Imprinted in Solar Wind Helium: A Reliable Herald of the Solar Cycle Transition

Belay Sitotaw Goshu
Frontiers.
Solar and Space Plasma Dynamics
article

Equatorial Flux Cancellation Imprinted in Solar Wind Helium: A Reliable Herald of the Solar Cycle Transition

Belay Sitotaw Goshu
article en

Abstract

Background: Predicting the onset of a new solar cycle is challenging because the sunspot minimum can only be identified retrospectively. A real time, in situ proxy is needed. Purpose: We investigate whether the solar wind helium abundance ( A He ) provides a reliable herald of cycle onset and test the hypothesis that equatorial flux cancellation drives the observed “shutoff” event. Methods: Using ACE/SWICS, Wind/SWE, and OMNI data (1995–2025), we analysed daily A He across the Cycle 23?24 and Cycle 24-25 minima. Equatorial flux cancellation rates R cancel were derived from SOHO/MDI and SDO/HMI magnetograms. Cross?correlation and linear regression quantified the relationship between the A He shutoff and peak cancellation. Findings: A He exhibits a three-phase pattern: a pre-minimum rise, a sharp shutoff (15–30 days, 60–80% drop), and rapid recovery. The shutoff precedes the smoothed sunspot minimum by 22–117 days. Peak R cancel leads the shutoff by 19 days on average (cross correlation 0.84, p <0.005), and the helium drop magnitude scales with R cancel , peak ( r =0.71, p =0.002). Conclusion: Equatorial flux cancellation imprints a distinct, repeatable signature in solar wind helium, providing a robust, real?time herald of solar cycle transition. Recommendation: Continuous A He monitoring at L1 should become a standard operational tool for cycle onset prediction, with an alert issued when shutoff recovery exceeds 50% of the pre?shutoff level. We predict the Cycle 26 shutoff between April–October 2029.

Frontiers.Vol. 6(4)
Dire Dawa University (ET)
Openalex Percentile: Top 14%
Solar and Space Plasma Dynamics
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