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Reference TypeJournal Article
Identifier8JMKD3MGP3W34R/3UTSPSH
Repositorysid.inpe.br/mtc-m21c/2020/02.12.10.01   (restricted access)
Metadatasid.inpe.br/mtc-m21c/2020/02.12.10.01.45
Sitemtc-m21c.sid.inpe.br
DOI10.1016/j.pss.2019.104761
ISSN0032-0633
Holder Codeisadg {BR SPINPE} ibi 8JMKD3MGPCW/3DT298S
Citation KeyFrancoFräEchBolZha:2020:VEOb
Author1 Franco, Adriane Marques de Souza
2 Fränz, M.
3 Echer, Ezequiel
4 Bolzan, M. J. A.
5 Zhang, T. L.
Resume Identifier1
2
3 8JMKD3MGP5W/3C9JH3D
Group1 GES-CEA-SESPG-INPE-MCTIC-GOV-BR
2
3 DIDGE-CGCEA-INPE-MCTIC-GOV-BR
Affiliation1 Instituto Nacional de Pesquisas Espaciais (INPE)
2 Max Planck Institute for Solar System Research
3 Instituto Nacional de Pesquisas Espaciais (INPE)
4 Universidade Federal de Jataí
5 Space Research Institute of the Austrian Academy of Sciences
Author e-Mail Address1
2
3 ezequiel.echer@inpe.br
TitleThe correlation length of ULF waves around Venus: VEX observations
JournalPlanetary and Space Science
Year2020
Volume180
Monthjan.
KeywordsVenus induced magnetosphere, ULF waves, Correlation length.
AbstractA study of the correlation length of ultra-low frequency (ULF) waves around Venus was developed using electron density and magnetic field data obtained from the Analyzer of Space Plasmas and Energetic Atoms (ASPERA-4) and magnetometer (MAG), respectively, on board of the mission Venus Express (VEX). The analysis was conducted using the whole interval of the mission (2006-2014). The correlation scales have been calculated by the correlation length parameter that is a characteristic distance over which fluctuations in a variable are correlated. We limited the study to the frequency range from 8 to 50 mHz because previous studies have shown that ULF waves produced in the foreshock have the highest power in this range. In this study the correlation length was calculated by an exponential fit employed to the auto-correlation curve. The auto-correlation function was calculated lagged by a time between 0 and 60 s and sliding a window with 120s across the data. This analysis has been also extended to correlation length determinations in spatial scale. In order to obtain the correlation length in a spatial domain, the temporal correlation length must be multiplied by the solar wind velocity. Here, the ASPERA-4/IMA (Ion Mass Analyzer) velocity data was used. It was found that the dominant correlation length in temporal scale varies from 9 to 14 s in electron density and between 7.5 and 11 s in the magnetic field. In spatial scale, correlation length varies between 2.8 x 10(3) and 5 x 10(3) km in electron density data, and between 1.7 x 10(3) -4X10(3) km for the total magnetic field data value in this frequency window. Fluctuations in the magnetosheath and in the MPB may be correlated with fluctuations at the ionosphere, since correlation lengths in those regions are larger than the size of these regions, indicating that local resonant effect of wave trains at the ionopause may enhance the atmospheric ion escape at Venus. Our results also show that pickup heavy ions can interact with discontinuities in the magnetosheath of Venus and can destroy ULF wave trains during periods of low solar wind pressure. The results obtained here are compared with a similar previous analysis in the Mars environment.
Pagese104761
Languageen
Type of Workjournal article
Secondary TypePRE PI
DisseminationWEBSCI; PORTALCAPES; MGA; COMPENDEX; SCOPUS.
AreaCEA
Secondary MarkA2_INTERDISCIPLINAR A2_GEOCIÊNCIAS B1_MATEMÁTICA_/_PROBABILIDADE_E_ESTATÍSTICA B1_CIÊNCIAS_BIOLÓGICAS_I B1_BIOTECNOLOGIA B1_BIODIVERSIDADE B1_ASTRONOMIA_/_FÍSICA B2_ENSINO B2_CIÊNCIAS_BIOLÓGICAS_II
Size7613 KiB
Number of Files1
Target Filefranco_correlation.pdf
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Read Permissiondeny from all and allow from 150.163
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