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  • Data  (7)
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  • 1
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    PANGAEA
    In:  Supplement to: Cheng, Zhongjing; Weng, Chengyu; Steinke, Stephan; Mohtadi, Mahyar (2018): Anthropogenic modification of vegetated landscapes in southern China from 6,000 years ago. Nature Geoscience, 11, 939-943, https://doi.org/10.1038/s41561-018-0250-1
    Publication Date: 2023-03-03
    Description: Vegetation dynamics during previous warm interglacial periods shed light on the human impacts on natural ecosystems during the Holocene. However, reliable terrestrial records that span such periods are rare and provide little information on regional scale. Here we present a high-resolution marine pollen record from the northern South China Sea, which reveals that during five peak interglacial periods, Marine Isotope Stages 13a, 11c, 9c, 5e and 1 (the Holocene), the vegetation successions in southern China were similar. At the beginning of each interglacial period, tropical rainforest conifers, which include Dacrydium, Dacrycarpus and Podocarpus, and associated broadleaved taxa, such as Altingia, expanded quickly at the expense of the subtropical/temperate montane conifer Pinus. Near the end of the warm periods, Pinus recovered and the tropical taxa retreated. However, the Holocene displays subtle but significant differences in which the species turnover was interrupted and the rainforest conifers did not fully expanded. The Mg/Ca-based sea surface temperature record from the same site reveals that temperature was the major control of the rise and fall of the peak interglacial vegetation. However, exceptionally high charcoal fluxes during the Holocene suggest that human activities through land-use modifications completely, and possibly permanently, altered the natural vegetation trend five to six thousand years ago.
    Keywords: Center for Marine Environmental Sciences; MARUM
    Type: Dataset
    Format: application/zip, 5 datasets
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  • 2
    Publication Date: 2023-03-03
    Keywords: AGE; Center for Marine Environmental Sciences; COMPCORE; Composite Core; GeoB16602; MARUM; Sea surface temperature, annual mean
    Type: Dataset
    Format: text/tab-separated-values, 495 data points
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  • 3
    Publication Date: 2023-03-03
    Keywords: AGE; Center for Marine Environmental Sciences; COMPCORE; Composite Core; Foraminifera, benthic δ18O; GeoB16602; MARUM
    Type: Dataset
    Format: text/tab-separated-values, 1015 data points
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  • 4
    Publication Date: 2023-03-03
    Keywords: AGE; Center for Marine Environmental Sciences; Charcoal, flux; COMPCORE; Composite Core; GeoB16602; MARUM
    Type: Dataset
    Format: text/tab-separated-values, 97 data points
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  • 5
    Publication Date: 2023-03-03
    Keywords: Age, 14C AMS; Age, dated; Age, dated material; Age, dated standard deviation; Calendar age; Calendar age, maximum/old; Calendar age, minimum/young; Center for Marine Environmental Sciences; Depth, bottom/max; DEPTH, sediment/rock; Depth, top/min; Event label; GC; GeoB16602-3; GeoB16602-4; Gravity corer; INVERS; Laboratory code/label; MARUM; MUC; MultiCorer; SO221; Sonne
    Type: Dataset
    Format: text/tab-separated-values, 129 data points
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  • 6
    Publication Date: 2024-03-06
    Description: Cores of marine site GeoB16602 (18.95°N, 113.71°E, water depth, 953 m) were recovered during the 2012 RV SONNE cruise SO-221 “INVERS”, northern South China Sea. Pollen samples were processed via standard hydrochloric-hydrofluoric acid procedure. Pollen and spore percentages were calculated based on the pollen sum (〉300 grains per sample) and spore sum (〉100 grains) respectively. The data set cover the whole last glacial cycle (140 kyr) with an average temporal resolution of ~600 years, revealing vegetation evolution history of the Pearl River catchment area in southern China. In general, the results reveal three different evolution patterns of vegetation at the tropical-subtropical flora ecotone: the zonal forest exhibited a clear glacial-interglacial cycle and weak response to stadial cooling; the fern communities exhibited similar glacial-interglacial variations but more sensitivity to low-amplitude temperature fluctuations; the glacial-interglacial trend in coastal wetland vegetation was ambiguous whereas a series of millennial-scale expansion events were closely related with sea-level rises.
    Keywords: Abies; Acanthaceae; Aceraceae; AGE; Alangiaceae; Alismataceae; Alnus; Altingiaceae; Amaryllidaceae; Anacardiaceae; Anthoceros; Antrophyaceae; Apocynaceae; Aquifoliaceae; Araliaceae; Artemisia; Asteraceae; Athyriaceae; Berberidaceae; Betula; Bignoniaceae; Campanulaceae; Caprifoliaceae; Carpinus; Carya; Caryophyllaceae; Castanopsis/Lithocarpus; Casuarinaceae; Center for Marine Environmental Sciences; cf. Cryptomeria; Chenopodiaceae/Amaranthaceae; Cibotium; Clerodendrum; Clusiaceae; COMPCORE; Composite Core; Coniogramme; Cruciferae; Cupressaceae; Cyathea; Cyperaceae; Dacrycarpus; Dacrydium; Dennstaedtiaceae; Depth, bottom/max; Depth, composite; Depth, top/min; Dicranopteris; Elaeagnaceae; Elaeocarpaceae; Ephedra; Ericaceae; Euphorbiaceae; Fagus; Ficus; Fraxinus; GC; GeoB16602; GeoB16602-3; GeoB16602-4; GeoB16602-5; Geraniaceae; Gesneriaceae; Glacial cycles; Gleicheniaceae; Grasses; Gravity corer; Hamamelidaceae; Heritiera; Hymenophyllaceae; INVERS; Juglans; Labiatae; Liliaceae; Lycopodiaceae; Lygodiaceae; Lythraceae cf. Lagerstroemia; Mallotus; Marine cores; MARUM; MeBo; MeBo (Meeresboden-Bohrgerät); Melastomataceae/Combretaceae; Meliaceae; Mimosaceae; Moraceae; MUC; MultiCorer; Myrica; Myrsinaceae; Myrtaceae; Nymphoides; Nyssa; Oleaceae; Oxalidaceae; Palmae; Papilionaceae; Parkeriaceae; Phyllocladaceae; Picea; Pinus; Pistacia; Poaceae; Podocarpaceae; Podocarpus; Pollen, other; Pollen, temperate; Pollen, tropical/subtropical; pollen and spores; Polygalaceae; Polygonaceae; Polypodiaceae; Proteaceae; Pteridaceae; Pterocarya; Quercus; Ranunculaceae; Rhizophora; Rosaceae; Rubiaceae; Rutaceae; Sapindaceae; Sapotaceae; Scrophulariaceae; sedges; Selaginella; SO221; Solanaceae; Sonne; Sonneratiaceae; South China Sea; Stenochlaena; Taxodiaceae; Thalictrum; Theaceae; Thymelaeaceae; Tilia; Trema; Tsuga; Typha; Ulmus; Verbenaceae
    Type: Dataset
    Format: text/tab-separated-values, 26324 data points
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  • 7
    Publication Date: 2024-03-06
    Keywords: Abies/Picea; AGE; Altingia; Anthoceros; Asteraceae; Carpinus; Center for Marine Environmental Sciences; COMPCORE; Composite Core; Coniferae, rainforest; Crytomeria; Cyathea; Cyperaceae; Dacrycarpus; Dacrydium; Dicranopteris; Fagus; GeoB16602; Grasses; MARUM; Phyllocladaceae; Pinus; Poaceae; Podocarpus; Pollen, alpine trees and shrubs; Pollen, temperate forest; Pollen, tropical/subtropical broadleaved trees; Polypodiaceae; Pterocarya; Quercus evergreen; Tsuga; Ulmus
    Type: Dataset
    Format: text/tab-separated-values, 7020 data points
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