980 resultados para Arctic Ocean


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Using the sea ice proxy IP25 and phytoplankton-derived biomarkers (brassicasterol and dinosterol) Arctic sea-ice conditions were reconstructed for Marine Isotope Stage (MIS) 3 to 1 in sediment cores from the north of Barents Sea continental margin across the Central Arctic to the Southern Mendeleev Ridge. Our results suggest more extensive sea-ice cover than present-day during MIS 3, increasing sea-ice growth during MIS 2 and decreased sea-ice cover during the last deglacial. The summer ice edge sustained north of the Barents Sea even during extremely cold (i.e., Last Glacial Maximum (LGM)) as well as warm periods (i.e., Bølling-Allerød). During the LGM, the western Svalbard margin and the northern Barents Sea margin areas were characterized by high concentrations of both IP25 and phytoplankton biomarkers, interpreted as a productive ice-edge situation, caused by the inflow of warm Atlantic Water. In contrast, the LGM high Arctic proper (north of 84°N) was covered by thick permanent sea ice throughout the year with rare break up, indicated by zero or near-zero biomarker concentrations. The spring/summer sea-ice margin significantly extended southwards to the southern Lomonosov Ridge and Mendeleev Ridge during the LGM. Our proxy reconstructions are very consistent with published model results based on the North Atlantic/Arctic Ocean Sea Ice Model (NAOSIM).

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Combined d18O/salinity data reveal a distinctive water mass generated during winter sea ice formation which is found predominantly in the coastal polynya region of the southern Laptev Sea. Export of the brine-enriched bottom water shows interannual variability in correlation with atmospheric conditions. Summer anticyclonic circulation is favoring an offshore transport of river water at the surface as well as a pronounced signal of brine-enriched waters at about 50 m water depth at the shelf break. Summer cyclonic atmospheric circulation favors onshore or an eastward, alongshore water transport, and at the shelf break the river water fraction is reduced and the pronounced brine signal is missing, while on the middle Laptev Sea shelf, brine-enriched waters are found in high proportions. Residence times of bottom and subsurface waters on the shelf may thereby vary considerably: an export of shelf waters to the Arctic Ocean halocline might be shut down or strongly reduced during "onshore" cyclonic atmospheric circulation, while with "offshore" anticyclonic atmospheric circulation, brine waters are exported and residence times may be as short as 1 year only.

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In der Wassersäule der Laptew See haben die Bildungs- und Verteilungsbedingungen vielfliltige Ursachen. Für die südliche Lapt ew See konnte eine Methananomalie innerhalb des Lenaausstrorns nachgewiesen werden, die im direkten Zusammenhang mit dem Flußwasser stehen muß. Mit den hohen Konzentrationen am Kontinentalhang ergab sich ein Hinweis auf eventuell vorhandene Gashydrate an der Sole eines zum Hang hin auskeilenden Permafrosts oder auf Gashydrate in den Sedimenten des Kontinentalhangs selbst. Ob es entlang der reliktisch vorhandenen, ehemaligen Flußläufe auf dem Schel f ebenfalls zu Entgasungen kommt, bleibt allerdings weiter unklar, da dieses Phänomen nicht beobachtet wurde oder die Anomalien nicht eindeutig diesem Prozeß zuzuordnen waren. Sicherlich ist die COz-Reduktion im Sediment in der Laptew See eine Hauptquelle für marines, bodennahes Methan. Die Ergebnisse. zeigen, daß dieser Bildungsprozeß vor allem für die küstennahen Bereiche wahrscheinlich ist. Dennoch gibt es auch Bereiche, wo die Zuordnung zu einer expliziten Methanquelle nicht eindeutig ist. Für eine genauere Bewertung der Herkunft der Gase sollten in künftigen Untersuchungen die Methankonzentrationen des Sediments einbezogen werden. Aber auch die Isotopensignaturen des Gases im Sediment können wertvolle Hinweise auf die Genese geben, vor allem wenn die Wasserstoffisotopie mituntersucht wird. Dies erscheint sinnvoll, da sich dur ch leichtes, bodennahes, Methan in der Wassersäule Hinweise auf biogene Bildungen ergaben, dieser Befund könnte durch weitere Untersuchungen präzisiert werden. Dies gilt aber auch für die CH4-Anomalien des OberfIächenwassers. Auch hier ergaben sich durch leicht KohIenstoffsignaturen Hinweise auf biogene in situ-Produktion. Mit detaillierteren Methankonzentrations- und d13C- CH4-Isotopenprofilen der Wassersäule könnte dieser Bildungspfad eindeutiger beschrieben werden. Es konnte ferner gezeigt werden, daß die Lapt ew See während der Sommermonate eine Quelle für atmosphärisches CI L darstellt. Das emittierte Gas geht neben vereinzelten Bodenquellen auch auf in situ-Produktion in der Wassersäule zurück. Abgesehen von der nördlichen Region geht das Methan bodennaher Anomalien innerhalb der Wassersäule sehr schnell zurück und nur ein kleiner Teil gelangt so schließlich in die Atmosphäre. Der während der ARK-XIV Expedition getestete Methansensor hat sich als ungeeignet für den Einsatz gemeinsam mit der CTD erwiesen. Es hat sich gezeigt, daß der Sensor unter diesen Bedingungen nicht genügend Zeit hat, um sein Meßsignal zu stabilisieren. Möglicherweise kann er aber in modifizierter For m und mit einer Kalibration für niedrigere Konzentrationsbereiche als stationäres Meßgerät eingesetzt werden. Für hohe CH4-Konzentrationen, wie man sie an Pockmarks antrifft, ist die Methansensormessung sicherlich auch jetzt schon eine geeignete Methode.

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Sea-ice diatoms are known to accumulate in large aggregates in and under the sea ice including melt ponds. In the Arctic, they can contribute substantially to particle export when sinking from the ice. The role and regulation of microbial aggregation in the highly seasonal, nutrient- and light-limited Arctic sea-ice ecosystem is not yet well understood, and may vary in relation to the fate of the Arctic sea-ice cover. To elucidate the mechanism controlling the formation and export of algal aggregates from sea ice, we investigated samples taken in late summer 2011 and 2012, during two cruises to the Eurasian Basin of the Central Arctic Ocean. Dense, spherical aggregates composed mainly of pennate diatoms, and filamentous aggregates formed by Melosira arctica were found in different degradation stages, with carbon to Chlorophyll a ratios ranging from 110 to 66700, and carbon to nitrogen molar ratios of 8-35 and 9-40, respectively. Fresh sub-ice algal aggregate densities ranged between 1 and 17 aggregates/m**2, corresponding to a net primary production of 0.4-40 mg C/m**2/d, contributing 3-80% of total biomass and up to 94% of total production at a local scale. A key factor controlling buoyancy of the aggregates was light intensity, regulating photosynthetic oxygen production and flotation by gas bubbles trapped within the mucous matrix, even at low ambient nutrient concentrations. Our data was used to evaluate the factors regulating the distribution and importance of the Arctic algal aggregates as carbon source for pelagic and benthic communities.

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In order to determine geochemical compositions of Late Cenozoic Arctic seawater, oxide fractions were chemically separated from 15 samples of hand-picked ferromanganese micronodules (50-300 mu m). The success of the chemical separation is indicated by the fact that >97% of the Sr in the oxide fraction is seawater-derived. Rare-earth element (REE) abundances of the Arctic micronodule oxide fractions are much lower than those of bulk Fe-Mn nodules from other ocean basins of the world (e.g., 33 vs. 145 ppm Nd), but the Arctic oxides are enriched in Ce relative to Nd (Ce-N/Nd-N=2.2+/-0.5) and have convex-upward, shale-normalized REE patterns (Nd-N/Gd-N=0.61+/-0.06, Gd-N/Yb-N = 1.5+/-0.2, Nd-N/Yb-N = 0.9+/-0.2), typical of other hydrogenous and diagenetic marine Fe-Mn-oxides. Bulk sediment samples from the central Arctic Ocean have REE abundances and patterns that are characteristic of those of post-Archean shale. Non-detrital fractions (calcite + oxide coatings) of Recent Arctic foraminifera have REE abundances and patterns similar to those of Recent foraminifera from the Atlantic Ocean. Electron microprobe analyses (n=178) of transition elements in 29 Arctic Fe-Mn micronodules from five different stratigraphic intervals of Late Cenozoic sediment indicate that oxide accretion occurred as a result of hydrogenetic and diagenetic processes close to the sediment-seawater interface. Transition element ratios suggest that no oxide accretion occurred during transitions from oxic to suboxic diagenetic conditions. Only K is correlated with Si and Al, and ratios of these elements suggest that they are associated with illite or phillipsite. Ca and Mg are correlated with Mn, which indicates variable substitution of these elements from seawater into the manganate phase. The geochemical characteristics of Arctic Fe-Mn micronodules indicate that the REEs of the oxide fractions were ultimately derived from seawater. However, because of minute contributions of Sr from siliciclastic detritus during diagenesis or during the chemical leaching procedure, Sr isotope compositions of the oxide fractions cannot be used to trace temporal changes in the Sr-87/Sr-86 ratio of Arctic seawater or to improve the chronostratigraphy.