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Three-dimensional local anisotropy of velocity fluctuations in the solar wind

2019/04/08 by Andrea Verdini, Roland Grappin, Olga Alexandrova +4
Biochemistry, Genetics and Molecular Biology · Physics and Astronomy · #Anisotropy #Astrophysics #Computational physics #Condensed matter physics #Flattening #Geomagnetism and Paleomagnetism Studies #Geometry #Ionosphere and magnetosphere dynamics #Magnetic field #Optics #Physics #Quantum mechanics #Ribbon #Scaling #Solar and Space Plasma Dynamics #Solar wind #Spectral index #Spectral line #astro-ph.SR #physics.plasm-ph #physics.space-ph

paper · pdf · doi:10.1093/mnras/stz1041

accepted in MNRAS

arxiv created 2019/04/08 · openalex publication_date 2019/04/12 · arxiv updated 2019/04/24 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/06

Abstract

We analyse velocity fluctuations in the solar wind at magneto-fluid scales in two data sets, extracted from Wind data in the period 2005–2015, that are characterized by strong or weak expansion. Expansion affects measurements of anisotropy because it breaks axisymmetry around the mean magnetic field. Indeed, the small-scale three-dimensional local anisotropy of magnetic fluctuations (δB) as measured by structure functions (SFB) is consistent with tube-like structures for strong expansion. When passing to weak expansion, structures become ribbon-like because of the flattening of SFB along one of the two perpendicular directions. The power-law index that is consistent with a spectral slope −5/3 for strong expansion now becomes closer to −3/2. This index is also characteristic of velocity fluctuations in the solar wind. We study velocity fluctuations (δV) to understand if the anisotropy of their structure functions (SFV) also changes with the strength of expansion and if the difference with the magnetic spectral index is washed out once anisotropy is accounted for. We find that SFV is generally flatter than SFB. When expansion passes from strong to weak, a further flattening of the perpendicular SFV occurs and the small-scale anisotropy switches from tube-like to ribbon-like structures. These two types of anisotropy, common to SFV and SFB, are associated with distinct large-scale variance anisotropies of δB in the strong- and weak-expansion data sets. We conclude that SFV show anisotropic three-dimensional scaling similar to SFB, with however systematic flatter scalings, reflecting the difference between global spectral slopes.

Citations