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  • 11
    Keywords: Hochschulschrift ; Indischer Ozean ; Thermische Sprungschicht ; Zirkulation
    Type of Medium: Online Resource
    Pages: 159 S , graph. Darst., Kt
    Edition: Elektronische Ausg. 1999
    Language: German
    Note: Hamburg, Univ., FB Geowiss., Diss., 1999
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  • 12
    In: Journal of geophysical research. C, Oceans, Hoboken, NJ : Wiley, 1978, 116(2011), 2169-9291
    In: volume:116
    In: year:2011
    Description / Table of Contents: There is an incomplete description of the middepth circulation and its link to the oxygen minimum zone (OMZ) in the eastern tropical South Pacific. Subsurface currents of the OMZ in the eastern tropical South Pacific are investigated with a focus at 400 m depth, close to the core of the OMZ, using several acoustic Doppler current profiler sections recorded in January and February 2009. Five profiling floats with oxygen sensors were deployed along 85°50′W in February 2009 with a drift depth at 400 m. Their spreading paths are compared with the model flow field from a 1/10° tropical Pacific model (TROPAC01) and the Simple Ocean Data Assimilation (SODA) model. Overall the mean currents in the eastern tropical South Pacific are weak so that eddy variability influences the flow and ultimately feeds oxygen-poor water to the OMZ. The center of the OMZ is a stagnant area so that floats stay much longer in this region and can even reverse direction. In one case, one float deployed at 8°S, returned to the same location after 15 months. On the northern side of the OMZ in the equatorial current system, floats move rapidly to the west. Most current bands reported for the near-surface layer exist also in the depth range of the OMZ. A schematic circulation flow field for the OMZ core depth is derived which shows the northern part of the South Pacific subtropical gyre south of the OMZ and the complicated zonal equatorial flow field north of the OMZ.
    Type of Medium: Online Resource
    Pages: graph. Darst
    ISSN: 2169-9291
    Language: English
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  • 13
    Publication Date: 2023-08-08
    Type: Conference or Workshop Item , NonPeerReviewed
    Format: text
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  • 14
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    Publication Date: 2022-08-31
    Description: FS Meteor – M184 “LabSeaVar2022” 12.08. - 15.09.2022, St John’s - Hamburg 3. Wochenbericht (22. - 28.08.2022)
    Type: Report , NonPeerReviewed
    Format: text
    Format: text
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  • 15
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    Publication Date: 2022-08-24
    Description: FS Meteor – M184 “LabSeaVar2022” 12.08. - 15.09.2022, St John’s - Hamburg 2. Wochenbericht (15. - 21.08.2022)
    Type: Report , NonPeerReviewed
    Format: text
    Format: text
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  • 16
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    Publication Date: 2022-09-14
    Description: FS Meteor – M184 “LabSeaVar2022” 12.08. - 15.09.2022, St John’s - Hamburg 4. Wochenbericht (29.08. - 04.09.2022)
    Type: Report , NonPeerReviewed
    Format: text
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  • 17
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    Publication Date: 2022-09-14
    Description: FS Meteor – M184 “LabSeaVar2022” 12.08. - 15.09.2022, St John’s - Hamburg 5. Wochenbericht (05.09. - 11.09.2022)
    Type: Report , NonPeerReviewed
    Format: text
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  • 18
    Publication Date: 2022-06-28
    Description: The MSM89 expedition of Maria S Merian was a contribution to the international research initiative EUREC4A (www.eurec4a.eu). The cruise was carried out in concert with the M161 campaign on RV METEOR (Germany) and the EUREC4A-OA campaign on NO L’ATALANTE (France). Airplane and drone operations as well as well as continuous observations from the ground-based site on the Island of Barbados (BCO) were considered during the MSM89 campaign. Moreover, the cruise was coordinated with ships and Saildrone© operations in the context of the US American ATOMIC project. The overall goal of the EUREC4A field campaign was to collect observational data that will enable research on dynamic and thermodynamic processes in the atmosphere and ocean that will bring the understanding of the role of clouds in the climate system to a new level. MSM89 had its focus on the ocean/atmosphere coupling across ocean mesoscale vortices. For this purpose, both ocean and atmosphere profile measurements were carried out to observe the temporal evolution and spatial heterogeneity of the atmospheric and oceanic boundary layer. Autonomous observing platforms (underwater glider) and a ship towed platform (Cloudkite) augmented the ship-based observations. Incubation experiments were performed to determine Nitrogen fixation rates, the gas exchange for carbon dioxide and oxygen uptake.
    Type: Report , NonPeerReviewed
    Format: text
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  • 19
    Publication Date: 2020-02-06
    Description: Trade-wind cumuli constitute the cloud type with the highest frequency of occurrence on Earth, and it has been shown that their sensitivity to changing environmental conditions will critically influence the magnitude and pace of future global warming. Research over the last decade has pointed out the importance of the interplay between clouds, convection and circulation in controling this sensitivity. Numerical models represent this interplay in diverse ways, which translates into different responses of trade-cumuli to climate perturbations. Climate models predict that the area covered by shallow cumuli at cloud base is very sensitive to changes in environmental conditions, while process models suggest the opposite. To understand and resolve this contradiction, we propose to organize a field campaign aimed at quantifying the physical properties of trade-cumuli (e.g., cloud fraction and water content) as a function of the large-scale environment. Beyond a better understanding of clouds-circulation coupling processes, the campaign will provide a reference data set that may be used as a benchmark for advancing the modelling and the satellite remote sensing of clouds and circulation. It will also be an opportunity for complementary investigations such as evaluating model convective parameterizations or studying the role of ocean mesoscale eddies in air–sea interactions and convective organization
    Type: Article , PeerReviewed
    Format: text
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  • 20
    Publication Date: 2021-03-19
    Description: The Atlantic Meridional Overturning Circulation (AMOC) is analyzed by applying a box inverse model to hydrographic data from transatlantic sections along 14.5°N, occupied in 1989 and 2013, and along 24.5°N, occupied in 1992 and 2015. Direct comparison of water mass properties among the different realizations at the respective latitudes shows that the Antarctic Intermediate Water (AAIW) became warmer and saltier at 14.5°N, and the densest Antarctic Bottom Water became lighter, while the North Atlantic Deep Water freshened at both latitudes. The inverse solution shows that the intermediate layer transport at 14.5°N was also markedly weaker in 2013 than in 1989, indicating that the AAIW property changes at this latitude may be related to changes in the circulation. The inverse solution was validated using the RAPID and MOVE array data, and the GECCO2 ocean state estimate. Comparison among these datasets indicates that the AMOC has not significantly weakened over the past 2 decades at both latitudes. Sensitivity tests of the inverse solution suggest that the overturning structure and heat transport across the 14.5°N section are sensitive to the Ekman transport, while freshwater transport is sensitive to the transport-weighted salinity at the western boundary.
    Type: Article , PeerReviewed , info:eu-repo/semantics/article
    Format: text
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