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Isotropization and Evolution of Energy-Containing Eddies in Solar Wind Turbulence: Parker Solar Probe, Helios 1, ACE, WIND, and Voyager 1 We examine the radial evolution of correlation lengths perpendicular (l^ C) and parallel (  lC) to the magnetic-field direction, computed from solar wind magnetic-field data measured by Parker Solar Probe (PSP) during its first eight orbits, Helios 1, Advanced Composition Explorer (ACE), WIND, and Voyager 1 spacecraft. Correlation lengths are grouped by an interval’s alignment angle; the angle between the magnetic-field and solar wind velocity vectors (ΘBV). Parallel and perpendicular angular channels correspond to angles 0° < ΘBV < 40° and 50° < ΘBV < 90°, respectively. We observe an anisotropy in the inner heliosphere within 0.40 au, with  l l »^ 0.75 C C at 0.10 au. This anisotropy reduces with increasing heliocentric distance and the correlation lengths roughly isotropize within 1 au. Results from ACE and WIND support a reversal of the anisotropy, such that  l l »^ 1.29 C C at 1 au. The ratio does not appear to change significantly beyond 1 au, although the small number of parallel intervals in the Voyager data set precludes unambiguous conclusions from being drawn. This study provides insights regarding the radial evolution of the large, most energetic interacting turbulent fluctuations in the heliosphere. We also emphasize the importance of tracking the changes in sampling direction in PSP measurements
as the spacecraft approaches the Sun, when using these data to study the radial evolution of turbulence. This can prove to be vital in understanding the more complex dynamics of the solar wind in the inner heliosphere and can assist in improving related simulations.
Document ID
20230001297
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Manuel Enrique Cuesta ORCID
(University of Delaware Newark, Delaware, United States)
Rohit Chhiber ORCID
(University of Delaware Newark, Delaware, United States)
Sohom Roy ORCID
(University of Delaware Newark, Delaware, United States)
Joshua Goodwill ORCID
(University of Delaware Newark, Delaware, United States)
Francesco Pecora ORCID
(University of Delaware Newark, Delaware, United States)
Jake Jarosik
(University of Delaware Newark, Delaware, United States)
William H. Matthaeus ORCID
(University of Delaware Newark, Delaware, United States)
Tulasi N. Parashar ORCID
(Victoria University of Wellington Wellington, Wellington, New Zealand)
Riddhi Bandyopadhyay ORCID
(Princeton University Princeton, New Jersey, United States)
Date Acquired
January 26, 2023
Publication Date
June 10, 2022
Publication Information
Publication: The Astrophysical Journal Letters
Publisher: American Astronomical Society/IOP Publishing
Volume: 932
Issue: 1
Issue Publication Date: June 10, 2022
ISSN: 2041-8205
e-ISSN: 2041-8213
Subject Category
Solar Physics
Funding Number(s)
CONTRACT_GRANT: 80NSSC18K1210
CONTRACT_GRANT: 80NSSC18K1648
CONTRACT_GRANT: 80NSSC21K1765
CONTRACT_GRANT: 80NSSC21K1767
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
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