001     841715
005     20240712100920.0
024 7 _ |a 10.5194/acp-2017-955
|2 doi
024 7 _ |a 1680-7367
|2 ISSN
024 7 _ |a 1680-7375
|2 ISSN
024 7 _ |a 2128/16342
|2 Handle
024 7 _ |a altmetric:27955617
|2 altmetric
037 _ _ |a FZJ-2018-00023
082 _ _ |a 550
100 1 _ |a Krause, Jens
|0 0000-0002-2136-1038
|b 0
|e Corresponding author
245 _ _ |a Mixing and ageing in the polar lower stratosphere in winter 2015/2016
260 _ _ |a Katlenburg-Lindau
|c 2017
|b EGU
336 7 _ |a article
|2 DRIVER
336 7 _ |a Output Types/Journal article
|2 DataCite
336 7 _ |a Journal Article
|b journal
|m journal
|0 PUB:(DE-HGF)16
|s 1514980548_27317
|2 PUB:(DE-HGF)
336 7 _ |a ARTICLE
|2 BibTeX
336 7 _ |a JOURNAL_ARTICLE
|2 ORCID
336 7 _ |a Journal Article
|0 0
|2 EndNote
520 _ _ |a We present data from winter 2015/2016, which were measured during the POLSTRACC (The Polar Stratosphere in a Changing Climate) aircraft campaign between December 2015 and March 2016. The focus of this work is on the role of transport and mixing between aged and potentially chemically processed air masses from the stratosphere with mid and low latitude air mass fractions with small transit times originating at the tropical lower stratosphere. By combining measurements of CO, N2O and SF6 we estimate the evolution of the relative contributions of transport and mixing to the UTLS composition over the course of the winter.We find an increasing influence of aged stratospheric air partly from the vortex as indicated by decreasing N2O and SF6 values over the course of winter. Surprisingly we also found a mean increase of CO by (3.00 ± 1.64) ppbV from January to March relative to N2O in the lower stratosphere. We show that this increase of CO is consistent with an increased mixing of tropospheric air as part of the fast transport mechanism in the lower stratosphere surf zone. The analysed air masses were partly affected by air masses which originated at the tropical tropopause and were quasi-horizontally mixed into higher latitudes.This increase of the tropospheric air fraction partly compensates for ageing of the UTLS due to the diabatic descent of air masses from the vortex by horizontally mixed, tropospheric influenced air masses. This is consistent with simulated age spectra from the Chemical Lagrangian Model of the Stratosphere (CLaMS), which show a respective fractional increase of tropospheric air with short transit times lower than six months and a simultaneous increase of aged air from deep stratospheric and vortex regions with transit times larger than two years.We thus conclude that the lowermost stratosphere in winter 2015/16 was affected by aged air from the deep stratosphere and vortex region. These air masses were significantly affected by increased mixing from the lower latitudes, which led to a simultaneous increase of the fraction of young air in the Arctic lowermost stratosphere over the course of winter.
536 _ _ |a 244 - Composition and dynamics of the upper troposphere and middle atmosphere (POF3-244)
|0 G:(DE-HGF)POF3-244
|c POF3-244
|f POF III
|x 0
588 _ _ |a Dataset connected to CrossRef
700 1 _ |a Hoor, Peter
|0 P:(DE-HGF)0
|b 1
700 1 _ |a Engel, Andreas
|0 0000-0003-0557-3935
|b 2
700 1 _ |a Ploeger, Felix
|0 P:(DE-Juel1)129141
|b 3
|u fzj
700 1 _ |a Grooß, Jens-Uwe
|0 P:(DE-Juel1)129122
|b 4
700 1 _ |a Bönisch, Harald
|0 0000-0002-1004-0861
|b 5
700 1 _ |a Keber, Timo
|0 P:(DE-HGF)0
|b 6
700 1 _ |a Sinnhuber, Björn-Martin
|0 P:(DE-HGF)0
|b 7
700 1 _ |a Woiwode, Wolfgang
|0 P:(DE-HGF)0
|b 8
700 1 _ |a Oelhaf, Hermann
|0 P:(DE-HGF)0
|b 9
773 _ _ |a 10.5194/acp-2017-955
|g p. 1 - 32
|0 PERI:(DE-600)2069857-4
|p 1 - 32
|t Atmospheric chemistry and physics / Discussions
|v 955
|y 2017
|x 1680-7367
856 4 _ |u https://juser.fz-juelich.de/record/841715/files/acp-2017-955.pdf
|y OpenAccess
856 4 _ |u https://juser.fz-juelich.de/record/841715/files/acp-2017-955.gif?subformat=icon
|x icon
|y OpenAccess
856 4 _ |u https://juser.fz-juelich.de/record/841715/files/acp-2017-955.jpg?subformat=icon-1440
|x icon-1440
|y OpenAccess
856 4 _ |u https://juser.fz-juelich.de/record/841715/files/acp-2017-955.jpg?subformat=icon-180
|x icon-180
|y OpenAccess
856 4 _ |u https://juser.fz-juelich.de/record/841715/files/acp-2017-955.jpg?subformat=icon-640
|x icon-640
|y OpenAccess
856 4 _ |u https://juser.fz-juelich.de/record/841715/files/acp-2017-955.pdf?subformat=pdfa
|x pdfa
|y OpenAccess
909 C O |o oai:juser.fz-juelich.de:841715
|p openaire
|p open_access
|p driver
|p VDB
|p dnbdelivery
910 1 _ |a Forschungszentrum Jülich
|0 I:(DE-588b)5008462-8
|k FZJ
|b 3
|6 P:(DE-Juel1)129141
910 1 _ |a Forschungszentrum Jülich
|0 I:(DE-588b)5008462-8
|k FZJ
|b 4
|6 P:(DE-Juel1)129122
913 1 _ |a DE-HGF
|l Atmosphäre und Klima
|1 G:(DE-HGF)POF3-240
|0 G:(DE-HGF)POF3-244
|2 G:(DE-HGF)POF3-200
|v Composition and dynamics of the upper troposphere and middle atmosphere
|x 0
|4 G:(DE-HGF)POF
|3 G:(DE-HGF)POF3
|b Erde und Umwelt
914 1 _ |y 2017
915 _ _ |a Creative Commons Attribution CC BY 4.0
|0 LIC:(DE-HGF)CCBY4
|2 HGFVOC
915 _ _ |a DBCoverage
|0 StatID:(DE-HGF)0501
|2 StatID
|b DOAJ Seal
915 _ _ |a DBCoverage
|0 StatID:(DE-HGF)0500
|2 StatID
|b DOAJ
915 _ _ |a OpenAccess
|0 StatID:(DE-HGF)0510
|2 StatID
915 _ _ |a DBCoverage
|0 StatID:(DE-HGF)0310
|2 StatID
|b NCBI Molecular Biology Database
915 _ _ |a DBCoverage
|0 StatID:(DE-HGF)0300
|2 StatID
|b Medline
920 1 _ |0 I:(DE-Juel1)IEK-7-20101013
|k IEK-7
|l Stratosphäre
|x 0
980 1 _ |a FullTexts
980 _ _ |a journal
980 _ _ |a VDB
980 _ _ |a UNRESTRICTED
980 _ _ |a I:(DE-Juel1)IEK-7-20101013
981 _ _ |a I:(DE-Juel1)ICE-4-20101013


LibraryCollectionCLSMajorCLSMinorLanguageAuthor
Marc 21