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Magnetic Field Intermittency in the Solar Wind: Parker Solar Probe and SolO Observations Ranging from the Alfvén Region up to 1AU

Authors :
Nikos Sioulas
Zesen Huang
Marco Velli
Rohit Chhiber
Manuel E. Cuesta
Chen Shi
William H. Matthaeus
Riddhi Bandyopadhyay
Loukas Vlahos
Trevor A. Bowen
Ramiz A. Qudsi
Stuart D. Bale
Christopher J. Owen
P. Louarn
A. Fedorov
Milan Maksimovic
Michael L. Stevens
Anthony Case
Justin Kasper
Davin Larson
Marc Pulupa
Roberto Livi
Source :
The Astrophysical Journal. 934(2)
Publication Year :
2022
Publisher :
United States: NASA Center for Aerospace Information (CASI), 2022.

Abstract

Parker Solar Probe (PSP) and SolO data are utilized to investigate magnetic field intermittency in the solar wind (SW). Small-scale intermittency (20−100 di) is observed to radially strengthen when methods relying on higher-order moments are considered (SFq; SDK), but no clear trend is observed at larger scales. However, lower-order moment-based methods (e.g., partial variance of increments; PVI) are deemed more appropriate for examining the evolution of the bulk of coherent structures (CSs), PVI ≥ 3. Using PVI, we observe a scale-dependent evolution in the fraction of the data set occupied by CSs, fPVI≥3. Specifically, regardless of the SW speed, a subtle increase is found in fPVI≥3 for ℓ = 20 di, in contrast to a more pronounced radial increase in CSs observed at larger scales. Intermittency is investigated in relation to plasma parameters. Though, slower SW speed intervals exhibit higher fPVI≥6 and higher kurtosis maxima, no statistical differences are observed for fPVI≥3. Highly Alfvénic intervals display lower levels of intermittency. The anisotropy with respect to the angle between the magnetic field and SW flow, ΘVB is investigated. Intermittency is weaker at ΘVB ≈ 0° and is strengthened at larger angles. Considering the evolution at a constant alignment angle, a weakening of intermittency is observed with increasing advection time of the SW. Our results indicate that the strengthening of intermittency in the inner heliosphere is driven by the increase in comparatively highly intermittent perpendicular intervals sampled by the probes with increasing distance, an effect related directly to the evolution of the Parker spiral.

Subjects

Subjects :
Solar Physics

Details

Language :
English
ISSN :
15384357 and 0004637X
Volume :
934
Issue :
2
Database :
NASA Technical Reports
Journal :
The Astrophysical Journal
Notes :
80NSSC18K1648, , HQ-SG-FSP, , HQ-NASA-HPAC, , 80GSFC23CA004, , NNN06AA01C
Publication Type :
Report
Accession number :
edsnas.20230001291
Document Type :
Report
Full Text :
https://doi.org/10.3847/1538-4357/ac7aa2