Mesospheric winds measured by medium-frequency radar with full correlation analysis: error properties and impacts on studies of wind variance
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Published:2020-05-28
Issue:1
Volume:9
Page:223-238
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ISSN:2193-0864
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Container-title:Geoscientific Instrumentation, Methods and Data Systems
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language:en
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Short-container-title:Geosci. Instrum. Method. Data Syst.
Author:
Gibbins Maude, Kavanagh Andrew J.ORCID
Abstract
Abstract. The mesosphere is one of the most difficult parts of the
atmosphere to sample; it is too high for balloon measurements and too low for
in situ satellites. Consequently, there is a reliance on remote sensing
(either from the ground or from space) to diagnose this region. Ground-based
radars have been used since the second half of the 20th century to probe the
dynamics of the mesosphere; medium-frequency (MF) radars provide estimates
of the horizontal wind fields and are still used to analyse tidal structures
and planetary waves that modulate the meridional and zonal winds. The
variance of the winds has traditionally been linked qualitatively to the
occurrence of gravity waves. In this paper, the method of wind retrieval
(full correlation analysis) employed by MF radars is considered with
reference to two systems in Antarctica at different latitude (Halley at
76∘ S and Rothera at 67∘ S). It is shown that the width
of the velocity distribution and occurrence of “outliers” is related to the
measured levels of anisotropy in the received signal pattern. The magnitude
of the error distribution, as represented by the wind variance, varies with
both insolation levels and geomagnetic activity. Thus, it is demonstrated
that for these two radars the influence of gravity waves may not be the
primary mechanism that controls the overall variance.
Funder
British Antarctic Survey
Publisher
Copernicus GmbH
Subject
Atmospheric Science,Geology,Oceanography
Reference37 articles.
1. Beldon, C. L. and Mitchell, N. J.: Gravity wave-tidal inter- actions in the
mesosphere and lower thermosphere over Rothera, Antarctica (68∘ S, 68∘ W), J.
Geophys. Res., 115, D18101, https://doi.org/10.1029/2009JD013617, 2010. 2. Brasseur, G. P. and Solomon, S.: Aeronomy of the Middle Atmosphere.
Chemistry and Physics of the Stratosphere and Mesosphere, Springer, 3rd
Edn., Springer, the Netherlands, 2005. 3. Briggs, B. H.: The analysis of spaced sensor records by correlation techniques, in: ICSU Middle Atmosphere Program (MAP) Handbook, Vol. 13, edited by: Vincent, R. A., ICSU Scientific Committee on Solar-terrestrial Physics (SCOSTEP), Illinois, USA, 166–186, SEE N85-17452 08-46, 1984. 4. Brown, W. O. J.: MF radar interferometry, PhD thesis, 312 pp., Univ. of
Canterbury, Christchurch, N.Z., 1992. 5. Collis, P. N. and Rietveld, M. T.: Mesospheric observations with the
EISCAT UHF radar during polar cap absorption events: 1. Electron densities
and negative ions, Ann. Geophys., 8, 809–824, https://doi.org/10.1007/s00585-998-1355-4, 1990.
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