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  • PANGAEA  (14)
  • 2015-2019  (14)
Publikationsart
Schlagwörter
Erscheinungszeitraum
Jahr
  • 1
    Publikationsdatum: 2023-10-28
    Schlagwort(e): Bottle number; Climate - Biogeochemistry Interactions in the Tropical Ocean; CTD, underway; CTD/Rosette; CTD 001; CTD 002; CTD 003; CTD 004; CTD 005; CTD 006; CTD 007; CTD 008; CTD 009; CTD 010; CTD 011; CTD 012; CTD 013; CTD 014; CTD 016; CTD 017; CTD 018; CTD 019; CTD 020; CTD 021; CTD 022; CTD 023; CTD 024; CTD 025; CTD 026; CTD 027; CTD 028; CTD 029; CTD 030; CTD 031; CTD 033; CTD 034; CTD 035; CTD 036; CTD 037; CTD 038; CTD 039; CTD 040; CTD 041; CTD 042; CTD 043; CTD 044; CTD 045; CTD 047; CTD 048; CTD 049; CTD 050; CTD 051; CTD 052; CTD 053; CTD 054; CTD 055; CTD 056; CTD 057; CTD 058; CTD 059; CTD 060; CTD 061; CTD 062; CTD 063; CTD 064; CTD 065; CTD 066; CTD 067; CTD 068; CTD 069; CTD 070; CTD 071; CTD 072; CTD 073; CTD 074; CTD 075; CTD 076; CTD 077; CTD 079; CTD 080; CTD 081; CTD 082; CTD 083; CTD 084; CTD 085; CTD 086; CTD 087; CTD 088; CTD 089; CTD 090; CTD 091; CTD 092; CTD 094; CTD 095; CTD 096; CTD 097; CTD 098; CTD 099; CTD 100; CTD 101; CTD 102; CTD 103; CTD 105; CTD 106; CTD 108; CTD 109; CTD 110; CTD 111; CTD 112; CTD 113; CTD 114; CTD 116; CTD 117; CTD 118; CTD 119; CTD 120; CTD 121; CTD 122; CTD 123; CTD 125; CTD 126; CTD 127; CTD 129; CTD 130; CTD 131; CTD 132; CTD 134; CTD 135; CTD 136; CTD 137; CTD 138; CTD 139; CTD 140; CTD 141; CTD 142; CTD-RO; CTD-UW; DATE/TIME; Event label; Flag; Freon-12 (dichlorodifluoromethane); LATITUDE; LONGITUDE; M135; M135_179-1; M135_180-1; M135_181-1; M135_182-1; M135_183-1; M135_184-2; M135_185-2; M135_186-2; M135_187-2; M135_188-2; M135_189-1; M135_190-1; M135_191-2; M135_192-2; M135_193-3; M135_194-1; M135_195-1; M135_196-1; M135_197-1; M135_198-1; M135_199-1; M135_200-2; M135_201-1; M135_202-1; M135_203-2; M135_204-1; M135_205-2; M135_206-1; M135_207-2; M135_208-2; M135_209-3; M135_210-1; M135_211-1; M135_212-1; M135_213-1; M135_214-1; M135_215-2; M135_216-1; M135_217-1; M135_219-1; M135_220-1; M135_221-1; M135_222-1; M135_223-3; M135_224-1; M135_225-1; M135_226-1; M135_227-2; M135_228-1; M135_229-1; M135_230-1; M135_231-1; M135_232-1; M135_233-1; M135_234-2; M135_235-1; M135_236-1; M135_237-2; M135_238-1; M135_239-1; M135_240-2; M135_241-1; M135_242-1; M135_243-1; M135_244-1; M135_245-2; M135_246-1; M135_247-1; M135_249-1; M135_252-1; M135_255-1; M135_256-1; M135_257-1; M135_258-1; M135_259-3; M135_260-1; M135_261-2; M135_262-1; M135_263-1; M135_264-2; M135_265-1; M135_266-2; M135_267-1; M135_268-1; M135_269-2; M135_270-1; M135_271-2; M135_272-1; M135_273-3; M135_274-1; M135_275-2; M135_276-1; M135_277-2; M135_278-1; M135_279-2; M135_280-1; M135_281-2; M135_283-1; M135_286-1; M135_288-2; M135_289-1; M135_290-3; M135_291-1; M135_292-1; M135_293-2; M135_294-1; M135_295-1; M135_296-1; M135_297-3; M135_298-1; M135_299-2; M135_300-1; M135_301-2; M135_302-1; M135_303-2; M135_304-1; M135_305-1; M135_310-1; M135_311-1; M135_312-1; M135_313-3; M135_314-1; M135_315-1; M135_316-1; M135_317-3; M135_318-1; M135_319-1; M135_320-2; M135_321-1; M135_322-1; M135_323-1; M135_324-1; M135_325-1; Meteor (1986); Micro structure probe; MSS; Nitrate; Nitrite; Oxygen; Phosphate; Pressure, water; Profile; Salinity; Sample code/label; SFB754; SFB754/POSTRE-II; Silicate; Station label; Sulfur hexafluoride, SF6; Temperature, water; Trifluoromethyl sulfur pentafluoride
    Materialart: Dataset
    Format: text/tab-separated-values, 68756 data points
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 2
    Publikationsdatum: 2023-10-28
    Schlagwort(e): Acoustic Doppler Current Profiling, vessel-mounted (VM-ADCP); Climate - Biogeochemistry Interactions in the Tropical Ocean; CT; File content; File format; File name; File size; M135; M135-track; Meteor (1986); SFB754; SFB754/POSTRE-II; Underway cruise track measurements; Uniform resource locator/link to file
    Materialart: Dataset
    Format: text/tab-separated-values, 10 data points
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 3
    facet.materialart.
    Unbekannt
    PANGAEA
    In:  GEOMAR - Helmholtz Centre for Ocean Research Kiel
    Publikationsdatum: 2023-12-05
    Schlagwort(e): Climate - Biogeochemistry Interactions in the Tropical Ocean; CTD/Rosette; CTD 004; CTD 005; CTD 006; CTD 007; CTD 008; CTD 009; CTD 010; CTD 011; CTD 012; CTD 013; CTD 014; CTD 015; CTD 016; CTD 017; CTD 018; CTD 019; CTD 020; CTD 021; CTD 022; CTD 023; CTD 024; CTD 025; CTD 026; CTD 027; CTD 028; CTD 029; CTD 030; CTD 031; CTD 032; CTD 033; CTD 034; CTD 035; CTD 036; CTD 037; CTD 038; CTD 039; CTD 040; CTD 041; CTD 042; CTD 043; CTD 044; CTD 045; CTD 046; CTD 047; CTD 048; CTD 049; CTD 050; CTD 051; CTD 052; CTD 053; CTD 054; CTD 055; CTD 056; CTD 057; CTD 058; CTD 059; CTD 060; CTD 061; CTD 062; CTD 063; CTD 064; CTD 065; CTD 066; CTD 067; CTD 068; CTD 069; CTD 070; CTD 071; CTD 072; CTD 073; CTD 074; CTD 075; CTD 076; CTD 077; CTD 078; CTD 079; CTD 080; CTD 081; CTD 082; CTD 083; CTD 084; CTD 085; CTD 086; CTD 087; CTD 088; CTD 089; CTD 090; CTD 091; CTD 092; CTD 093; CTD 094; CTD 095; CTD 096; CTD 097; CTD 098; CTD 099; CTD 100; CTD 101; CTD 102; CTD 103; CTD 104; CTD 105; CTD 106; CTD 107; CTD 108; CTD 109; CTD 110; CTD 111; CTD 112; CTD 113; CTD 114; CTD 115; CTD 116; CTD 117; CTD 118; CTD 119; CTD 120; CTD 121; CTD 122; CTD 123; CTD 124; CTD 125; CTD 126; CTD 127; CTD 128; CTD 129; CTD 130; CTD 131; CTD 132; CTD 133; CTD 134; CTD 135; CTD 136; CTD 137; CTD 138; CTD 139; CTD 140; CTD 141; CTD 142; CTD-RO; DATE/TIME; Density, potential; DEPTH, water; Event label; Fluorescence; Latitude of event; Longitude of event; M135; M135_182-1; M135_183-1; M135_184-2; M135_185-2; M135_186-2; M135_187-2; M135_188-2; M135_189-1; M135_190-1; M135_191-2; M135_192-2; M135_193-1; M135_193-3; M135_194-1; M135_195-1; M135_196-1; M135_197-1; M135_198-1; M135_199-1; M135_200-2; M135_201-1; M135_202-1; M135_203-2; M135_204-1; M135_205-2; M135_206-1; M135_207-2; M135_208-2; M135_209-1; M135_209-3; M135_210-1; M135_211-1; M135_212-1; M135_213-1; M135_214-1; M135_215-2; M135_216-1; M135_217-1; M135_219-1; M135_220-1; M135_221-1; M135_222-1; M135_223-1; M135_223-3; M135_224-1; M135_225-1; M135_226-1; M135_227-2; M135_228-1; M135_229-1; M135_230-1; M135_231-1; M135_232-1; M135_233-1; M135_234-2; M135_235-1; M135_236-1; M135_237-2; M135_238-1; M135_239-1; M135_240-2; M135_241-1; M135_242-1; M135_243-1; M135_244-1; M135_245-2; M135_246-1; M135_247-1; M135_249-1; M135_252-1; M135_255-1; M135_256-1; M135_257-1; M135_258-1; M135_259-1; M135_259-3; M135_260-1; M135_261-2; M135_262-1; M135_263-1; M135_264-2; M135_265-1; M135_266-2; M135_267-1; M135_268-1; M135_269-2; M135_270-1; M135_271-2; M135_272-1; M135_273-1; M135_273-3; M135_274-1; M135_275-2; M135_276-1; M135_277-2; M135_278-1; M135_279-2; M135_280-1; M135_281-2; M135_283-1; M135_287-1; M135_288-2; M135_289-1; M135_290-1; M135_290-3; M135_291-1; M135_292-1; M135_293-2; M135_294-1; M135_295-1; M135_296-1; M135_297-1; M135_297-3; M135_298-1; M135_299-2; M135_300-1; M135_301-2; M135_302-1; M135_303-2; M135_305-1; M135_307-1; M135_310-1; M135_311-1; M135_312-1; M135_313-1; M135_313-3; M135_314-1; M135_315-1; M135_316-1; M135_317-1; M135_317-3; M135_318-1; M135_319-1; M135_320-2; M135_321-1; M135_322-1; M135_323-1; M135_324-1; M135_325-1; Meteor (1986); Oxygen; Pressure, water; Salinity; SFB754; SFB754/POSTRE-II; Sound velocity in water; Temperature, water; Turbidity (Nephelometric turbidity unit)
    Materialart: Dataset
    Format: text/tab-separated-values, 1230784 data points
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 4
    facet.materialart.
    Unbekannt
    PANGAEA
    In:  Supplement to: Karstensen, Johannes; Schütte, Florian; Pietri, Alice; Krahmann, Gerd; Fiedler, Björn; Grundle, Damian; Hauss, Helena; Körtzinger, Arne; Löscher, Carolin R; Testor, Pierre; Vieira, Nuno; Visbeck, Martin (2017): Upwelling and isolation in oxygen-depleted anticyclonic modewater eddies and implications for nitrate cycling. Biogeosciences, 14(8), 2167-2181, https://doi.org/10.5194/bg-14-2167-2017
    Publikationsdatum: 2023-12-04
    Beschreibung: The physical (temperature, salinity, velocity) and biogeochemical (oxygen, nitrate) structure of an oxygen depleted coherent, baroclinic, anticyclonic mode-water eddy (ACME) is investigated using high-resolution autonomous glider and ship data. A distinct core with a diameter of about 70 km is found in the eddy, extending from about 60 to 200 m depth and. The core is occupied by fresh and cold water with low oxygen and high nitrate concentrations, and bordered by local maxima in buoyancy frequency. Velocity and property gradient sections show vertical layering at the flanks and underneath the eddy characteristic for vertical propagation (to several hundred-meters depth) of near inertial internal waves (NIW) and confirmed by direct current measurements. A narrow region exists at the outer edge of the eddy where NIW can propagate downward. NIW phase speed and mean flow are of similar magnitude and critical layer formation is expected to occur. An asymmetry in the NIW pattern is seen that possible relates to the large-scale Ekman transport interacting with ACME dynamics. NIW/mean flow induced mixing occurs close to the euphotic zone/mixed layer and upward nutrient flux is expected and supported by the observations. Combing high resolution nitrate (NO3-) data with the apparent oxygen utilization (AOU) reveals AOU:NO3- ratios of 16 which are much higher than in the surrounding waters (8.1). A maximum NO3- deficit of 4 to 6 µmol kg-1 is estimated for the low oxygen core. Denitrification would be a possible explanation. This study provides evidence that the recycling of NO3-, extracted from the eddy core and replenished into the core via the particle export, may quantitatively be more important. In this case, the particulate phase is of keys importance in decoupling the nitrogen from the oxygen cycling.
    Schlagwort(e): Climate - Biogeochemistry Interactions in the Tropical Ocean; SFB754
    Materialart: Dataset
    Format: application/zip, 1 datasets
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 5
    facet.materialart.
    Unbekannt
    PANGAEA
    In:  Supplement to: Schütte, Florian; Karstensen, Johannes; Krahmann, Gerd; Hauss, Helena; Fiedler, Björn; Brandt, Peter; Visbeck, Martin; Körtzinger, Arne (2016): Characterization of “dead-zone” eddies in the tropical Northeast Atlantic Ocean. Biogeosciences, 13, 5865-5881, https://doi.org/10.5194/bg-13-5865-2016
    Publikationsdatum: 2023-12-05
    Beschreibung: Localized open-ocean low-oxygen "dead zones" in the eastern tropical North Atlantic are recently discovered ocean features that can develop in dynamically isolated water masses within cyclonic eddies (CE) and anticyclonic mode-water eddies (ACME). Analysis of a comprehensive oxygen dataset obtained from gliders, moorings, research vessels and Argo floats reveals that "dead-zone" eddies are found in surprisingly high numbers and in a large area from about 4 to 22° N, from the shelf at the eastern boundary to 38° W. In total, 173 profiles with oxygen concentrations below the minimum background concentration of 40 µmol/kg could be associated with 27 independent eddies (10 CEs; 17 ACMEs) over a period of 10 years. Lowest oxygen concentrations in CEs are less than 10 µmol/kg while in ACMEs even suboxic (〈 1 µmol/kg) levels are observed. The oxygen minimum in the eddies is located at shallow depth from 50 to 150 m with a mean depth of 80 m. Compared to the surrounding waters, the mean oxygen anomaly in the core depth range (50 and 150 m) for CEs (ACMEs) is -38 (-79) µmol/kg. North of 12° N, the oxygen-depleted eddies carry anomalously low-salinity water of South Atlantic origin from the eastern boundary upwelling region into the open ocean. Here water mass properties and satellite eddy tracking both point to an eddy generation near the eastern boundary. In contrast, the oxygen-depleted eddies south of 12° N carry weak hydrographic anomalies in their cores and seem to be generated in the open ocean away from the boundary. In both regions a decrease in oxygen from east to west is identified supporting the en-route creation of the low-oxygen core through a combination of high productivity in the eddy surface waters and an isolation of the eddy cores with respect to lateral oxygen supply. Indeed, eddies of both types feature a cold sea surface temperature anomaly and enhanced chlorophyll concentrations in their center. The low-oxygen core depth in the eddies aligns with the depth of the shallow oxygen minimum zone of the eastern tropical North Atlantic. Averaged over the whole area an oxygen reduction of 7 µmol/kg in the depth range of 50 to 150 m (peak reduction is 16 µmol/kg at 100 m depth) can be associated with the dispersion of the eddies. Thus the locally increased oxygen consumption within the eddy cores enhances the total oxygen consumption in the open eastern tropical North Atlantic Ocean and seems to be an contributor to the formation of the shallow oxygen minimum zone.
    Schlagwort(e): Climate - Biogeochemistry Interactions in the Tropical Ocean; SFB754
    Materialart: Dataset
    Format: application/zip, 4 datasets
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 6
    facet.materialart.
    Unbekannt
    PANGAEA
    In:  Supplement to: Lüdke, Jan; Dengler, Marcus; Sommer, Stefan; Clemens, David; Thomsen, Soeren; Krahmann, Gerd; Dale, Andy W; Achterberg, Eric Pieter; Visbeck, Martin (2020): Influence of intraseasonal eastern boundary circulation variability on hydrography and biogeochemistry off Peru. Ocean Science, 16(6), 1347-1366, https://doi.org/10.5194/os-16-1347-2020
    Publikationsdatum: 2023-12-05
    Beschreibung: The intraseasonal evolution of physical and biogeochemical properties during a coastal trapped wave event off central Peru is analysed using data from an extensive shipboard observational programme conducted between April and June 2017, and remote sensing data. The poleward velocities in the Peru Chile Undercurrent were highly variable and strongly intensified to above 0.5 m s-1 between mid and end of May. This intensification was likely caused by a first baroclinic mode downwelling coastal trapped wave, excited by a westerly wind anomaly at the equator and originating at about 95° W. Local winds along the South American coast did not impact the wave. Although there is general agreement between the observed cross-shore-depth velocity structure of the coastal trapped wave and the velocity structure of first vertical mode solution of a linear wave model, there are differences in the details of the two flow distributions. The enhanced poleward flow increased water mass advection from the equatorial current system to the study site. The resulting shorter alongshore transit times between the equator and the coast off central Peru led to a strong increase in nitrate concentrations, less anoxic water, likely less fixed nitrogen loss to N2, and a decrease of the nitrogen deficit compared to the situation before the poleward flow intensification. This study highlights the role of changes in the alongshore advection due to coastal trapped waves for the nutrient budget and the cumulative strength of N-cycling in the Peruvian oxygen minimum zone. Enhanced availability of nitrate may impact a range of pelagic and benthic elemental cycles, as it represents a major electron acceptor for organic carbon degradation during denitrification and is involved in sulfide oxidation in sediments.
    Schlagwort(e): Climate - Biogeochemistry Interactions in the Tropical Ocean; SFB754
    Materialart: Dataset
    Format: application/zip, 4 datasets
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 7
    Publikationsdatum: 2024-02-02
    Schlagwort(e): Acoustic Doppler Current Profiling, vessel-mounted (VM-ADCP); Climate - Biogeochemistry Interactions in the Tropical Ocean; CT; File content; File format; File name; File size; M105; M105-track; Meteor (1986); SFB754; Underway cruise track measurements; Uniform resource locator/link to file
    Materialart: Dataset
    Format: text/tab-separated-values, 10 data points
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 8
    Publikationsdatum: 2024-02-02
    Schlagwort(e): Climate - Biogeochemistry Interactions in the Tropical Ocean; CTD; CTD/Rosette; CTD001; CTD002; CTD003; CTD004; CTD005; CTD006; CTD007; CTD008; CTD009; CTD010; CTD011; CTD012; CTD013; CTD014; CTD015; CTD016; CTD017; CTD018; CTD019; CTD020; CTD021; CTD022; CTD023; CTD024; CTD025; CTD026; CTD027; CTD029; CTD030; CTD031; CTD032; CTD033; CTD034; CTD035; CTD036; CTD037; CTD038; CTD039; CTD040; CTD041; CTD042; CTD043; CTD044; CTD045; CTD046; CTD047; CTD048; CTD049; CTD050; CTD051; CTD052; CTD053; CTD054; CTD055; CTD056; CTD057; CTD058; CTD059; CTD060; CTD061; CTD062; CTD063; CTD064; CTD065; CTD066; CTD067; CTD-RO; Date/Time of event; DEPTH, water; Event label; Fluorescence; Latitude of event; Longitude of event; Maria S. Merian; MSM23; MSM23_760-2; MSM23_761-2; MSM23_762-2; MSM23_763-1; MSM23_764-2; MSM23_765-1; MSM23_766-1; MSM23_767-3; MSM23_768-1; MSM23_769-3; MSM23_770-1; MSM23_771-1; MSM23_772-3; MSM23_773-1; MSM23_774-3; MSM23_775-1; MSM23_776-3; MSM23_777-1; MSM23_778-3; MSM23_779-1; MSM23_780-1; MSM23_781-1; MSM23_782-1; MSM23_783-1; MSM23_784-1; MSM23_785-3; MSM23_786-1; MSM23_788-1; MSM23_789-1; MSM23_790-1; MSM23_791-1; MSM23_792-1; MSM23_793-3; MSM23_794-1; MSM23_795-1; MSM23_796-1; MSM23_797-1; MSM23_798-3; MSM23_799-1; MSM23_800-3; MSM23_801-1; MSM23_802-1; MSM23_803-1; MSM23_804-3; MSM23_805-1; MSM23_806-1; MSM23_807-1; MSM23_808-1; MSM23_809-1; MSM23_810-1; MSM23_811-2; MSM23_812-1; MSM23_813-3; MSM23_814-1; MSM23_815-1; MSM23_816-3; MSM23_817-2; MSM23_818-1; MSM23_820-4; MSM23_821-1; MSM23_822-1; MSM23_823-1; MSM23_824-2; MSM23_824-3; MSM23_824-5; MSM23_825-2; Optional event label; Oxygen; Pressure, water; Salinity; SFB754; Temperature, water
    Materialart: Dataset
    Format: text/tab-separated-values, 659719 data points
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 9
    Publikationsdatum: 2024-02-02
    Schlagwort(e): Alkalinity, total; Bottle number; Carbon, inorganic, dissolved; Climate - Biogeochemistry Interactions in the Tropical Ocean; CTD; CTD/Rosette; CTD001; CTD002; CTD003; CTD004; CTD005; CTD006; CTD007; CTD008; CTD009; CTD010; CTD011; CTD012; CTD013; CTD014; CTD015; CTD016; CTD017; CTD018; CTD019; CTD020; CTD023; CTD024; CTD025; CTD026; CTD027; CTD029; CTD030; CTD031; CTD032; CTD033; CTD034; CTD035; CTD036; CTD037; CTD038; CTD039; CTD040; CTD041; CTD042; CTD043; CTD044; CTD045; CTD046; CTD047; CTD048; CTD049; CTD050; CTD051; CTD052; CTD053; CTD054; CTD055; CTD056; CTD057; CTD058; CTD059; CTD060; CTD061; CTD062; CTD063; CTD064; CTD066; CTD067; CTD-RO; Date/Time of event; DEPTH, water; Event label; Latitude of event; Longitude of event; Maria S. Merian; MSM23; MSM23_760-2; MSM23_761-2; MSM23_762-2; MSM23_763-1; MSM23_764-2; MSM23_765-1; MSM23_766-1; MSM23_767-3; MSM23_768-1; MSM23_769-3; MSM23_770-1; MSM23_771-1; MSM23_772-3; MSM23_773-1; MSM23_774-3; MSM23_775-1; MSM23_776-3; MSM23_777-1; MSM23_778-3; MSM23_779-1; MSM23_782-1; MSM23_783-1; MSM23_784-1; MSM23_785-3; MSM23_786-1; MSM23_788-1; MSM23_789-1; MSM23_790-1; MSM23_791-1; MSM23_792-1; MSM23_793-3; MSM23_794-1; MSM23_795-1; MSM23_796-1; MSM23_797-1; MSM23_798-3; MSM23_799-1; MSM23_800-3; MSM23_801-1; MSM23_802-1; MSM23_803-1; MSM23_804-3; MSM23_805-1; MSM23_806-1; MSM23_807-1; MSM23_808-1; MSM23_809-1; MSM23_810-1; MSM23_811-2; MSM23_812-1; MSM23_813-3; MSM23_814-1; MSM23_815-1; MSM23_816-3; MSM23_817-2; MSM23_818-1; MSM23_820-4; MSM23_821-1; MSM23_822-1; MSM23_823-1; MSM23_824-2; MSM23_824-5; MSM23_825-2; Oxygen; Pressure, water; Profile; Salinity; Sample code/label; SFB754; Temperature, water; Trifluoromethyl sulfur pentafluoride
    Materialart: Dataset
    Format: text/tab-separated-values, 6363 data points
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 10
    Publikationsdatum: 2024-02-02
    Schlagwort(e): Climate - Biogeochemistry Interactions in the Tropical Ocean; CT; DATE/TIME; LATITUDE; LONGITUDE; M105; M105-track; Meteor (1986); Salinity; SFB754; Temperature, water; Underway cruise track measurements
    Materialart: Dataset
    Format: text/tab-separated-values, 215916 data points
    Standort Signatur Einschränkungen Verfügbarkeit
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