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  • PANGAEA  (5)
  • 2020-2024  (5)
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  • PANGAEA  (5)
Years
  • 2020-2024  (5)
Year
  • 1
    Publication Date: 2023-06-27
    Description: A palynological record spanning the last glacial–interglacial period was derived from high-resolution, deep-sea core MD03-2607, located near Kangaroo Island in South Australia. The core site lies opposite the mouth of the River Murray that, together with the Darling River, drains the extensive (1.6 x 10⁶ km²) Murray Darling Basin (MDB). The record comprises 120 samples and is compared with detailed records of sea-surface temperature (SST), the C3/C4 plant ratio obtained from the δ¹³C of n-alkanes from leaf waxes, the fluvial clay fraction and its neodymium isotopic composition, airborne dust, as well as the biomass burning component levuglosan. The chronology of the core is robust; it is built on 24 radiocarbon dates derived from planktic foraminifera, 16 OSL dates, plus 12 tie points linked to the astronomically tuned marine isotopic record. Algal remains are found in nearly all samples supporting our postulation that the palynoflora is predominantly waterborne. Major findings are that the gymnosperm Callitris, together with high percentages of herb pollen (mostly C~3~ plants), is predominant during cold, arid phases, whereas Eucalyptus, is predominant during warmer and wetter periods. High charcoal concentration coincides with high percentages of Eucalyptus, mostly during wet and warm periods. Using the geochemistry of the core's fluvial sediments, it has been possible to identify when water-transported palynoflora and charcoal originated from the Murray sub-basin (consisting of the River Murray and its main tributaries but not from central or western South Australia). During those periods, rainfall principally originated from the southeastern Indian Ocean. When the Darling sub-basin was the main source of the palynoflora, rainfall must have instead originated from northern Australia. The eolian dust record from the core shows that the dust signal generally coincides with the increased values in herb pollen, in particular during the Last Glacial Maximum (LGM) when, in addition to high herb percentages, Callitris representation also increased. This dry landscape taxon likely colonised the then-exposed Lacepede Shelf during this period of extreme low sea level. There is a good correspondence between SST and mean annual precipitation reconstructed from the pollen counts. During warm phases in the ocean, Eucalyptus was the dominant tree taxon, especially for the entirety of MIS 5, plus MIS 3 and MIS 1. Charcoal levels were particularly low during the dry phases MIS 4 and 2, and even more so during the LGM.
    Keywords: Airborne dust; AUSCAN; C3/C4 plants; Callitris; CALYPSO; Calypso Corer; charcoal; Fluvial muds; Gyrostemon; Lacepede Shelf; Last glacial/interglacial cycle; levoglucosan; Marion Dufresne (1995); MD032607; MD03-2607; MD131; Murray Darling Basin; Neodymium isotopes; Southern Ocean; Ti/Ca
    Type: Dataset
    Format: application/zip, 3 datasets
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  • 2
    Publication Date: 2023-06-27
    Description: The inter-reef Halimeda bioherms of the northern Great Barrier Reef (GBR) have accumulated up to 25 m of positive relief throughout the Holocene. Covering 〉 6000 km2, the Halimeda bioherms represent a significant contribution to the development of the northeast Australian continental shelf geomorphology, neritic carbonate factory, and sedimentary archive of post-glacial environmental changes. Previously, the chronological record of initiation and development of the Halimeda bioherm carbonate factory was poorly constrained and based on very few age data points. A comprehensive new age dataset is presented, comprising sixty-three AMS radiocarbon measurements of Halimeda and foraminifera grains, mollusc shells and bulk soil from twelve inter-reef sediment cores, and ten previously published Halimeda ages that are newly calibrated. Radiocarbon measurements were undertaken at the ANSTO Centre for Accelerator Science in 2018, 2019 and 2020 from cores collected by the Bureau of Mineral Resources in 1983. Halimeda growth had established by 11,143 +237/-277 cal. yr BP, just ~450 years after the marine transgression commenced and approximately 1000 years earlier than previous inferred estimates. The outer-shelf carbonate factory was initially dominated by benthic foraminifera, then Halimeda was productive for at least 2100 years prior to the turn-on of Holocene coral reefs in the study area. Inter-reef Halimeda bioherm sediments including foraminiferal communities, might record a 〉10,000-year near-continuous geochemical record of northeast Australian Holocene oceanographic and climatic changes, potentially filling spatial and temporal gaps not covered by coral and other marine sediment proxies.
    Keywords: 42/VC83/08; 42/VC83/09; 42/VC83/10; 42/VC83/11; 42/VC83/12; 42/VC83/13; 42/VC83/47; 42/VC83/48; 42/VC83/49; 42/VC83/52; 42/VC83/53; 42/VC83/62; Age, 14C AMS; Age, dated; Age, dated standard deviation; algae; AYR; AYR_83-10; AYR_83-11; AYR_83-12; AYR_83-13; AYR_83-47; AYR_83-48; AYR_83-49; AYR_83-52; AYR_83-53; AYR_83-62; AYR_83-8; AYR_83-9; calculated, 1 sigma; calculated, 2 sigma; Calendar age; Calendar age, maximum/old; Calendar age, median; Calendar age, minimum/young; Calendar age, standard deviation; Calendar age, uncertainty maximum/old; Calendar age, uncertainty minimum/young; Carbon-14, modern; Carbon-14, modern, standard deviation; Carbonate; Comment; DEPTH, sediment/rock; Elevation of event; Event label; Febrina; GBR; Great Barrier Reef; Great Barrier Reef, Australia; Halimeda; Holocene; Laboratory code/label; Latitude of event; Longitude of event; radiocarbon age; reef development; Sample ID; Sample type; SEDCO; Sediment corer; vibracore; δ13C
    Type: Dataset
    Format: text/tab-separated-values, 1160 data points
    Location Call Number Expected Availability
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  • 3
    Publication Date: 2023-06-27
    Keywords: AGE; Airborne dust; AUSCAN; C3/C4 plants; Callitris; CALYPSO; Calypso Corer; charcoal; DEPTH, sediment/rock; Fluvial muds; Gyrostemon; Lacepede Shelf; Last glacial/interglacial cycle; levoglucosan; Marion Dufresne (1995); MD032607; MD03-2607; MD131; Murray Darling Basin; Neodymium isotopes; Southern Ocean; Ti/Ca; Titanium/Aluminium ratio
    Type: Dataset
    Format: text/tab-separated-values, 3110 data points
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  • 4
    Publication Date: 2024-03-06
    Keywords: Acacia-type; AGE; Airborne dust; Algae; Alternanthera; Amaranthaceae/Chenopodiaceae; Amaryllidaceae/Liliaceae; Anthoceros-type; Apiaceae; Araucariaceae; Asteraceae Liguliflorae; Asteraceae Tubuliflorae; AUSCAN; Banksia; Botryococcus; C3/C4 plants; Callitris; Callitris-type; CALYPSO; Calypso Corer; Caryophyllaceae; Casuarina-type; Centrolepidaceae/Restionaceae; charcoal; Coelastrum; Convolvulaceae; Coprosma/Hedyotis-type; Cunoniaceae; Cyatheaceae; Cyperaceae; Dacrydium; Davallia-type; Debarya; DEPTH, sediment/rock; Dodonaea; Elaeocarpus; Epacris-type; Eucalyptus-type; Euphorbia-type; Ficus; Fluvial muds; Fungi spores; Geraniaceae; Gleicheniaceae; Gyrostemon; Haloragis; Herbs; Indeterminata; Lacepede Shelf; Lamiaceae; Last glacial/interglacial cycle; Leguminosae; Lemna; levoglucosan; Loranthaceae; Lycopodium (counted); Lycopodium spores per tablet; Lycopodium tablets; Malvaceae; Marion Dufresne (1995); MD032607; MD03-2607; MD131; Melaleuca/Myrtaceous, shrubs; Micrantheum-type; Monolete psilate; Moraceae/Urticaceae; Murray Darling Basin; Myoporaceae; Myriophyllum; Neodymium isotopes; Nothofagus; Phyllanthus; Phyllocladus; Plantago; Poaceae; Podocarpus; Podospora; Pollen, total; Polygala-type; Polypodiaceae; Potamogeton; Proteaceae; Pteridophyta; Pteridophyta indeterminata; Pteris; Ranunculaceae; Rhamnaceae; Rosaceae; Rumex; Rutaceae; Sample mass; Scaevola-type; Scrophulariaceae; Selaginella; Solanum-type; Sordaria; Southern Ocean; Spirogyra; Sporormiella; Theaceae; Thymelaeaceae; Ti/Ca; Trees and shrubs; Typha; Winteraceae; Zygnema
    Type: Dataset
    Format: text/tab-separated-values, 10406 data points
    Location Call Number Expected Availability
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  • 5
    Publication Date: 2024-03-06
    Keywords: Acacia-type; AGE; Airborne dust; Algae; Alternanthera; Amaranthaceae/Chenopodiaceae; Amaryllidaceae/Liliaceae; Anthoceros-type; Apiaceae; Araucariaceae; Asteraceae Liguliflorae; Asteraceae Tubuliflorae; AUSCAN; Banksia; Botryococcus; C3/C4 plants; Callitris; Callitris-type; CALYPSO; Calypso Corer; Caryophyllaceae; Casuarina-type; Centrolepidaceae/Restionaceae; charcoal; Charcoal; Coelastrum; Convolvulaceae; Coprosma/Hedyotis-type; Cunoniaceae; Cyatheaceae; Cyperaceae; Dacrydium; Davallia-type; Debarya; DEPTH, sediment/rock; Dodonaea; Elaeocarpus; Epacris-type; Eucalyptus-type; Euphorbia-type; Ficus; Fluvial muds; Fungi spores; Geraniaceae; Gleicheniaceae; Gyrostemon; Haloragis; Herbs; Indeterminable; Lacepede Shelf; Lamiaceae; Last glacial/interglacial cycle; Leguminosae; Lemna; levoglucosan; Loranthaceae; Lycopodium (counted); Lycopodium spores per tablet; Lycopodium tablets; Malvaceae; Marion Dufresne (1995); MD032607; MD03-2607; MD131; Melaleuca/Myrtaceous, shrubs; Micrantheum-type; Monolete psilate; Moraceae/Urticaceae; Murray Darling Basin; Myoporaceae; Myriophyllum; Neodymium isotopes; Nothofagus; Phyllanthus; Phyllocladus; Plantago; Poaceae; Podocarpus; Podospora; Pollen, total; Polygala-type; Polypodiaceae; Potamogeton; Proteaceae; Pteridophyta; Pteridophyta indeterminable; Pteris; Ranunculaceae; Rhamnaceae; Rosaceae; Rumex; Rutaceae; Sample mass; Scaevola-type; Scrophulariaceae; Selaginella; Solanum-type; Sordaria; Southern Ocean; Spirogyra; Sporormiella; Theaceae; Thymelaeaceae; Ti/Ca; Trees and shrubs; Typha; Winteraceae; Zygnema
    Type: Dataset
    Format: text/tab-separated-values, 10527 data points
    Location Call Number Expected Availability
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