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  • 2000-2004  (23)
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  • 1
    ISSN: 1751-8369
    Source: Blackwell Publishing Journal Backfiles 1879-2005
    Topics: Geography , Geosciences
    Notes: Phytoplankton dynamics and carbon input into Arctic and sub-Arctic ecosystems were investigated around Svalbard, in summer 1991. Phytoplankton biomass, species composition and dissolved nutrient concentrations were analysed from water samples collected along seven transects. Phytoplankton biomass was low especially to the north (Chlorophyll-a mean 0.3 pg 1- '), where flagellates dominated the communities and only ice-diatoms were present. To the west, the phytoplankton composition was representative of a summer Atlantic community, in a post-bloom state. Zooplankton grazing, mainly by copepods, appeared to be the main control on biomass to the west and north of Svalbard.In the Barents Sea (east of Svalbard), an ice edge bloom was observed (Chlorophyll-a max. 6.8 pgl-') and the ice edge receded at a rate of approximately 1 1 km day-'. The phytoplankton community was represented by marginal ice species, especially Phaeocystis poucherii and Chaeroceros socialis. South of the ice edge, Deep Chlorophyll Maxima (DCM) were observed, as surface waters became progressively nutrient-depleted. In these surface waters, the phytoplankton were predominantly auto- and heterotrophic flagellates.Carbon production measurements revealed high net production (new and regenerated) to the north of the Barents Sea Polar Front (BSPF); it was especially high at the receding ice edge (reaching 1.44gC m-'day-'). To the south, a low level of production was maintained, mainly through regenerative processes.
    Type of Medium: Electronic Resource
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  • 2
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    PANGAEA
    In:  Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven
    Publication Date: 2024-02-01
    Keywords: ANT-XVIII/2; Bottle number; Conductivity; CTD; CTD/Rosette; CTD1; CTD10; CTD100; CTD101; CTD102; CTD103; CTD104; CTD105; CTD107; CTD108; CTD109; CTD11; CTD110; CTD111; CTD112; CTD113; CTD114; CTD115; CTD116; CTD117; CTD118; CTD119; CTD12; CTD120; CTD121; CTD122; CTD123; CTD124; CTD125; CTD126; CTD127; CTD128; CTD129; CTD130; CTD131; CTD132; CTD133; CTD134; CTD135; CTD136; CTD137; CTD138; CTD139; CTD14; CTD140; CTD141; CTD142; CTD144; CTD145; CTD146; CTD147; CTD148; CTD149; CTD14a; CTD15; CTD150; CTD151; CTD16; CTD17; CTD18; CTD19; CTD2; CTD20; CTD21; CTD22; CTD23; CTD24; CTD25; CTD26; CTD27; CTD28; CTD29; CTD3; CTD30; CTD31; CTD32; CTD33; CTD34; CTD35; CTD36; CTD37; CTD38; CTD39; CTD4; CTD40; CTD41; CTD42; CTD43; CTD44; CTD45; CTD46; CTD47; CTD48; CTD49; CTD5; CTD50; CTD51; CTD52; CTD53; CTD54; CTD55; CTD56; CTD57; CTD58; CTD59; CTD6; CTD60; CTD61; CTD62; CTD63; CTD64; CTD65; CTD66; CTD67; CTD68; CTD69; CTD7; CTD70; CTD71; CTD72; CTD73; CTD74; CTD75; CTD76; CTD77; CTD78; CTD79; CTD8; CTD80; CTD81; CTD82; CTD83; CTD84; CTD85; CTD86; CTD87; CTD88; CTD89; CTD9; CTD90; CTD91; CTD92; CTD93; CTD94; CTD95; CTD96; CTD97; CTD98; CTD99; CTD-RO; Date/Time of event; Density, sigma-theta (0); DEPTH, water; EisenEx; Elevation of event; European Iron Enrichment Experiment in the Southern Ocean; Event label; JGOFS; Joint Global Ocean Flux Study; Latitude of event; Longitude of event; MULT; Multiple investigations; Polarstern; Pressure, water; PS58/003-1; PS58/003-3; PS58/004-1; PS58/006-1; PS58/006-3; PS58/007-1; PS58/007-5; PS58/008-1; PS58/009-2; PS58/009-4; PS58/009-6; PS58/009-8; PS58/011-3; PS58/011-6; PS58/012-1; PS58/012-4; PS58/012-5; PS58/013-1; PS58/014-4; PS58/014-6; PS58/014-8; PS58/015-1; PS58/016-1; PS58/017-1; PS58/018-1; PS58/019-1; PS58/020-1; PS58/021-1; PS58/022-1; PS58/023-1; PS58/024-1; PS58/025-1; PS58/026-1; PS58/027-1; PS58/028-1; PS58/029-1; PS58/030-1; PS58/031-1; PS58/032-1; PS58/033-1; PS58/034-1; PS58/035-1; PS58/036-1; PS58/037-1; PS58/038-1; PS58/038-3; PS58/038-5; PS58/038-7; PS58/039-1; PS58/040-1; PS58/041-1; PS58/041-2; PS58/041-5; PS58/042-1; PS58/042-2; PS58/042-5; PS58/042-6; PS58/043-2; PS58/043-4; PS58/044-1; PS58/045-1; PS58/045-2; PS58/045-5; PS58/045-7; PS58/045-9; PS58/046-1; PS58/046-3; PS58/046-5; PS58/047-1; PS58/048-1; PS58/048-3; PS58/048-5; PS58/048-8; PS58/049-1; PS58/049-3; PS58/049-5; PS58/050-1; PS58/051-1; PS58/052-1; PS58/053-1; PS58/054-1; PS58/055-1; PS58/056-1; PS58/057-1; PS58/058-1; PS58/059-1; PS58/060-1; PS58/061-1; PS58/061-3; PS58/061-5; PS58/062-1; PS58/063-1; PS58/064-1; PS58/065-1; PS58/066-1; PS58/067-1; PS58/068-1; PS58/069-1; PS58/070-1; PS58/071-1; PS58/072-1; PS58/073-1; PS58/074-1; PS58/075-1; PS58/076-1; PS58/077-1; PS58/078-1; PS58/079-2; PS58/080-1; PS58/081-1; PS58/082-1; PS58/083-1; PS58/084-1; PS58/085-1; PS58/086-1; PS58/087-1; PS58/088-2; PS58/088-4; PS58/088-7; PS58/088-9; PS58/090-1; PS58/090-2; PS58/090-3; PS58/090-4; PS58/091-1; PS58/091-3; PS58/091-4; PS58/092-1; PS58/092-3; PS58/092-5; PS58/092-6; PS58/095-1; PS58/096-1; PS58/097-1; PS58/098-1; PS58/099-1; PS58/100-1; PS58/101-1; PS58/102-1; PS58/103-1; PS58/104-1; PS58/105-1; PS58/106-1; PS58/107-4; PS58/107-5; PS58/107-6; PS58/107-7; PS58/107-9; PS58/108-1; PS58/108-3; PS58/108-7; PS58 EISENEX; Salinity; South Atlantic; Temperature, water; Temperature, water, potential
    Type: Dataset
    Format: text/tab-separated-values, 22253 data points
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  • 3
    Publication Date: 2024-04-20
    Description: All available Argo float data from 2002 to 2016 in the Weddell Sea region were used to fit a stream function of the horizontal circulation of the Weddell Gyre. Argo float trajectories where sequences of positions are available (i.e., under ice profiles have an interpolated position and are therefore excluded) were used to estimate absolute velocity at the parking depth, which is then objectively mapped and fitted with a stream function using a cost function. Within the cost function, boundary conditions are defined such that the flow at the boundary is parallel to the boundary itself. The cost function provides the best fit stream function representative of the entire gyre circulation. The resulting stream function represents horizontal circulation at the parking depth of the Argo floats (usually 800 m; those with a different parking depth were corrected accordingly). Objectively mapped density data from the Argo float profiles were then incorporated to provide geostrophic stream functions for 41 levels between 50 and 2000 dbar. These were then vertically integrated to ultimately provide a geostrophic stream function of the upper 50-2000 dbar of the Weddell Gyre, representative of its mean horizontal circulation. Units are in Sverdrups (Sv), where 1 Sv = 1x10^6 m^3/s, and is the standard unit for quantifying volume transports. Full details of the method for the original stream function data, and the subsequent improvements for the published dataset are available in the supplemental links.
    Keywords: Argo_float_Weddell_Gyre; Argo floats; Argo profiles; Argo trajectories; Geostrophic; HAFOS; Horizontal circulation; Hybrid Antarctic Float Observation System; ocean circulation; SO-CHIC; Southern Ocean Carbon and Heat Impact on Climate; Stream Function; TRR181; TRR181 Energy transfers in Atmosphere and Ocean; Weddell Gyre; Weddell Sea
    Type: Dataset
    Format: application/x-hdf, 92.2 kBytes
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  • 4
    Publication Date: 2019-07-16
    Description: Abstract - A diagnostic model is established to estimate synoptically the mesoscale distribution of primaryproduction at the Antarctic Polar Front (APF). The model domain is a three-dimensional box, centered at roughly50° S and 10° E, of about 1° latitude and 2° longitude horizontal extent, and of 300 m depth. The box wassurveyed in high resolution during austral summer 1995/1996 with a towed undulating vehicle and bycomplementary ship based measurements. Measurements of global solar radiation, of the underwater light field,and of the chlorophyll concentration from the survey are used as input variables for the model. The model isbased on photosynthesis-light relationships, with parameters taken from in vitro incubations performed duringthe survey. The model results show mesoscale patches of elevated primary production along a meander of theAPF, and lowest production in a cold cyclonic eddy south of the front. Production is confined to a shallower depthrange in the front than outside, due to self-shading effects from generally higher mixed-layer chlorophyllconcentrations. Self-shading effects account for variations of the percent light depths, and of the saturation lightdepth, by a factor of two within the survey area. Primary production at the surface varies horizontally between 7and 56 mg C m-3 d-1 with a mean of 26 mg C m-3 d-1, and vertically integrated production ranges from 295 to975 mg C m-2 d-1, with an areal mean of 585 mg C m-2 d-1. Changes by a factor of two in integrated productionoccur on horizontal scales as small as 10 km. Production rates also differ significantly between days as a resultof changes in global solar radiation.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
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  • 5
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    In:  EPIC3Journal of Geophysical Research, Vol. 106, No. C5, pp. 9057-9073
    Publication Date: 2019-07-16
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
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  • 6
    Publication Date: 2019-07-16
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
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  • 7
    Publication Date: 2019-07-16
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
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  • 8
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    In:  EPIC3Deep-Sea Research II, 49(18), pp. 3771-3792, ISBN: 0967-0645
    Publication Date: 2019-07-16
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
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  • 9
    Publication Date: 2019-07-16
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
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  • 10
    Publication Date: 2019-07-16
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
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