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Influence of mussel aquaculture on nitrogen dynamics in a nutrient enriched coastal embayment

机译:贻贝养殖对营养丰富的沿海隔离带氮动态的影响

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The combined influences of intensive mussel aquaculture and watershed nutrient inputs on nitrogen dynamics in Tracadie Bay, Prince Edward Island, Canada, were examined using a nitrogen budget and an ecosystem model. Budget calculations, and inputs and parameters for the model were based on extensive field data. Both approaches showed that mussel aquaculture has a dominant influence on all aspects of the nitrogen cycle and dramatically alters pathways by which nitrogen reaches the phytoplankton and benthos. A large proportion of phytoplankton production is supported by land-derived nitrogen and this anthropogenic input is important for sustaining existing levels of mussel production. The amount of nitrogen removed in the mussel harvest is small compared with agricultural nitrogen inputs and the amounts excreted and biodeposited on the seabed. Mussel biodeposition greatly increases the flux of nitrogen to the benthos, with potentially serious eutrophication impacts. Results from the observation-based nitrogen budget and dynamic model were compared and both support the above conclusions. However, the ability of the model to test different scenarios and to provide additional information (e.g. fluxes) over a finer spatial scale led to insights unattainable with a nitrogen budget. For example, food appears to be less available to mussels at the head of the Bay than at the mouth, despite the lower density of grow-out sites in the former location. The number of fundamental ecosystem processes influenced by the mussels and the complexity of their interactions make it difficult to predict the effects of mussels on many ecosystem properties without resorting to a model.
机译:利用氮预算和生态系统模型,研究了贻贝集约化养殖和流域养分投入对加拿大特拉卡迪湾(加拿大爱德华王子岛)氮动态的综合影响。预算计算以及模型的输入和参数均基于大量的现场数据。两种方法都表明,贻贝养殖对氮循环的各个方面都具有主要影响力,并显着改变氮到达浮游植物和底栖生物的途径。大量的浮游植物生产由陆源氮支持,这种人为投入对于维持现有的贻贝生产水平很重要。与农业氮输入相比,贻贝收获物中去除的氮量很小,并且排泄和生物沉积在海底的氮量也很少。贻贝的生物沉积大大增加了向底栖生物的氮通量,可能造成严重的富营养化影响。比较了基于观测的氮预算和动态模型的结果,均支持上述结论。但是,该模型测试不同情景并在更精细的空间范围内提供其他信息(例如通量)的能力导致氮预算无法获得的见解。例如,尽管在前头的贻贝养殖场密度较低,但湾头的贻贝似乎比河口的食物少。受贻贝影响的基本生态系统过程的数量及其相互作用的复杂性使得难以在不借助模型的情况下预测贻贝对许多生态系统特性的影响。

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