Study of the magnetic turbulence in a corotating interaction region in the interplanetary medium

We study the geometry of magnetic fluctuations in a CIR observed by Pioneer 10 at 5 AU between days 292 and 295 in 1973. We apply the methodology proposed by Bieber <i>et al.</i> to make a comparison of the relative importance of two geometric arrays of vector propagation of the magn...

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Main Authors: J. F. Valdés-Galicia, R. A. Caballero
Format: Article
Language:English
Published: Copernicus Publications 1999-11-01
Series:Annales Geophysicae
Online Access:https://www.ann-geophys.net/17/1361/1999/angeo-17-1361-1999.pdf
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spelling doaj-5aef2d26483e4f679b0f22194efda4832020-11-24T23:16:30ZengCopernicus PublicationsAnnales Geophysicae0992-76891432-05761999-11-01171361136810.1007/s00585-999-1361-1Study of the magnetic turbulence in a corotating interaction region in the interplanetary mediumJ. F. Valdés-Galicia0J. F. Valdés-Galicia1R. A. Caballero2Instituto de Geofísica, UNAM, 04510 México, D.F., MéxicoE-mail: jfvaldes@tonatiuh.igeofcu.unam.mxInstituto de Geofísica, UNAM, 04510 México, D.F., MéxicoWe study the geometry of magnetic fluctuations in a CIR observed by Pioneer 10 at 5 AU between days 292 and 295 in 1973. We apply the methodology proposed by Bieber <i>et al.</i> to make a comparison of the relative importance of two geometric arrays of vector propagation of the magnetic field fluctuations: slab and two-dimensional (2D). We found that inside the studied CIR this model is not applicable due to the restrictions imposed on it. Our results are consistent with Alfvenic fluctuations propagating close to the radial direction, confirming Mavromichalaki <i>et al.</i>'s findings. A mixture of isotropic and magnetoacoustic waves in the region before the front shock would be consistent with our results, and a mixture of slab/2D and magnetoacoustic waves in a region after the reverse shock. We base the latter conclusions on the theoretical analysis made by Kunstmann. We discuss the reasons why the composite model can not be applied in the CIR studied although the fluctuations inside it are two dimensional.<br><br><b>Key words.</b> Solar physics · astrophysics and astronomy (magnetic fields) · Space plasma physics (turbulence; waves and instabilities)https://www.ann-geophys.net/17/1361/1999/angeo-17-1361-1999.pdf
collection DOAJ
language English
format Article
sources DOAJ
author J. F. Valdés-Galicia
J. F. Valdés-Galicia
R. A. Caballero
spellingShingle J. F. Valdés-Galicia
J. F. Valdés-Galicia
R. A. Caballero
Study of the magnetic turbulence in a corotating interaction region in the interplanetary medium
Annales Geophysicae
author_facet J. F. Valdés-Galicia
J. F. Valdés-Galicia
R. A. Caballero
author_sort J. F. Valdés-Galicia
title Study of the magnetic turbulence in a corotating interaction region in the interplanetary medium
title_short Study of the magnetic turbulence in a corotating interaction region in the interplanetary medium
title_full Study of the magnetic turbulence in a corotating interaction region in the interplanetary medium
title_fullStr Study of the magnetic turbulence in a corotating interaction region in the interplanetary medium
title_full_unstemmed Study of the magnetic turbulence in a corotating interaction region in the interplanetary medium
title_sort study of the magnetic turbulence in a corotating interaction region in the interplanetary medium
publisher Copernicus Publications
series Annales Geophysicae
issn 0992-7689
1432-0576
publishDate 1999-11-01
description We study the geometry of magnetic fluctuations in a CIR observed by Pioneer 10 at 5 AU between days 292 and 295 in 1973. We apply the methodology proposed by Bieber <i>et al.</i> to make a comparison of the relative importance of two geometric arrays of vector propagation of the magnetic field fluctuations: slab and two-dimensional (2D). We found that inside the studied CIR this model is not applicable due to the restrictions imposed on it. Our results are consistent with Alfvenic fluctuations propagating close to the radial direction, confirming Mavromichalaki <i>et al.</i>'s findings. A mixture of isotropic and magnetoacoustic waves in the region before the front shock would be consistent with our results, and a mixture of slab/2D and magnetoacoustic waves in a region after the reverse shock. We base the latter conclusions on the theoretical analysis made by Kunstmann. We discuss the reasons why the composite model can not be applied in the CIR studied although the fluctuations inside it are two dimensional.<br><br><b>Key words.</b> Solar physics · astrophysics and astronomy (magnetic fields) · Space plasma physics (turbulence; waves and instabilities)
url https://www.ann-geophys.net/17/1361/1999/angeo-17-1361-1999.pdf
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