Data

AQUA modis file

Flinders University
Patrick Hesp (Aggregated by)
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ctx_ver=Z39.88-2004&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Adc&rfr_id=info%3Asid%2FANDS&rft_id=info:doi10.25451/flinders.27312909.v1&rft.title=AQUA modis file&rft.identifier=https://doi.org/10.25451/flinders.27312909.v1&rft.publisher=Flinders University&rft.description=This study examined the River Murray sediment plume, which was produced during the major flood event of 2022-2023. This flood resulted from successive La Niña events, causing high rainfall across the Murray-Darling Basin and ultimately leading to significant riverine flow through South Australia. The flood was characterised by a significant increase in riverine discharge rates, reaching a peak of 112,707 ML/day through the Lower Lakes barrage system from November 2022 to February 2023. The water quality anomaly within the coastal region (&rft.creator=Patrick Hesp&rft.date=2024&rft_rights=NON-COMMERCIAL-REUSE-ONLY-(CC-BY-NC)&rft_subject=River Murray system&rft_subject=Sediment Plume&rft_subject=River Murray Floodplain&rft_subject=Physical oceanography&rft.type=dataset&rft.language=English Access the data

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This study examined the River Murray sediment plume, which was produced during the major flood event of 2022-2023. This flood resulted from successive La Niña events, causing high rainfall across the Murray-Darling Basin and ultimately leading to significant riverine flow through South Australia. The flood was characterised by a significant increase in riverine discharge rates, reaching a peak of 112,707 ML/day through the Lower Lakes barrage system from November 2022 to February 2023. The water quality anomaly within the coastal region (

Issued: 2024-10-28

Created: 2024-10-28

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