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Nitrate sinks and sources as controls of spatio-temporal water quality dynamics in an agricultural headwater catchment

机译:硝酸盐汇和水源作为农业源头流域时空水质动态的控制

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摘要

Several controls are known to affect water quality of stream networks during flow recession periods, such as solute leaching processes, surface water-groundwater interactions as well as biogeochemical in-stream turnover processes. Throughout the stream network, combinations of specific water and solute export rates and local in-stream conditions overlay the biogeochemical signals from upstream sections. Therefore, upstream sections can be considered functional units which could be distinguished and ordered regarding their relative contribution to nutrient dynamics at the catchment outlet. Based on snapshot sampling of flow and nitrate concentrations along the stream in an agricultural headwater during the summer flow recession period, we determined spatial and temporal patterns of water quality for the whole stream. A data-driven, in-stream-mixing-and-removal model was developed and applied for analysing the spatio-temporal in-stream retention processes and their effect on the spatio-temporal fluxes of nitrate from subcatchments. Thereby, we have been able to distinguish quantitatively between nitrate sinks, sources per stream reaches, and subcatchments, and thus we could disentangle the overlay of nitrate sink and source signals. For nitrate sources, we determined their permanent and temporal impact on stream water quality and for nitrate sinks, we found increasing nitrate removal efficiencies from upstream to downstream. Our results highlight the importance of distinct nitrate source locations within the watershed for in-stream concentrations and in-stream removal processes, respectively. Thus, our findings contribute to the development of a more dynamic perception of water quality in streams and rivers concerning ecological and sustainable water resource management.
机译:已知有几种控制措施会在流量衰退期间影响河流网络的水质,例如溶质浸出过程,地表水与地下水的相互作用以及生物地球化学过程中的周转过程。在整个河流网络中,特定水和溶质的出口速度以及当地河流条件的组合覆盖了来自上游地区的生物地球化学信号。因此,上游部分可以被认为是功能单元,可以对其进行区分和排序,因为它们对集水口出口养分动态的相对贡献。基于夏季枯水期中农业源头的水流和硝酸盐浓度的快照采样,我们确定了整个水流的水质时空格局。建立了一个数据驱动的流中混合去除模型,并将其用于分析时空流滞留过程及其对子汇水区硝酸盐时空通量的影响。因此,我们已经能够定量区分硝酸盐汇,每条河流到达的源和子汇水区,因此我们可以解开硝酸盐汇和源信号的重叠。对于硝酸盐源,我们确定了它们对溪流水质的永久性和暂时性影响,对于硝酸盐汇,我们发现从上游到下游的硝酸盐去除效率不断提高。我们的结果强调了流域内不同硝酸盐源位置分别对河流中浓度和河流中去除过程的重要性。因此,我们的发现有助于对有关生态和可持续水资源管理的溪流和河水的水质有了更动态的认识。

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