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  • image/svg+xml art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos Open Access logo, converted into svg, designed by PLoS. This version with transparent background. http://commons.wikimedia.org/wiki/File:Open_Access_logo_PLoS_white.svg art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos http://www.plos.org/
    Authors: Ryabov, Alexey; Kerimoglu, Onur; Litchman, Elena; Olenina, Irina; +5 Authors

    Organisms’ size and shape have a profound influence on ecophysiological performance and evolutionary fitness, suggesting a link between morphology and diversity. While unimodal relationships between size and species richness were found for many taxa(1–4), much less is known on how richness is related to shape, in particular in the microbial realm. Here we analyse a novel globally extensive data set of marine unicellular phytoplankton, the major group of photosynthetic microbes, which exhibit an astounding diversity of cell sizes and shapes(5). We quantify the variation in size and shape and explore their effects on taxonomic diversity(6, 7). We find that cells of intermediate volume exhibit the greatest shape variation, with shapes ranging from oblate to extremely elongated forms, while very small and large cells are mostly compact (e.g., spherical or cubic). We show that cell shape has a strong effect on phytoplankton diversity, comparable in magnitude to the effect of cell volume, with both traits explaining up to 92% of the variance in phytoplankton diversity. Species richness decays exponentially with cell elongation and displays a log-normal dependence on cell volume, peaking for compact cells of intermediate volume. Our findings highlight different selective pressures and constraints on phytoplankton of different geometry and improve our understanding of the evolutionary rules of life.

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    https://epic.awi.de/id/eprint/...
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    Ecology Letters
    Article . 2021 . Peer-reviewed
    License: CC BY
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    Ecology Letters
    Article . Preprint
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    Ecology Letters
    Article . 2020
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      image/svg+xml art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos Open Access logo, converted into svg, designed by PLoS. This version with transparent background. http://commons.wikimedia.org/wiki/File:Open_Access_logo_PLoS_white.svg art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos http://www.plos.org/ Hereon Publication D...arrow_drop_down
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      Ecology Letters
      Article . 2021 . Peer-reviewed
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      Ecology Letters
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      Ecology Letters
      Article . 2020
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    Authors: Jeffrey A. Hawkes; Pamela E. Rossel; Aron Stubbins; David A. Butterfield; +7 Authors

    Oceanic dissolved organic carbon (DOC) is an important carbon pool, similar in magnitude to atmospheric CO2, but the fate of its oldest forms is not well understood1, 2. Hot hydrothermal circulation may facilitate the degradation of otherwise un-reactive dissolved organic matter, playing an important role in the long-term global carbon cycle. The oldest, most recalcitrant forms of DOC, which make up most of oceanic DOC, can be recovered by solid-phase extraction. Here we present measurements of solid-phase extractable DOC from samples collected between 2009 and 2013 at seven vent sites in the Atlantic, Pacific and Southern oceans, along with magnesium concentrations, a conservative tracer of water circulation through hydrothermal systems. We find that magnesium and solid-phase extractable DOC concentrations are correlated, suggesting that solid-phase extractable DOC is almost entirely lost from solution through mineralization or deposition during circulation through hydrothermal vents with fluid temperatures of 212–401 °C. In laboratory experiments, where we heated samples to 380 °C for four days, we found a similar removal efficiency. We conclude that thermal degradation alone can account for the loss of solid-phase extractable DOC in natural hydrothermal systems, and that its maximum lifetime is constrained by the timescale of hydrothermal cycling, at about 40 million years3.

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    Nature Geoscience
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      Nature Geoscience
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  • image/svg+xml art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos Open Access logo, converted into svg, designed by PLoS. This version with transparent background. http://commons.wikimedia.org/wiki/File:Open_Access_logo_PLoS_white.svg art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos http://www.plos.org/
    Authors: Donis, Daphne; Janssen, Felix; Wenzhöfer, Frank; Dellwig, Olaf; +2 Authors
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    Authors: Laura Käse; Alexandra Kraberg; Katja Metfies; Stefan Neuhaus; +4 Authors

    Abstract The dynamics of diatoms and dinoflagellates have been monitored for many decades at the Helgoland Roads Long-Term Ecological Research site and are relatively well understood. In contrast, small-sized eukaryotic microbes and their community changes are still much more elusive, mainly due to their small size and uniform morphology, which makes them difficult to identify microscopically. By using next-generation sequencing, we wanted to shed light on the Helgoland planktonic community dynamics, including nano- and picoplankton, during a spring bloom. We took samples from March to May 2016 and sequenced the V4 region of the 18S rDNA. Our results showed that mixotrophic and heterotrophic taxa were more abundant than autotrophic diatoms. Dinoflagellates dominated the sequence assemblage, and several small-sized eukaryotic microbes like Haptophyta, Choanoflagellata, Marine Stramenopiles and Syndiniales were identified. A diverse background community including taxa from all size classes was present during the whole sampling period. Five phases with several communities were distinguished. The fastest changes in community composition took place in phase 3, while the communities from phases 1 to 5 were more similar to each other despite contrasting environmental conditions. Synergy effects of next-generation sequencing and traditional methods may be exploited in future long-term observations.

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    MPG.PuRe
    Article . 2020
    Data sources: MPG.PuRe
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    Journal of Plankton Research
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    MPG.PuRe
    Article . 2020
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    Journal of Plankton Research
    Article . 2020 . Peer-reviewed
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      MPG.PuRe
      Article . 2020
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      Journal of Plankton Research
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      MPG.PuRe
      Article . 2020
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      Journal of Plankton Research
      Article . 2020 . Peer-reviewed
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    Authors: Jorge Alvarez-Solas; Rubén Banderas; Alexander Robinson; Marisa Montoya;

    Abstract. The last glacial period (LGP; ca. 110–10 kyr BP) was marked by the existence of two types of abrupt climatic changes, Dansgaard–Oeschger (DO) and Heinrich (H) events. Although the mechanisms behind these are not fully understood, it is generally accepted that the presence of ice sheets played an important role in their occurrence. While an important effort has been made to investigate the dynamics and evolution of the Laurentide ice sheet (LIS) during this period, the Eurasian ice sheet (EIS) has not received much attention, in particular from a modeling perspective. However, meltwater discharge from this and other ice sheets surrounding the Nordic seas is often implied as a potential cause of ocean instabilities that lead to glacial abrupt climate changes. Thus, a better comprehension of the evolution of the EIS during the LGP is important to understand its role in glacial abrupt climate changes. Here we investigate the response of the EIS to millennial-scale climate variability during the LGP. We use a hybrid, three-dimensional, thermomechanical ice-sheet model that includes ice shelves and ice streams. The model is forced off-line via a novel perturbative approach that, as opposed to conventional methods, clearly differentiates between the spatial patterns of millennial-scale and orbital-scale climate variability. Thus, it provides a more realistic treatment of the forcing at millennial timescales. The effect of both atmospheric and oceanic variations are included. Our results show that the EIS responds with enhanced ice discharge in phase with interstadial warming in the North Atlantic when forced with surface ocean temperatures. Conversely, when subsurface ocean temperatures are used, enhanced ice discharge occurs both during stadials and at the beginning of the interstadials. Separating the atmospheric and oceanic effects demonstrates the major role of the ocean in controlling the dynamics of the EIS on millennial timescales. While the atmospheric forcing alone is only able to produce modest iceberg discharges, warming of the ocean leads to higher rates of iceberg discharges as a result of relatively strong basal melting at the margins of the ice sheet. Our results clearly show the capability of the EIS to react to glacial abrupt climate changes, and highlight the need for stronger constraints on the ice sheet's glacial dynamics and climate–ocean interactions.

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    Climate of the Past
    Article . 2019
    Data sources: DOAJ-Articles
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    Climate of the Past (CP)
    Article . 2019 . Peer-reviewed
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    Article . 2019
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    Climate of the Past (CP)
    Article
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    Copernicus Publications
    Other literature type . 2019
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      Climate of the Past
      Article . 2019
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      Climate of the Past (CP)
      Article . 2019 . Peer-reviewed
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      Article . 2019
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      Climate of the Past (CP)
      Article
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    Authors: M. Lizotte; B. Juhls; B. Juhls; B. Juhls; +52 Authors

    Climate warming and related drivers of soil thermal change in the Arctic are expected to modify the distribution and dynamics of carbon contained in perennially frozen grounds. Thawing of permafrost in the Mackenzie Delta region of northwestern Canada, coupled with increases in river discharge and coastal erosion, trigger the release of terrestrial organic matter (OMt) from the largest Arctic drainage basin in North America into the Arctic Ocean. While this process is ongoing, well-established, and its rate is accelerating, the fate of the newly-mobilized organic matter, as it transits from the watershed through the delta and into the marine system, remains poorly understood. In the framework of the European Horizon 2020 Nunataryuk programme, and as part of the Work Package 4 (WP4) Coastal Waters theme, four field expeditions were conducted in the Mackenzie Delta region and southern Beaufort Sea from April to September 2019. The temporal sampling design allowed the survey of ambient conditions in the coastal waters under full ice cover prior to the spring freshet, during ice break-up in summer, as well as anterior to the freeze-up period in fall. To capture the fluvial-marine transition zone, and with distinct challenges related to shallow waters and changing seasonal and meteorological conditions, the field sampling was conducted in close partnership with members of the communities of Aklavik, Inuvik and Tuktoyaktuk, using several platforms: helicopters, snowmobiles and small boats. Water column profiles of physical and optical variables were measured in situ, while surface water, groundwater and sediment samples were collected and preserved for the determination of the composition and sources of OMt, including particulate and dissolved organic carbon (POC, DOC), and chromophoric dissolved organic matter (CDOM), as well as a suite of physical, chemical and biological variables. Here we present an overview of the standardized datasets, including hydrographic profiles, remote sensing reflectance, temperature and salinity, particle absorption, nutrients, dissolved organic carbon, particulate organic carbon, particulate organic nitrogen, colored dissolved organic matter absorption, fluorescent dissolved organic matter intensity, suspended particulate matter, total particulate carbon, total particulate nitrogen, stable water isotopes, radon in water, bacterial abundance, and a string of phytoplankton pigments including total chlorophyll. Datasets and related metadata can be found in Juhls et al. 2021. https://doi.pangaea.de/10.1594/PANGAEA.937587.

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    https://doi.org/10.5194/essd-2...
    Preprint . 2022 . Peer-reviewed
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    Earth System Science Data
    Article . 2023
    Data sources: NARCIS
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    Earth System Science Data (ESSD)
    Other literature type . 2022
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    ZENODO; Earth System Science Data (ESSD)
    Article . 2023 . Peer-reviewed
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    Earth System Science Data
    Article . 2023
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      https://doi.org/10.5194/essd-2...
      Preprint . 2022 . Peer-reviewed
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      Article . 2023
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      ZENODO; Earth System Science Data (ESSD)
      Article . 2023 . Peer-reviewed
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      Article . 2023
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    Authors: W. Rush; W. Rush; J. Self-Trail; Y. Zhang; +8 Authors

    Eocene transient global warming events (hyperthermals) can provide insight into a future warmer world. While much research has focused on the Paleocene–Eocene Thermal Maximum (PETM), hyperthermals of a smaller magnitude can be used to characterize climatic responses over different magnitudes of forcing. This study identifies two events, namely the Eocene Thermal Maximum 2 (ETM2 and H2), in shallow marine sediments of the Eocene-aged Salisbury Embayment of Maryland, based on magnetostratigraphy, calcareous nannofossil, and dinocyst biostratigraphy, as well as the recognition of negative stable carbon isotope excursions (CIEs) in biogenic calcite. We assess local environmental change in the Salisbury Embayment, utilizing clay mineralogy, marine palynology, δ18O of biogenic calcite, and biomarker paleothermometry (TEX86). Paleotemperature proxies show broad agreement between surface water and bottom water temperature changes. However, the timing of the warming does not correspond to the CIE of the ETM2 as expected from other records, and the highest values are observed during H2, suggesting factors in addition to pCO2 forcing have influenced temperature changes in the region. The ETM2 interval exhibits a shift in clay mineralogy from smectite-dominated facies to illite-rich facies, suggesting hydroclimatic changes but with a rather dampened weathering response relative to that of the PETM in the same region. Organic walled dinoflagellate cyst assemblages show large fluctuations throughout the studied section, none of which seem systematically related to CIE warming. These observations are contrary to the typical tight correspondence between climate change and assemblages across the PETM, regionally and globally, and ETM2 in the Arctic Ocean. The data do indicate very warm and (seasonally) stratified conditions, likely salinity-driven, across H2. The absence of evidence for strong perturbations in local hydrology and nutrient supply during ETM2 and H2, compared to the PETM, is consistent with the less extreme forcing and the warmer pre-event baseline, as well as the non-linear response in hydroclimates to greenhouse forcing.

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    Copernicus Publications
    Other literature type . 2023
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    NIOZ Repository
    Article . 2023
    Data sources: NIOZ Repository
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    Climate of the Past
    Article . 2023
    Data sources: DOAJ
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    https://doi.org/10.5194/egusph...
    Preprint . 2023 . Peer-reviewed
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    Climate of the Past (CP)
    Article . 2023 . Peer-reviewed
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      Copernicus Publications
      Other literature type . 2023
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      NIOZ Repository
      Article . 2023
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      Climate of the Past
      Article . 2023
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      https://doi.org/10.5194/egusph...
      Preprint . 2023 . Peer-reviewed
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      Climate of the Past (CP)
      Article . 2023 . Peer-reviewed
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    Authors: SHIBATA, Kiyotaka; LEHMANN, Ralph;

    Ozone loss pathways and their rates in the ozone quasi-biennial oscillation (QBO), which is simulated by a chemistry-climate model developed by the Meteorological Research Institute of Japan, are evaluated using an ob- jective pathway analysis program (PAP). The analyzed chemical system contains catalytic cycles caused by NOx , HOx , ClOx , Ox , and BrOx . PAP quantified the rates of all significant catalytic ozone loss cycles, and evaluated the partitioning among these cycles. The QBO amplitude of the sum of all cycles amounts to about 4 and 14 % of the annual mean of the total ozone loss rate at 10 and 20 hPa, respectively. The contribution of catalytic cycles to the QBO of the ozone loss rate is found to be as follows: NOx cycles contribute the largest fraction (50 – 85 %) of the QBO amplitude of the total ozone loss rate; HOx cycles are the second-largest (20 – 30 %) below 30 hPa and the third-largest (about 10 %) above 20 hPa; Ox cycles rank third (5 – 20 %) below 30 hPa and second (about 20 %) above 20 hPa; ClOx cycles rank fourth (5 – 10 %); and BrOx cycles are almost negligible. The relative contribution of the NOx and Ox cycles to the QBO amplitude of ozone loss differs by up to 10 % and 20 %, respectively, from their contribution to the annual mean ozone loss rate. The ozone QBO at 20 hPa is mainly driven by ozone transport, which then alters the ozone loss rate. In contrast, the ozone QBO at 10 hPa is driven chemically by NOx and the temperature dependence of [O]/[O3], which results from the temperature dependence of the reaction O + O2 + M → O3 + M. In addition, the ozone QBO at 10 hPa is influenced by the overhead ozone column, which affects [O]/[O3] (through ozone photolysis) and the ozone production rate (through oxygen photolysis).

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    Journal of the Meteorological Society of Japan
    Article . 2020 . Peer-reviewed
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      Journal of the Meteorological Society of Japan
      Article . 2020 . Peer-reviewed
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    Authors: Cristina Schultz; Scott C. Doney; Judith Hauck; Maria T. Kavanaugh; +1 Authors

    AbstractThe ocean coastal‐shelf‐slope ecosystem west of the Antarctic Peninsula (WAP) is a biologically productive region that could potentially act as a large sink of atmospheric carbon dioxide. The duration of the sea‐ice season in the WAP shows large interannual variability. However, quantifying the mechanisms by which sea ice impacts biological productivity and surface dissolved inorganic carbon (DIC) remains a challenge due to the lack of data early in the phytoplankton growth season. In this study, we implemented a circulation, sea‐ice, and biogeochemistry model (MITgcm‐REcoM2) to study the effect of sea ice on phytoplankton blooms and surface DIC. Results were compared with satellite sea‐ice and ocean color, and research ship surveys from the Palmer Long‐Term Ecological Research (LTER) program. The simulations suggest that the annual sea‐ice cycle has an important role in the seasonal DIC drawdown. In years of early sea‐ice retreat, there is a longer growth season leading to larger seasonally integrated net primary production (NPP). Part of the biological uptake of DIC by phytoplankton, however, is counteracted by increased oceanic uptake of atmospheric CO2. Despite lower seasonal NPP, years of late sea‐ice retreat show larger DIC drawdown, attributed to lower air‐sea CO2 fluxes and increased dilution by sea‐ice melt. The role of dissolved iron and iron limitation on WAP phytoplankton also remains a challenge due to the lack of data. The model results suggest sediments and glacial meltwater are the main sources in the coastal and shelf regions, with sediments being more influential in the northern coast.

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    https://doi.org/10.1002/essoar...
    Preprint . 2020
    License: CC BY NC ND
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    Journal of Geophysical Research Biogeosciences
    Article . 2021 . Peer-reviewed
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    Journal of Geophysical Research Biogeosciences
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      https://doi.org/10.1002/essoar...
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      Journal of Geophysical Research Biogeosciences
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    Authors: Bayer, Bettina;

    Das Untersuchungsgebiet Dronning Maud Land (DML) umfasst einschließlich des Weddell Meeres und der Lazarev See in etwa das Gebiet zwischen der geographischen Länge 15°W und 15°E und der geographischen Breite 68°S und 75°S - eine Fläche von über 1.500.000 qkm. Geologisch und tektonisch betrachtet prägten drei markante Ereignisse das heutige DML: Erstens die Grenvillische Orogenese vor ca. 1.1 Ga, verursacht durch die Bildung des Großkontinentes Rodinia, zweitens die Panafrikanische Orogenese vor ca. 500 Ma, die durch den Zusammenstoß von West- und Ostgondwana den Großkontinent Gondwana formte, und drittens der Zerfall Gondwanas vor ca. 180 Ma, der in der heutigen Lazarev See initiiert worden war. Die Grundlage dieser Arbeit bilden seismologische, refraktionsseismische und aerogravimetrische Datensätze, durch deren Kombination sich der strukturelle Aufbau ebenso wie die räumliche Variation der Lithosphärenmächtigkeit untersuchen lässt. Letztere ist essentiell für die Bestimmung des regionalen Geoids, welches das Hauptziel des VISA-Projektes ist. Im Rahmen dieses Projektes wurden unter anderem flugzeuggestützte Potentialfeld-, Eisradar- und GPS-Messungen durchgeführt und zudem an ausgewählten Orten im DML seismographische Stationen temporär ausgebracht. Mithilfe der an diesen seismographischen Stationen aufgezeichneten Erdbebenwellen konnten trotz der sehr kurzen Registrierzeiten mit seismologischen Methoden Rückschlüsse über Struktur und Dynamik des tieferen Untergrundes erhalten werden. Durch eine Analyse der seismischen Anisotropie, welche die Aufspaltung von Scherwellen beim Durchgang durch ein anisotropes Medium untersucht sog. shear wave splitting, konnte auf vergangene und rezente großflächige Deformationsprozesse im Oberen Erdmantel geschlossen werden. Die Ergebnisse dieser Analyse sind im Untersuchungsgebiet nicht einheitlich, gemeinsam haben sie jedoch ihre Ursache in den vergangenen Deformationsprozessen und nicht in einer rezenten Plattenbewegung. Im Speziellen verweist die abrupte Richtungsänderung der Schnellen Achsen im Bereich der Heimefront Scherzone (westliches DML) auf eine Suturzone, die die mesoproterozoische Maudheim-Provinz von dem südlich angrenzenden Ostantarktischen Kraton trennt. Die beobachtete Aufspaltung der Scherwellen in den Aufzeichnungen der russischen Station Novolazarevskaya (Novo, zentrales DML) kann mit einem doppelschichtigen Anisotropiemodell des Oberen Mantels erklärt werden. Inkonsistente Ergebnisse für die südafrikanische Station Sanae IV (SNAA) verweisen auf eine kompliziertere Struktur des tieferen Untergrundes.Mithilfe der Berechnung von Receiver Funktionen, die auf der Konversion von teleseismischen P- zu S-Wellen an seismischen Diskontinuitäten beruhen, konnten neben der Bestimmung der Krustenmächtigkeiten auch die v_p/v_s-Verhältnisse ermittelt werden. Letztere sind im Untersuchungsgebiet nicht einheitlich und klassifizieren die Krustenzusammensetzung des zentralen DML als felsisch und die des westlichen DML als mafisch. Basaltische Intrusionen, die vermutlich auf den Gondwanazerfall im Jura zurückzuführen sind, erklären das erhöhte v_p/v_s-Verhältnis für die Station SNAA. Die ermittelten Krustenmächtigkeiten zeigen, wie auch bereits publizierte refraktionsseismische Krustenquerschnitte im Untersuchungsgebiet, einen Kruste-Mantel-Übergang (Moho), der von der KÜste ausgehend in sÜdliche Richtung kontinuierlich abfällt. Unter den Gebirgszügen der Heimefrontfjella und des Wohlthat-Massives nimmt die Krustenmächtigkeit einen maximalen Wert von 50 km an. Orogene Wurzeln deuten sich zwar an, sie sind aber aufgrund fehlender Randbedingungen vor allem südlich der Gebirgszüge nicht mit Bestimmtheit zu identifizieren. Ein Vergleich der Mohotiefen mit anderen Fragmenten Gondwanas, z.B. mit dem südlichen Afrika, zeigt eine große Ähnlichkeit.Im Kottasgebirge (westliches DML) wurde im Südsommer 1989/90 ein refraktionsseismisches Experiment durchgeführt. Das Profil verlief vom nördlichen Vorland über das Escarpment der Heimefrontfjella bis zum südlich anschließenden Plateau. In der Mohotopographie zeigt sich eine Stufe, die mehrere Kilometer hoch ist und als eine Suturzone interpretiert wird. Sie trennt das kibarische Kottasgebirge vom südlich anschließenden Ostantarktischen Kraton. Diese lokalen Informationen mündeten als Randbedingungen in eine 3D-Schweremodellierung, die schließlich eine flächendeckende Kartierung der Moho ermöglichte.

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    Authors: Ryabov, Alexey; Kerimoglu, Onur; Litchman, Elena; Olenina, Irina; +5 Authors

    Organisms’ size and shape have a profound influence on ecophysiological performance and evolutionary fitness, suggesting a link between morphology and diversity. While unimodal relationships between size and species richness were found for many taxa(1–4), much less is known on how richness is related to shape, in particular in the microbial realm. Here we analyse a novel globally extensive data set of marine unicellular phytoplankton, the major group of photosynthetic microbes, which exhibit an astounding diversity of cell sizes and shapes(5). We quantify the variation in size and shape and explore their effects on taxonomic diversity(6, 7). We find that cells of intermediate volume exhibit the greatest shape variation, with shapes ranging from oblate to extremely elongated forms, while very small and large cells are mostly compact (e.g., spherical or cubic). We show that cell shape has a strong effect on phytoplankton diversity, comparable in magnitude to the effect of cell volume, with both traits explaining up to 92% of the variance in phytoplankton diversity. Species richness decays exponentially with cell elongation and displays a log-normal dependence on cell volume, peaking for compact cells of intermediate volume. Our findings highlight different selective pressures and constraints on phytoplankton of different geometry and improve our understanding of the evolutionary rules of life.

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    Ecology Letters
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    Ecology Letters
    Article . 2020
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      Ecology Letters
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      Ecology Letters
      Article . 2020
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    Authors: Jeffrey A. Hawkes; Pamela E. Rossel; Aron Stubbins; David A. Butterfield; +7 Authors

    Oceanic dissolved organic carbon (DOC) is an important carbon pool, similar in magnitude to atmospheric CO2, but the fate of its oldest forms is not well understood1, 2. Hot hydrothermal circulation may facilitate the degradation of otherwise un-reactive dissolved organic matter, playing an important role in the long-term global carbon cycle. The oldest, most recalcitrant forms of DOC, which make up most of oceanic DOC, can be recovered by solid-phase extraction. Here we present measurements of solid-phase extractable DOC from samples collected between 2009 and 2013 at seven vent sites in the Atlantic, Pacific and Southern oceans, along with magnesium concentrations, a conservative tracer of water circulation through hydrothermal systems. We find that magnesium and solid-phase extractable DOC concentrations are correlated, suggesting that solid-phase extractable DOC is almost entirely lost from solution through mineralization or deposition during circulation through hydrothermal vents with fluid temperatures of 212–401 °C. In laboratory experiments, where we heated samples to 380 °C for four days, we found a similar removal efficiency. We conclude that thermal degradation alone can account for the loss of solid-phase extractable DOC in natural hydrothermal systems, and that its maximum lifetime is constrained by the timescale of hydrothermal cycling, at about 40 million years3.

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    Nature Geoscience
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    Authors: Donis, Daphne; Janssen, Felix; Wenzhöfer, Frank; Dellwig, Olaf; +2 Authors
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    Authors: Laura Käse; Alexandra Kraberg; Katja Metfies; Stefan Neuhaus; +4 Authors

    Abstract The dynamics of diatoms and dinoflagellates have been monitored for many decades at the Helgoland Roads Long-Term Ecological Research site and are relatively well understood. In contrast, small-sized eukaryotic microbes and their community changes are still much more elusive, mainly due to their small size and uniform morphology, which makes them difficult to identify microscopically. By using next-generation sequencing, we wanted to shed light on the Helgoland planktonic community dynamics, including nano- and picoplankton, during a spring bloom. We took samples from March to May 2016 and sequenced the V4 region of the 18S rDNA. Our results showed that mixotrophic and heterotrophic taxa were more abundant than autotrophic diatoms. Dinoflagellates dominated the sequence assemblage, and several small-sized eukaryotic microbes like Haptophyta, Choanoflagellata, Marine Stramenopiles and Syndiniales were identified. A diverse background community including taxa from all size classes was present during the whole sampling period. Five phases with several communities were distinguished. The fastest changes in community composition took place in phase 3, while the communities from phases 1 to 5 were more similar to each other despite contrasting environmental conditions. Synergy effects of next-generation sequencing and traditional methods may be exploited in future long-term observations.

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    MPG.PuRe
    Article . 2020
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    Journal of Plankton Research
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    MPG.PuRe
    Article . 2020
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    Journal of Plankton Research
    Article . 2020 . Peer-reviewed
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      MPG.PuRe
      Article . 2020
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      Journal of Plankton Research
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      MPG.PuRe
      Article . 2020
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      Journal of Plankton Research
      Article . 2020 . Peer-reviewed
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    Authors: Jorge Alvarez-Solas; Rubén Banderas; Alexander Robinson; Marisa Montoya;

    Abstract. The last glacial period (LGP; ca. 110–10 kyr BP) was marked by the existence of two types of abrupt climatic changes, Dansgaard–Oeschger (DO) and Heinrich (H) events. Although the mechanisms behind these are not fully understood, it is generally accepted that the presence of ice sheets played an important role in their occurrence. While an important effort has been made to investigate the dynamics and evolution of the Laurentide ice sheet (LIS) during this period, the Eurasian ice sheet (EIS) has not received much attention, in particular from a modeling perspective. However, meltwater discharge from this and other ice sheets surrounding the Nordic seas is often implied as a potential cause of ocean instabilities that lead to glacial abrupt climate changes. Thus, a better comprehension of the evolution of the EIS during the LGP is important to understand its role in glacial abrupt climate changes. Here we investigate the response of the EIS to millennial-scale climate variability during the LGP. We use a hybrid, three-dimensional, thermomechanical ice-sheet model that includes ice shelves and ice streams. The model is forced off-line via a novel perturbative approach that, as opposed to conventional methods, clearly differentiates between the spatial patterns of millennial-scale and orbital-scale climate variability. Thus, it provides a more realistic treatment of the forcing at millennial timescales. The effect of both atmospheric and oceanic variations are included. Our results show that the EIS responds with enhanced ice discharge in phase with interstadial warming in the North Atlantic when forced with surface ocean temperatures. Conversely, when subsurface ocean temperatures are used, enhanced ice discharge occurs both during stadials and at the beginning of the interstadials. Separating the atmospheric and oceanic effects demonstrates the major role of the ocean in controlling the dynamics of the EIS on millennial timescales. While the atmospheric forcing alone is only able to produce modest iceberg discharges, warming of the ocean leads to higher rates of iceberg discharges as a result of relatively strong basal melting at the margins of the ice sheet. Our results clearly show the capability of the EIS to react to glacial abrupt climate changes, and highlight the need for stronger constraints on the ice sheet's glacial dynamics and climate–ocean interactions.

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    Climate of the Past
    Article . 2019
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    Climate of the Past (CP)
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    Climate of the Past (CP)
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      Climate of the Past
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      Climate of the Past (CP)
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      Climate of the Past (CP)
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    Authors: M. Lizotte; B. Juhls; B. Juhls; B. Juhls; +52 Authors

    Climate warming and related drivers of soil thermal change in the Arctic are expected to modify the distribution and dynamics of carbon contained in perennially frozen grounds. Thawing of permafrost in the Mackenzie Delta region of northwestern Canada, coupled with increases in river discharge and coastal erosion, trigger the release of terrestrial organic matter (OMt) from the largest Arctic drainage basin in North America into the Arctic Ocean. While this process is ongoing, well-established, and its rate is accelerating, the fate of the newly-mobilized organic matter, as it transits from the watershed through the delta and into the marine system, remains poorly understood. In the framework of the European Horizon 2020 Nunataryuk programme, and as part of the Work Package 4 (WP4) Coastal Waters theme, four field expeditions were conducted in the Mackenzie Delta region and southern Beaufort Sea from April to September 2019. The temporal sampling design allowed the survey of ambient conditions in the coastal waters under full ice cover prior to the spring freshet, during ice break-up in summer, as well as anterior to the freeze-up period in fall. To capture the fluvial-marine transition zone, and with distinct challenges related to shallow waters and changing seasonal and meteorological conditions, the field sampling was conducted in close partnership with members of the communities of Aklavik, Inuvik and Tuktoyaktuk, using several platforms: helicopters, snowmobiles and small boats. Water column profiles of physical and optical variables were measured in situ, while surface water, groundwater and sediment samples were collected and preserved for the determination of the composition and sources of OMt, including particulate and dissolved organic carbon (POC, DOC), and chromophoric dissolved organic matter (CDOM), as well as a suite of physical, chemical and biological variables. Here we present an overview of the standardized datasets, including hydrographic profiles, remote sensing reflectance, temperature and salinity, particle absorption, nutrients, dissolved organic carbon, particulate organic carbon, particulate organic nitrogen, colored dissolved organic matter absorption, fluorescent dissolved organic matter intensity, suspended particulate matter, total particulate carbon, total particulate nitrogen, stable water isotopes, radon in water, bacterial abundance, and a string of phytoplankton pigments including total chlorophyll. Datasets and related metadata can be found in Juhls et al. 2021. https://doi.pangaea.de/10.1594/PANGAEA.937587.

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    https://doi.org/10.5194/essd-2...
    Preprint . 2022 . Peer-reviewed
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    Earth System Science Data
    Article . 2023
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    Earth System Science Data (ESSD)
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    ZENODO; Earth System Science Data (ESSD)
    Article . 2023 . Peer-reviewed
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      https://doi.org/10.5194/essd-2...
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      ZENODO; Earth System Science Data (ESSD)
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    Authors: W. Rush; W. Rush; J. Self-Trail; Y. Zhang; +8 Authors

    Eocene transient global warming events (hyperthermals) can provide insight into a future warmer world. While much research has focused on the Paleocene–Eocene Thermal Maximum (PETM), hyperthermals of a smaller magnitude can be used to characterize climatic responses over different magnitudes of forcing. This study identifies two events, namely the Eocene Thermal Maximum 2 (ETM2 and H2), in shallow marine sediments of the Eocene-aged Salisbury Embayment of Maryland, based on magnetostratigraphy, calcareous nannofossil, and dinocyst biostratigraphy, as well as the recognition of negative stable carbon isotope excursions (CIEs) in biogenic calcite. We assess local environmental change in the Salisbury Embayment, utilizing clay mineralogy, marine palynology, δ18O of biogenic calcite, and biomarker paleothermometry (TEX86). Paleotemperature proxies show broad agreement between surface water and bottom water temperature changes. However, the timing of the warming does not correspond to the CIE of the ETM2 as expected from other records, and the highest values are observed during H2, suggesting factors in addition to pCO2 forcing have influenced temperature changes in the region. The ETM2 interval exhibits a shift in clay mineralogy from smectite-dominated facies to illite-rich facies, suggesting hydroclimatic changes but with a rather dampened weathering response relative to that of the PETM in the same region. Organic walled dinoflagellate cyst assemblages show large fluctuations throughout the studied section, none of which seem systematically related to CIE warming. These observations are contrary to the typical tight correspondence between climate change and assemblages across the PETM, regionally and globally, and ETM2 in the Arctic Ocean. The data do indicate very warm and (seasonally) stratified conditions, likely salinity-driven, across H2. The absence of evidence for strong perturbations in local hydrology and nutrient supply during ETM2 and H2, compared to the PETM, is consistent with the less extreme forcing and the warmer pre-event baseline, as well as the non-linear response in hydroclimates to greenhouse forcing.

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    NIOZ Repository
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    Climate of the Past
    Article . 2023
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    https://doi.org/10.5194/egusph...
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    Climate of the Past (CP)
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      Climate of the Past
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      https://doi.org/10.5194/egusph...
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    Authors: SHIBATA, Kiyotaka; LEHMANN, Ralph;

    Ozone loss pathways and their rates in the ozone quasi-biennial oscillation (QBO), which is simulated by a chemistry-climate model developed by the Meteorological Research Institute of Japan, are evaluated using an ob- jective pathway analysis program (PAP). The analyzed chemical system contains catalytic cycles caused by NOx , HOx , ClOx , Ox , and BrOx . PAP quantified the rates of all significant catalytic ozone loss cycles, and evaluated the partitioning among these cycles. The QBO amplitude of the sum of all cycles amounts to about 4 and 14 % of the annual mean of the total ozone loss rate at 10 and 20 hPa, respectively. The contribution of catalytic cycles to the QBO of the ozone loss rate is found to be as follows: NOx cycles contribute the largest fraction (50 – 85 %) of the QBO amplitude of the total ozone loss rate; HOx cycles are the second-largest (20 – 30 %) below 30 hPa and the third-largest (about 10 %) above 20 hPa; Ox cycles rank third (5 – 20 %) below 30 hPa and second (about 20 %) above 20 hPa; ClOx cycles rank fourth (5 – 10 %); and BrOx cycles are almost negligible. The relative contribution of the NOx and Ox cycles to the QBO amplitude of ozone loss differs by up to 10 % and 20 %, respectively, from their contribution to the annual mean ozone loss rate. The ozone QBO at 20 hPa is mainly driven by ozone transport, which then alters the ozone loss rate. In contrast, the ozone QBO at 10 hPa is driven chemically by NOx and the temperature dependence of [O]/[O3], which results from the temperature dependence of the reaction O + O2 + M → O3 + M. In addition, the ozone QBO at 10 hPa is influenced by the overhead ozone column, which affects [O]/[O3] (through ozone photolysis) and the ozone production rate (through oxygen photolysis).

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    Journal of the Meteorological Society of Japan
    Article . 2020 . Peer-reviewed
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      Journal of the Meteorological Society of Japan
      Article . 2020 . Peer-reviewed
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    Authors: Cristina Schultz; Scott C. Doney; Judith Hauck; Maria T. Kavanaugh; +1 Authors

    AbstractThe ocean coastal‐shelf‐slope ecosystem west of the Antarctic Peninsula (WAP) is a biologically productive region that could potentially act as a large sink of atmospheric carbon dioxide. The duration of the sea‐ice season in the WAP shows large interannual variability. However, quantifying the mechanisms by which sea ice impacts biological productivity and surface dissolved inorganic carbon (DIC) remains a challenge due to the lack of data early in the phytoplankton growth season. In this study, we implemented a circulation, sea‐ice, and biogeochemistry model (MITgcm‐REcoM2) to study the effect of sea ice on phytoplankton blooms and surface DIC. Results were compared with satellite sea‐ice and ocean color, and research ship surveys from the Palmer Long‐Term Ecological Research (LTER) program. The simulations suggest that the annual sea‐ice cycle has an important role in the seasonal DIC drawdown. In years of early sea‐ice retreat, there is a longer growth season leading to larger seasonally integrated net primary production (NPP). Part of the biological uptake of DIC by phytoplankton, however, is counteracted by increased oceanic uptake of atmospheric CO2. Despite lower seasonal NPP, years of late sea‐ice retreat show larger DIC drawdown, attributed to lower air‐sea CO2 fluxes and increased dilution by sea‐ice melt. The role of dissolved iron and iron limitation on WAP phytoplankton also remains a challenge due to the lack of data. The model results suggest sediments and glacial meltwater are the main sources in the coastal and shelf regions, with sediments being more influential in the northern coast.

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    https://doi.org/10.1002/essoar...
    Preprint . 2020
    License: CC BY NC ND
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    Journal of Geophysical Research Biogeosciences
    Article . 2021 . Peer-reviewed
    License: CC BY NC ND
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    Journal of Geophysical Research Biogeosciences
    Article
    License: CC BY NC ND
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      https://doi.org/10.1002/essoar...
      Preprint . 2020
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      Journal of Geophysical Research Biogeosciences
      Article . 2021 . Peer-reviewed
      License: CC BY NC ND
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    Authors: Bayer, Bettina;

    Das Untersuchungsgebiet Dronning Maud Land (DML) umfasst einschließlich des Weddell Meeres und der Lazarev See in etwa das Gebiet zwischen der geographischen Länge 15°W und 15°E und der geographischen Breite 68°S und 75°S - eine Fläche von über 1.500.000 qkm. Geologisch und tektonisch betrachtet prägten drei markante Ereignisse das heutige DML: Erstens die Grenvillische Orogenese vor ca. 1.1 Ga, verursacht durch die Bildung des Großkontinentes Rodinia, zweitens die Panafrikanische Orogenese vor ca. 500 Ma, die durch den Zusammenstoß von West- und Ostgondwana den Großkontinent Gondwana formte, und drittens der Zerfall Gondwanas vor ca. 180 Ma, der in der heutigen Lazarev See initiiert worden war. Die Grundlage dieser Arbeit bilden seismologische, refraktionsseismische und aerogravimetrische Datensätze, durch deren Kombination sich der strukturelle Aufbau ebenso wie die räumliche Variation der Lithosphärenmächtigkeit untersuchen lässt. Letztere ist essentiell für die Bestimmung des regionalen Geoids, welches das Hauptziel des VISA-Projektes ist. Im Rahmen dieses Projektes wurden unter anderem flugzeuggestützte Potentialfeld-, Eisradar- und GPS-Messungen durchgeführt und zudem an ausgewählten Orten im DML seismographische Stationen temporär ausgebracht. Mithilfe der an diesen seismographischen Stationen aufgezeichneten Erdbebenwellen konnten trotz der sehr kurzen Registrierzeiten mit seismologischen Methoden Rückschlüsse über Struktur und Dynamik des tieferen Untergrundes erhalten werden. Durch eine Analyse der seismischen Anisotropie, welche die Aufspaltung von Scherwellen beim Durchgang durch ein anisotropes Medium untersucht sog. shear wave splitting, konnte auf vergangene und rezente großflächige Deformationsprozesse im Oberen Erdmantel geschlossen werden. Die Ergebnisse dieser Analyse sind im Untersuchungsgebiet nicht einheitlich, gemeinsam haben sie jedoch ihre Ursache in den vergangenen Deformationsprozessen und nicht in einer rezenten Plattenbewegung. Im Speziellen verweist die abrupte Richtungsänderung der Schnellen Achsen im Bereich der Heimefront Scherzone (westliches DML) auf eine Suturzone, die die mesoproterozoische Maudheim-Provinz von dem südlich angrenzenden Ostantarktischen Kraton trennt. Die beobachtete Aufspaltung der Scherwellen in den Aufzeichnungen der russischen Station Novolazarevskaya (Novo, zentrales DML) kann mit einem doppelschichtigen Anisotropiemodell des Oberen Mantels erklärt werden. Inkonsistente Ergebnisse für die südafrikanische Station Sanae IV (SNAA) verweisen auf eine kompliziertere Struktur des tieferen Untergrundes.Mithilfe der Berechnung von Receiver Funktionen, die auf der Konversion von teleseismischen P- zu S-Wellen an seismischen Diskontinuitäten beruhen, konnten neben der Bestimmung der Krustenmächtigkeiten auch die v_p/v_s-Verhältnisse ermittelt werden. Letztere sind im Untersuchungsgebiet nicht einheitlich und klassifizieren die Krustenzusammensetzung des zentralen DML als felsisch und die des westlichen DML als mafisch. Basaltische Intrusionen, die vermutlich auf den Gondwanazerfall im Jura zurückzuführen sind, erklären das erhöhte v_p/v_s-Verhältnis für die Station SNAA. Die ermittelten Krustenmächtigkeiten zeigen, wie auch bereits publizierte refraktionsseismische Krustenquerschnitte im Untersuchungsgebiet, einen Kruste-Mantel-Übergang (Moho), der von der KÜste ausgehend in sÜdliche Richtung kontinuierlich abfällt. Unter den Gebirgszügen der Heimefrontfjella und des Wohlthat-Massives nimmt die Krustenmächtigkeit einen maximalen Wert von 50 km an. Orogene Wurzeln deuten sich zwar an, sie sind aber aufgrund fehlender Randbedingungen vor allem südlich der Gebirgszüge nicht mit Bestimmtheit zu identifizieren. Ein Vergleich der Mohotiefen mit anderen Fragmenten Gondwanas, z.B. mit dem südlichen Afrika, zeigt eine große Ähnlichkeit.Im Kottasgebirge (westliches DML) wurde im Südsommer 1989/90 ein refraktionsseismisches Experiment durchgeführt. Das Profil verlief vom nördlichen Vorland über das Escarpment der Heimefrontfjella bis zum südlich anschließenden Plateau. In der Mohotopographie zeigt sich eine Stufe, die mehrere Kilometer hoch ist und als eine Suturzone interpretiert wird. Sie trennt das kibarische Kottasgebirge vom südlich anschließenden Ostantarktischen Kraton. Diese lokalen Informationen mündeten als Randbedingungen in eine 3D-Schweremodellierung, die schließlich eine flächendeckende Kartierung der Moho ermöglichte.

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