Number density structures in the inner heliosphere
File(s)aa32567-17.pdf (418.64 KB)
Published version
Author(s)
Stansby, David
Horbury, Timothy
Type
Journal Article
Abstract
Aims.
The origins and generation mechanisms of the slow solar wind are still unclear. Part of the slow solar wind is populated by
“number density structures”, discrete patches of increased number density that are frozen in to and move with the bulk solar wind. In
this paper we aimed to provide the first in-situ statistical study of number density structures in the inner heliosphere.
Methods.
We reprocessed in-situ ion distribution functions measured by Helios in the inner heliosphere to provide a new reliable set
of proton plasma moments for the entire mission. From this new data set we looked for number density structures measured within
0.5 AU of the Sun and studied their properties.
Results.
We identified 140 discrete areas of enhanced number density. The structures occurred exclusively in the slow solar wind and
spanned a wide range of length scales from 50 Mm to 2000 Mm, which includes smaller scales than have been previously observed.
They were also consistently denser and hotter that the surrounding plasma, but had lower magnetic field strengths, and therefore
remained in pressure balance.
Conclusions.
Our observations show that these structures are present in the slow solar wind at a wide range of scales, some of which
are too small to be detected by remote sensing instruments. These structures are rare, accounting for only 1% of the slow solar wind
measured by Helios, and are not a significant contribution to the mass flux of the solar wind.
The origins and generation mechanisms of the slow solar wind are still unclear. Part of the slow solar wind is populated by
“number density structures”, discrete patches of increased number density that are frozen in to and move with the bulk solar wind. In
this paper we aimed to provide the first in-situ statistical study of number density structures in the inner heliosphere.
Methods.
We reprocessed in-situ ion distribution functions measured by Helios in the inner heliosphere to provide a new reliable set
of proton plasma moments for the entire mission. From this new data set we looked for number density structures measured within
0.5 AU of the Sun and studied their properties.
Results.
We identified 140 discrete areas of enhanced number density. The structures occurred exclusively in the slow solar wind and
spanned a wide range of length scales from 50 Mm to 2000 Mm, which includes smaller scales than have been previously observed.
They were also consistently denser and hotter that the surrounding plasma, but had lower magnetic field strengths, and therefore
remained in pressure balance.
Conclusions.
Our observations show that these structures are present in the slow solar wind at a wide range of scales, some of which
are too small to be detected by remote sensing instruments. These structures are rare, accounting for only 1% of the slow solar wind
measured by Helios, and are not a significant contribution to the mass flux of the solar wind.
Date Issued
2018-05-01
Date Acceptance
2018-03-13
Citation
Astronomy and Astrophysics, 2018, 613
ISSN
0004-6361
Publisher
EDP Sciences
Journal / Book Title
Astronomy and Astrophysics
Volume
613
Copyright Statement
© ESO 2018. Open Access article, published by EDP Sciences, under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0;), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Sponsor
Science and Technology Facilities Council (STFC)
Science and Technology Facilities Council (STFC)
Grant Number
ST/J500616/1
ST/N000692/1
Subjects
Science & Technology
Physical Sciences
Astronomy & Astrophysics
Sun: heliosphere
solar wind
SOLAR-WIND FORMATION
MAGNETIC-FIELD
CORONAL HOLES
FLUX
ACCELERATION
RECONNECTION
CONNECTION
STREAMS
SECCHI
SPEED
physics.space-ph
physics.plasm-ph
0201 Astronomical And Space Sciences
Publication Status
Published
Article Number
ARTN A62
Date Publish Online
2018-06-01