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On the Regulation of the Solar Wind Helium Abundance by the Hydrogen CompressibilityTraditionally, fast solar wind is considered to originate in solar source regions that are continuously open to the heliosphere and slow wind originates in regions that are intermittently open to it. In fast wind, the gradient of the solar wind helium abundance (AHe) with increasing solar wind speed (Vsw) is ~ 0 and is fixed at ~50% of the photospheric value. In slow wind, this gradient is large and AHe is highly variable and AHe doesn't exceed this ~ 50% value. Although the normalized cross helicity in fast wind typically approaches 1, this is not universally true and Alterman & D'Amicis (2025) show that ∇ Vsw AHe in fast wind unexpectedly increases with decreasing |σ c| . We show that these large gradients are due to the presence of compressive fluctuations. Accounting for the solar wind's compressibility (|δ η H/η h|), there are two subsets of enhanced in excess of typical fast wind values. The subset with a large compressibility is likely from neither continuously nor intermittently open sources. The portion of the solar wind speed distribution over which these fluctuations are most significant corresponds to the range of Alfvén wave-poor solar wind from continuously open source regions, which is likely analogous to the Alfvénic slow wind. Mapping the results of this work to Alterman & D'Amicis (2025) and vice versa shows that, in any given|δ η H/η h| quantile,|σ c| ≲ 0.65 , an upper bound on non-Alfvénic cross helicity. Similarly, |δ η H/η h| ≲ 0.15 in any given |σ c| quantile, is an upper bound on incompressible fluctuations. We conclude that|δ η H/η h| is essential for characterizing the solar wind helium abundance and possibly regulating it.
Document ID
20250009889
Acquisition Source
Goddard Space Flight Center
Document Type
Preprint (Draft being sent to journal)
Authors
B L Alterman
(Goddard Space Flight Center Greenbelt, United States)
Raffaella D'Amicis ORCID
(National Institute for Astrophysics Rome, Italy)
Date Acquired
October 8, 2025
Publication Date
October 13, 2025
Publication Information
Publication: The Astrophysical Journal Letters
Publisher: Institute of Physics
ISSN: 2041-8205
e-ISSN: 2041-8213
Subject Category
Solar Physics
Physics (General)
Funding Number(s)
CONTRACT_GRANT: 80NSSC22K1011
CONTRACT_GRANT: 80NSSC22K0645
WBS: 996805.05.06.02
WBS: 936723.02.01.13.36
WBS: 388443.04.01
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
Single Expert
Keywords
Magnetohydrodynamics
alfven waves
chemical abundances
abundance ratios
slow solar wind
Fast solar wind
solar wind
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