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首页> 外文期刊>Journal of Geophysical Research. Biogeosciences >Chesapeake Bay nitrogen fluxes derived from a landestuarine ocean biogeochemical modeling system: Model description, evaluation, and nitrogen budgets
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Chesapeake Bay nitrogen fluxes derived from a landestuarine ocean biogeochemical modeling system: Model description, evaluation, and nitrogen budgets

机译:切萨皮克湾的氮通量来自陆地河口海洋生物地球化学模拟系统:模型描述,评估和氮预算

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The Chesapeake Bay plays an important role in transforming riverine nutrients before they are exported to the adjacent continental shelf. Although the mean nitrogen budget of the Chesapeake Bay has been previously estimated from observations, uncertainties associated with interannually varying hydrological conditions remain. In this study, a land-estuarine-ocean biogeochemical modeling system is developed to quantify Chesapeake riverine nitrogen inputs, within-estuary nitrogen transformation processes and the ultimate export of nitrogen to the coastal ocean. Model skill was evaluated using extensive in situ and satellite-derived data, and a simulation using environmental conditions for 2001–2005 was conducted to quantify the Chesapeake Bay nitrogen budget. The 5 year simulation was characterized by large riverine inputs of nitrogen (154 × 10~9gNyr~(-1)) split roughly 60:40 between inorganic:organic components. Much of this was denitrified (34 × 10~9gNyr~(-1)) and buried (46 × 10~9gNyr~(-1)) within the estuarine system. A positive net annual ecosystemproduction for the bay further contributed to a large advective export of organic nitrogen to the shelf (91 × 10~9gNyr~(-1)) and negligible inorganic nitrogen export. Interannual variability was strong, particularly for the riverine nitrogen fluxes. In years with higher than average riverine nitrogen inputs, most of this excess nitrogen (50–60%) was exported from the bay as organic nitrogen, with the remaining split between burial, denitrification, and inorganic export to the coastal ocean. In comparison to previous simulations using generic shelf biogeochemical model formulations inside the estuary, the estuarine biogeochemical model described here produced more realistic and significantly greater exports of organic nitrogen and lower exports of inorganic nitrogen to the shelf.
机译:切萨皮克湾在转化河流营养素之前将其转化为邻近大陆架,这方面起着重要作用。尽管切萨皮克湾的平均氮预算以前是根据观察估计的,但仍存在与年际变化的水文状况有关的不确定性。在这项研究中,开发了陆地-河口-海洋生物地球化学建模系统,以量化切萨皮克河的氮输入,河口内氮转化过程以及最终向沿海海洋的氮出口。使用大量的原位和卫星数据评估了模型技能,并使用2001-2005年的环境条件进行了模拟,以量化切萨皮克湾的氮预算。历时5年的模拟的特征是河流沿河输入的大量氮(154×10〜9gNyr〜(-1))在无机:有机组分之间大致划分为60:40。其中大部分被反硝化(34×10〜9gNyr〜(-1))并埋在河口系统中(46×10〜9gNyr〜(-1))。海湾地区生态系统年净产量的正增长进一步促进了对流向架子的有机氮的大量对流出口(91×10〜9gNyr〜(-1))和无机氮的出口可忽略不计。年际变化很大,特别是对于河流氮通量。在河流氮输入高于平均水平的年份中,这些过量氮中的大部分(50-60%)以有机氮的形式从海湾出口,其余部分则分为埋葬,反硝化和无机出口到沿海海洋。与以前在河口内使用通用的架子生物地球化学模型公式进行的模拟相比,此处描述的河口生物地球化学模型产生了更加现实的有机氮出口,并且显着增加了向架子的无机氮出口。

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