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Effects of tidal flooding on estuarine biogeochemistry: Quantifying flood-driven nitrogen inputs in an urban, lower Chesapeake Bay sub-tributary

机译:潮汐洪水对河口生物地球化学的影响:量化城市,下切萨皮克湾亚支流中的洪水驱动氮投入

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Sea level rise has increased the frequency of tidal flooding even without accompanying precipitation in many coastal areas worldwide. As the tide rises, inundates the landscape, and then recedes, it can transport organic and inorganic matter between terrestrial systems and adjacent aquatic environments. However, the chemical and biological effects of tidal flooding on urban estuarine systems remain poorly constrained. Here, we provide the first extensive quantification of floodwater nutrient concentrations during a tidal flooding event and estimate the nitrogen (N) loading to the Lafayette River, an urban tidal sub-tributary of the lower Chesapeake Bay (USA). To enable the scale of synoptic sampling necessary to accomplish this, we trained citizen-scientist volunteers to collect 190 flood water samples during a perigean spring tide to measure total dissolved N (TDN), dissolved inorganic N (DIN) and phosphate concentrations, and Enterococcus abundance from the retreating ebb tide while using a phone application to measure the extent of tidal inundation. Almost 95% of Enterococcus results had concentrations that exceeded the standard established for recreational waters (104 MPN 100 mL~(-1)). Floodwater dissolved nutrient concentrations were higher than concentrations measured in natural estuarine waters, suggesting floodwater as a source of dissolved nutrients to the estuary. However, only DIN concentrations were statistically higher in floodwater samples than in the estuary. Using a hydrodynamic model to calculate the volume of water inundating the landscape, and the differences between the median DIN concentrations in floodwaters and the estuary, we estimate that 1,145 kg of DIN entered the Lafayette River during this single, blue sky, tidal flooding event. This amount exceeds the annual N load allocation for overland flow established by federal regulations for this segment of the Chesapeake Bay by 30%. Because tidal flooding is projected to increase in the future as sea levels continue to rise, it is crucial we quantify nutrient loading from tidal flooding in order to set realistic water quality restoration targets for tidally influenced water bodies.
机译:即使在全球许多沿海地区的许多沿海地区,海平面上升也增加了潮汐洪水的频率。随着潮流升起,淹没了景观,然后回去了,它可以在地面系统和邻近水生环境之间运输有机和无机物质。然而,城市河口系统上潮汐洪水的化学和生物学效应仍然受到严重受损。在这里,我们在潮汐洪水事件期间提供了第一次广泛定量的洪水营养浓度,并估算了亚麻塔河的氮气(n)装载,该潮汐河上的城市潮汐河(USA)的城市潮汐船舶。为了实现这一目标所需的舞蹈抽样的规模,我们培训了公民科学家志愿者在海春潮期间收集190洪水样品,以测量总溶解的N(TDN),溶解无机N(DIN)和磷酸盐浓度,以及肠球菌在使用手机应用程序的同时从撤退退潮的丰富,以衡量潮汐淹没的程度。近95%的肠球菌结果具有超过为娱乐水域建立的标准的浓度(104 MPN 100mL〜(-1))。洪水溶解的营养浓度高于天然偏卤素水域中测量的浓度,提示洪水作为溶解营养素的来源。然而,只有在洪水样本中才能统计学上较高,而不是在河口中。利用流体动力学模型计算洪水和河口中位数抗DIN浓度之间的水分模型,我们估计了1,145公斤的DIN进入拉斐特河,在这个单身,蓝天,潮汐洪水事件中进入了拉斐特河。该金额超过了联邦法规为这段切萨皮克湾的联邦法规建立的陆南流量的年度N负荷分配30%。由于潮汐洪水预计未来随着海平面继续上升而增加,这是至关重要的,我们量化潮汐洪水的营养加载,以便为整个水体采取逼真的水质恢复目标。

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  • 来源
    《Oceanographic Literature Review》 |2021年第9期|1920-1920|共1页
  • 作者单位

    Department of Ocean and Earth Sciences Old Dominion University Norfolk VA United States;

    Department of Ocean and Earth Sciences Old Dominion University Norfolk VA United States;

    Department of Ocean and Earth Sciences Old Dominion University Norfolk VA United States;

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