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首页> 外文期刊>Water resources research >Reducing equifinality using isotopes in a process-based stream nitrogen model highlights the flux of algal nitrogen from agricultural streams
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Reducing equifinality using isotopes in a process-based stream nitrogen model highlights the flux of algal nitrogen from agricultural streams

机译:在基于过程的流态氮模型中使用同位素降低等价性突出了农业流中藻类氮的通量

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The fate of bioavailable nitrogen species transported through agricultural landscapes remains highly uncertain given complexities of measuring fluxes impacting the fluvial N cycle. We present and test a new numerical model named Technology for Removable Annual Nitrogen in Streams For Ecosystem Restoration (TRANSFER), which aims to reduce model uncertainty due to erroneous parameterization, i.e., equifinality, in stream nitrogen cycle assessment and quantify the significance of transient and permanent removal pathways. TRANSFER couples nitrogen elemental and stable isotope mass-balance equations with existing hydrologic, hydraulic, sediment transport, algal biomass, and sediment organic matter mass-balance subroutines and a robust GLUE-like uncertainty analysis. We test the model in an agriculturally impacted, third-order stream reach located in the Bluegrass Region of Central Kentucky. Results of the multiobjective model evaluation for the model application highlight the ability of sediment nitrogen fingerprints including elemental concentrations and stable N isotope signatures to reduce equifinality of the stream N model. Advancements in the numerical simulations allow for illumination of the significance of algal sloughing fluxes for the first time in relation to denitrification. Broadly, model estimates suggest that denitrification is slightly greater than algal N sloughing (10.7% and 6.3% of dissolved N load on average), highlighting the potential for overestimation of denitrification by 37%. We highlight the significance of the transient N pool given the potential for the N store to be regenerated to the water column in downstream reaches, leading to harmful and nuisance algal bloom development.
机译:鉴于测量通量影响河流氮循环的复杂性,通过农业景观运输的生物利用氮物种的命运仍然高度不确定。我们提出并测试了一个新的数值模型,该模型名为“用于生态系统恢复的溪流中可移动氮的年度技术”(TRANSFER),其目的是减少由于溪流氮循环评估中错误的参数化(即等当性)而导致的模型不确定性,并量化瞬态和氮的重要性。永久清除途径。 TRANSFER将氮元素和稳定同位素的质量平衡方程式与现有的水文,水力,沉积物传输,藻类生物量和沉积物有机物质量平衡子程序结合起来,并进行了类似GLUE的可靠不确定性分析。我们在位于肯塔基州中部的蓝草地区的受农业影响的三级河段中测试了该模型。用于模型应用的多目标模型评估结果突出了包括元素浓度和稳定的N同位素特征在内的沉积物氮指纹降低流N模型的均等性的能力。数值模拟的进步首次揭示了与脱氮有关的藻类泥渣通量的重要性。广义地说,模型估计表明反硝化作用略大于藻氮的沉降(平均分别为溶解氮负荷的10.7%和6.3%),突显了反硝化作用高估了37%的可能性。我们强调了瞬态氮库的重要性,因为潜在的氮存储可能会再生到下游河段的水柱,从而导致有害和有害的藻华繁殖。

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