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  • PANGAEA  (68)
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Keywords
  • 1
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    Unknown
    PANGAEA
    In:  European Pollen Database (EPD)
    Publication Date: 2023-02-07
    Keywords: Depth, bottom/max; DEPTH, sediment/rock; Depth, top/min; JAMMERTA; Jammertal; Jammertal, Germany; Lithology/composition/facies
    Type: Dataset
    Format: text/tab-separated-values, 21 data points
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  • 2
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    PANGAEA
    In:  European Pollen Database (EPD)
    Publication Date: 2023-07-10
    Keywords: Abies; Acer; Alisma; Alnus; Apiaceae; Armeria (type B); Artemisia; Asteraceae; Batrachium-type; Betula; Brassicaceae; Buxus; Campanulaceae; Cannabis-type; Carpinus; Caryophyllaceae; Centaurea scabiosa-type; Chenopodiaceae; Cichoriaceae; Corylus; Cyperaceae; DEPTH, sediment/rock; Ephedra distachya; Ephedra fragilis; Ericaceae; Fabaceae; Fagus; Filipendula; Fraxinus; Gentianaceae; Geranium; Gramineae; Gypsophila; Hedera; Helianthemum; Hippophae; Ilex; JAMMERTA; Jammertal; Jammertal, Germany; Juniperus; Larix; Ligustrum vulgare; Menyanthes trifoliata; Morus nigra; Myriophyllum alterniflorum; Myriophyllum spicatum; Ostrya; Picea; Pinus; Plantago lanceolata; Plantago major/media-type; Plantago maritima-type; Plantago-type; Polygonum amphibium; Polygonum aviculare-type; Polygonum persicaria; Potamogeton; Potentilla-type; Quercus; Ranunculaceae; Rosaceae; Rubiaceae; Rumex-type; Salix; Saxifragaceae; Taxus; Thalictrum; Tilia; Typha latifolia; Ulmus; Valeriana officinalis; Varia; Viburnum; Viscum
    Type: Dataset
    Format: text/tab-separated-values, 9656 data points
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  • 3
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    PANGAEA
    In:  Supplement to: Koutsodendris, Andreas; Pross, Jörg; Müller, Ulrich C; Brauer, Achim; Fletcher, William J; Kühl, Norbert; Kirilova, Emiliya P; Verhagen, Florence T M; Lücke, Andreas; Lotter, André F (2012): A short-term climate oscillation during the Holsteinian interglacial (MIS 11c): An analogy to the 8.2ka climatic event? Global and Planetary Change, 92-93, 224-235, https://doi.org/10.1016/j.gloplacha.2012.05.011
    Publication Date: 2023-11-06
    Description: To gain insights into the mechanisms of abrupt climate change within interglacials, we have examined the characteristics and spatial extent of a prominent, climatically induced vegetation setback during the Holsteinian interglacial (Marine Isotope Stage 11c). Based on analyses of pollen and varves of lake sediments from Dethlingen (northern Germany), this climatic oscillation, here termed the "Older Holsteinian Oscillation" (OHO), lasted 220 years. It can be subdivided into a 90-year-long decline of temperate tree taxa associated with an expansion of Pinus and herbs, and a 130-year-long recovery phase marked by the expansion of Betula and Alnus, and the subsequent recovery of temperate trees. The climate-induced nature of the OHO is corroborated by changes in diatom assemblages and d18O measured on biogenic silica indicating an impact on the aquatic ecosystem of the Dethlingen paleolake. The OHO is widely documented in pollen records from Europe north of 50° latitude and is characterized by boreal climate conditions with cold winters from the British Isles to Poland, with a gradient of decreasing temperature and moisture availability, and increased continentality towards eastern Europe. This pattern points to a weakened influence of the westerlies and/or a stronger influence of the Siberian High. A comparison of the OHO with the 8.2 ka event of the Holocene reveals close similarities regarding the imprint on terrestrial ecosystems and the interglacial boundary conditions. Hence, in analogy to the 8.2 ka event, a transient, meltwater-induced slowdown of the North Atlantic Deep Water formation appears as a plausible trigger mechanism for the OHO. If correct, meltwater release into the North Atlantic may be a more common agent of abrupt climate change during interglacials than previously thought. We conclude that meltwater-induced climate setbacks during interglacials preferentially occurred when low rates of summer insolation increase during the preceding terminations facilitated the persistence of large-scale continental ice-sheets well into the interglacials.
    Type: Dataset
    Format: application/zip, 2 datasets
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  • 4
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    PANGAEA
    In:  European Pollen Database (EPD)
    Publication Date: 2023-11-06
    Keywords: Abies; Acer; Alisma; Alnus; Anthemis-type; Apiaceae; Artemisia; Asteraceae; Batrachium aquatile; Betula; Botrychium; Brassicaceae; Buxus; Campanula-type; Carpinus; Caryophyllaceae; Centaurea scabiosa; Chenopodiaceae; Chenopodium; Cichorioideae; Corylus; Counting, palynology; Cyperaceae; DEPTH, sediment/rock; Ephedra distachya; Ephedra fragilis; Ericaceae; Fabaceae; Filipendula; Fraxinus; Gentiana; Geranium; Gramineae; Hedera; Helianthemum; Hippophae rhamnoides; Humulus/Cannabis; Ilex; JAMEREEM; Jammertal, Germany; Juniperus; Lactuceae; Larix; Ligustrum vulgare; Menyanthes trifoliata; Morus nigra; Myriophyllum alterniflorum; Myriophyllum spicatum; Ostrya; Pediastrum; Picea; Pinus; Plantago lanceolata; Plantago maritima; Plantago media; Pleurospermum; Polemonium; Polygonum bistorta; Polygonum persicaria; Potamogeton; Potentilla-type; Prunella-type; Quercus; Ranunculaceae; Rosaceae; Rubiaceae; Rumex-type; Salix; Sanguisorba officinalis; Saxifragaceae; Scleranthus; Selaginella selaginoides; Silene dioica-type; Sphagnum; Stellaria holostea; Taxus; Thalictrum; Tilia; Ulmus; Valeriana officinalis; Varia; Viburnum; Viscum
    Type: Dataset
    Format: text/tab-separated-values, 4977 data points
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  • 5
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    PANGAEA
    In:  European Pollen Database (EPD)
    Publication Date: 2023-11-06
    Keywords: Abies; Acer; Alnus; Apiaceae; Armeria maritima (type A); Armeria maritima (type B); Artemisia; Asteraceae; Betula; Botrychium; Botryococcus; Brassicaceae; Bruckenthalia; Buxus; Campanula; Cannabis/Humulus; Carpinus; Caryophyllaceae; Centaurea montana-type; Cerealia; Chenopodiaceae; Cichorioideae; Corylus; Counting, palynology; Cryptogramma; Cyperaceae; DEPTH, sediment/rock; Diphasiastrum alpinum-type; DRILL; Drilling/drill rig; Drosera; Ephedra distachya; Ericaceae; Euphorbiaceae; Fabaceae; Fagus; Filipendula; Fraxinus; FURAMOOS; Füramoos; Füramoos, Germany; Gentiana; Gentianaceae; Gentianella campestris-type; Gramineae; Hedera; Helianthemum; Hippophae rhamnoides; Ilex; Juniperus; Larix; Littorella uniflora; Lycopodium annotinum; Lycopodium clavatum; Lycopodium inundatum; Melampyrum; Menyanthes trifoliata; Myriophyllum alterniflorum; Myriophyllum spicatum; Myriophyllum verticillatum; Nymphaea; Onobrychis-type; Osmunda; Pediastrum; Picea; Pinus; Pinus cembra; Plantago lanceolata; Plantago major/media-type; Plantago maritima-type; Polemonium; Polygonum aviculare; Polygonum bistorta; Populus; Potentilla-type; Quercus; Ranunculaceae; Ranunculus aquatilis-type; Rhinanthus; Rosaceae; Rubiaceae; Rumex-type; Salix; Sanguisorba officinalis; Saxifragaceae; Saxifraga hirsuta-type; Saxifraga oppositifolia-type; Scabiosa; Selaginella; Sparganium-type; Sphagnum; Stachys-type; Succisa; Taxus; Thalictrum; Tilia; Trifolium-type; Ulmus; Urtica; Valeriana dioica; Valeriana officinalis; Varia; Vicia-type; Viscum
    Type: Dataset
    Format: text/tab-separated-values, 16393 data points
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  • 6
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    PANGAEA
    In:  Supplement to: Koutsodendris, Andreas; Müller, Ulrich C; Pross, Jörg; Brauer, Achim; Kotthoff, Ulrich; Lotter, André F (2010): Vegetation dynamics and climate variability during the Holsteinian interglacial based on a pollen record from Dethlingen (northern Germany). Quaternary Science Reviews, 29(23-24), 3298-3307, https://doi.org/10.1016/j.quascirev.2010.07.024
    Publication Date: 2023-11-06
    Description: To better understand the environmental variability during the Holsteinian interglacial, we have palynologically analyzed a new core from Dethlingen, northern Germany, at a decadal resolution. Our data provide insights into the vegetation dynamics and thus also climate variability during the meso- to telocratic forest phases of the interglacial. Temperate mixed forests dominated the regional landscape throughout the Holsteinian. However, changes in the forest composition during the younger stages of the interglacial suggest a climatic transition towards milder conditions in winter. The strong presence of boreal floral elements during the older stages of the Holsteinian interglacial suggests a high seasonality. In contrast, during the younger stages the development of sub-Atlantic and Atlantic floral elements suggests increasingly warm and humid climatic conditions. Peak warming during the younger stage of the Holsteinian is marked by the maximum pollen abundances of Buxus, Abies, and Quercus. Although the vegetation dynamics suggest a general warming trend throughout the Holsteinian interglacial, abrupt as well as gradual changes in the relative abundances of temperate plants indicate considerable climatic variability. In particular, two marked declines in temperate taxa leading to the transient development of boreal and sub-temperate forests indicate short-term climatic oscillations that occurred within full interglacial conditions. The palynological signatures of these two regressive phases in vegetation development differ with regard to the expansion of pioneer trees, the abundances and rates of change of temperate taxa, and the presence of frost-sensitive taxa. These differences point to different mechanisms responsible for the individual regressive phases. Assuming a correlation of the interglacial at Dethlingen with Marine Isotope Stage (MIS) 11, our data suggest that temperate forests prevailed in northern Germany during the younger parts of MIS 11c.
    Keywords: Abies; Acer; Alnus; Apiaceae; Artemisia; Asteraceae; Betula; Bottomus; Brassicaceae; Buxus; Callitriche; Campanulaceae; Cannabaceae; Carpinus/Ostrya; Caryophyllaceae; Celtis; Centaurea jacea-type; Chenopodiaceae; Cistus salvifolius; Convolvulus; Corylus; Counting, palynology; Crepis-type; Cyperaceae; DEPTH, sediment/rock; Dethlingen; DRILL; Drilling/drill rig; Ephedra; Epilobium; Ericaceae; Euphrasia; Fagus; Filipendula; Fraxinus; Hedera; Helianthemum; Ilex; Juniperus; Knautia; Lemna; Lower Saxony, Northern Germany; Lysimachia; Myriophyllum; Nuphar; Nymphaea; Osmunda; Pediastrum; Picea; Pinus; Plantago; Poaceae; Pollen indeterminata; Polygonum; Potamogeton; Potentilla-type; Pterocarya; Quercus, deciduous; Ranunculaceae; Rhamnus frangula; Rubiaceae; Rumex; Salix; Salvia; Saxifraga; Sedum-type; Spergularia-type; Sphagnum; Spores, monolete; Spores, trilete; Taxus; Tilia; Typha angustifolia/Sparganium-type; Typha latifolia; Ulmus; Urticaceae; Viburnum; Vicia; Viscum; Vitis
    Type: Dataset
    Format: text/tab-separated-values, 14726 data points
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  • 7
    Publication Date: 2023-11-06
    Keywords: Depth, bottom/max; DEPTH, sediment/rock; Depth, top/min; DRILL; Drilling/drill rig; FURAMOOS; Füramoos; Füramoos, Germany; Lithology/composition/facies
    Type: Dataset
    Format: text/tab-separated-values, 39 data points
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  • 8
    Publication Date: 2023-11-06
    Keywords: Depth, bottom/max; DEPTH, sediment/rock; Depth, top/min; JAMEREEM; Jammertal, Germany; Lithology/composition/facies
    Type: Dataset
    Format: text/tab-separated-values, 12 data points
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  • 9
    Publication Date: 2023-11-06
    Keywords: Abies; Acer; AGE; Alisma; Allium-type; Alnus; Androsace; Apiaceae; Arctium; Armeria; Artemisia; Asteraceae; Betula; Brassicaceae; Callitriche; Campanulaceae; Cannabis; Capparis; Carpinus betulus; Carpinus orientalis; Carthamus-type; Carya; Caryophyllaceae; Castanea; Celtis; Centaurea cyanus; Centaurea jacea-type; Centhranthus; Cerastium; Ceratonia; Chenopodiaceae; Cichorioideae; Cirsium; Cistaceae; Convolvulus-type; Cornus; Corylus; Crassulaceae; Crepis-type; Cyperaceae; DEPTH, sediment/rock; Dianthus; Dipsacaceae; Echinops; Empetrum; Ephedra distachya; Ephedra fragilis; Epipogium; Ericaceae; Eriocaulon aquaticum; Euphorbiaceae; Euphrasia; Fabaceae; Fagus; Fraxinus; Fumana; Geranium; Gratiola; Greece; Hedera; Helianthemum; Helleborus; Herbs; Hippophae; Holocene; Hottonia; Humulus; Hydrocharis-type; Hypericum; Iuglans; Jasione montana-type; Juniperus; Lamiaceae; Lateglacial; Lemnaceae; Limonium; Linum alpinum-type; Liquidambar; Lysimachia; Lythrum hyssopifolia; Lythrum salicaria; Lythrum virgatum; Matricaria-type; Mentha; Menyanthes trifoliata; Mercurialis; Minuartia; Myrica; Myriophyllum; Myriophyllum spicatum; Myriophyllum verticillatum; Nuphar; Nympha-type; Olea; Ostrya; Oxalis; palaeoclimate; palynology; Papaver; Phillyrea; Phyteuma-type; Picea; Pimpinella saxifraga; Pinguicula; Pinus; Pistacia; Plantaginaceae; Plantago albicans; Plantago bellardi; Plantago coronopus-type; Plantago lanceolata-type; Plantago maritima-type; Plantago subulata; Plantago tenuiflora-type; Plantago varia; Platycarya; Pleistocene; Plumbaginaceae; Poaceae; Pollen; Pollen, dicolpate; Pollen indeterminata; Polycarpon; Polygonum aviculare; Populus; Potentilla-type; Precipitation, annual mean; Precipitation, annual mean, maximum; Precipitation, annual mean, minimum; Primulaceae; Pterocarya; Pulsatilla; Quercus deciduous; Quercus ilex-type; Ranunculaceae; Ranunculus; Rhamnus; Ribes; Rosaceae; Rubiaceae; Rumex-type; Salix; Sanguisorba officinalis; Sarcopoterium-type; Saussurea-type; Saxifragaceae; Scabiosa; Scleranthus; Scrophularia; Scrophulariaceae; SEDCO; Sediment corer; Senecio-type; Silene; Solanaceae; Soldanella-type; Sorbus; Sparganium-type; Spergula; Spergularia; Tamarix; Temperature, air, summer; Temperature, air, summer, maximum; Temperature, air, summer, minimum; Temperature, air, winter; Temperature, air, winter, maximum; Temperature, air, winter, minimum; Tenaghi Philippon; Tenaghi-Philippon_Phi2; Thalictrum; Tilia; Typha/Potamogeton; Ulmus/Zelkova; Urtica; Utricularia; Valeriana officinalis-type; Valerianella; Verbascum; Viburnum
    Type: Dataset
    Format: text/tab-separated-values, 23046 data points
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  • 10
    Publication Date: 2023-11-06
    Keywords: DEPTH, sediment/rock; Dethlingen; DRILL; Drilling/drill rig; Lower Saxony, Northern Germany; Mass spectrometry; Number of measurements; δ18O, opal; δ18O, standard deviation
    Type: Dataset
    Format: text/tab-separated-values, 150 data points
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