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Impacts of fluvial flood on physical and biogeochemical environments in estuary-shelf continuum in the East China Sea

机译:氟普利对东海河口架子连续内物理和生物地球化学环境的影响

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摘要

Land-ocean interaction plays an essential role in the transport fate of terrestrial matters in the coastal and shelf regions. Flood discharge from a mega river, containing massive water, sediment, and nutrient loads, could result in substantial and complex impacts on the physical and biogeochemical dynamics of coastal systems. In this study, field campaigns were conducted in a region from the Changjiang River Estuary to the East China Sea (ECS) before and after a significant flood. The impacts of the flood on physical and biogeochemical environments were assessed. The results revealed that the fluvial flood enhanced the offshore expansion of the low-salinity river plume and associated sediment/nutrient fronts. However, the area of elevated chlorophyll-a at the river mouth did not expand noticeably. A numerical model was applied to quantify the contribution of the Three Gorges Dam (TGD) to the spatial intensity and temporal duration of fluvial flood effects on estuary-shelf continuum. The results predicted a maximum of 2° latitudinal offshore displacement of the shelf water. Salinity and nitrate exhibited conservative expansions, with a longer relaxation time (~2 months) than chlorophyll-a and phosphate. After the TGD-regulated flow event ceased, salinity and nitrate effects persisted, but phosphate and chlorophyll-a recovered rapidly. The flood decreased the dissolved oxygen (DO) concentration around the river mouth and the offshore region, but not in the nearshore transient area. In contrast, the non-TGD regulation increased the regional DO concentration, which reduced the hypoxia risk. The TGD has become a crucial anthropogenic driver of environmental changes in the Changjiang Estuary-ECS continuum.
机译:土地互动在沿海和货架地区的地面事务的运输命运中起着重要作用。从Mega River泄漏,含有巨大的水,沉积物和营养负荷,可能对沿海系统的物理和生物地球化学动力产生重大和复杂影响。在这项研究中,现场运动在大量洪水之前和之后的来自长江口到东海(ECS)的一个地区进行。评估了洪水对物理和生物地球化学环境的影响。结果表明,河流洪水增强了低盐度羽流和相关沉积物/营养前线的海上扩张。然而,河口叶绿素-A升高的面积并没有显着膨胀。应用了数值模型来量化三峡大坝(TGD)对河口架连续河河流洪水影响的空间强度和时间持续时间的贡献。结果预测了架子水的最多2°纬度海上位移。盐度和硝酸盐表现出保守的膨胀,比叶绿素-A和磷酸盐更长的弛豫时间(〜2个月)。在TGD调节的流动事件停止后,盐度和硝酸盐效应持续存在,但磷酸盐和叶绿素-A迅速回收。洪水减少了河口和海上地区周围的溶解氧(DO)浓度,但不在近岸瞬态区域。相比之下,非TGD调节增加了区域浓度,降低了缺氧风险。 TGD已成为长江河口ECS连续欧姆的环境变化的关键人为驱动因素。

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  • 来源
    《Oceanographic Literature Review》 |2021年第7期|1415-1415|共1页
  • 作者

    J. Ge; J. Zhang; C. Chen; P. Ding;

  • 作者单位

    State Key Laboratory of Estuarine and Coastal Research East China Normal University Shanghai 200241 China;

    State Key Laboratory of Estuarine and Coastal Research East China Normal University Shanghai 200241 China;

    State Key Laboratory of Estuarine and Coastal Research East China Normal University Shanghai 200241 China;

    State Key Laboratory of Estuarine and Coastal Research East China Normal University Shanghai 200241 China;

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