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Identification of phosphorus emission hotspots in agricultural catchments

机译:农业流域磷排放热点的识别

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摘要

An enhanced transport-based management approach is presented, which is able to support cost-effective water quality management with respect to diffuse phosphorus pollution. Suspended solids and paniculate phosphorus emissions and their transport were modeled in two hilly agricultural watersheds (Wulka River in Austria and Zala River in Hungary) with an improved version of the catchment-scale PhosFate model. Source and transmission areas were ranked by an optimization method in order to provide a priority list of the areas of economically efficient (optimal) management alternatives. The model was calibrated and validated at different gauges and for various years. The spatial distribution of the emissions shows that approximately one third of the catchment area is responsible for the majority of the emissions. However, only a few percent of the source areas can transport fluxes to the catchment outlet. These effective source areas, together with the main transmission areas are potential candidates for improved management practices. In accordance with the critical area concept, it was shown that intervention with better management practices on a properly selected small proportion of the total area (1-3%) is sufficient to reach a remarkable improvement in water quality. If soil nutrient management is also considered in addition to water quality, intervention on 4-12% of the catchment areas can fulfill both aspects.
机译:提出了一种改进的基于运输的管理方法,该方法能够支持针对弥散性磷污染进行具有成本效益的水质管理。在两个丘陵农业流域(奥地利的乌尔卡河和匈牙利的扎拉河)中模拟了悬浮固体和颗粒磷的排放及其迁移,并采用了集水规模的PhosFate模型的改进版本。通过优化方法对源和传输区域进行排序,以便提供经济高效(最佳)管理替代方案区域的优先列表。该模型已在不同规格和不同年份进行了校准和验证。排放物的空间分布表明,流域面积的大约三分之一是大部分排放物的原因。但是,只有百分之几的源区可以将通量传输到集水口。这些有效的来源领域以及主要的传播领域都是改进管理实践的潜在候选者。根据关键区域的概念,研究表明,对总面积的适当选择的一小部分(1-3%)采取更好的管理措施进行干预就足以显着改善水质。如果除了水质之外还考虑对土壤养分进行管理,则对4-12%的集水区进行干预可以同时满足这两个方面。

著录项

  • 来源
    《Science of the total environment》 |2012年第1期|p.74-88|共15页
  • 作者单位

    Research Centers for Water Quality Management and Biology and Chemistry of Water, Institute for Water Quality, Resource and Waste Management, Vienna University of Technology, Karlsplatz 13/226, A-1040 Vienna, Austria,The Centre for Water Resource Systems, Vienna University of Technology, Karlsplatz 13/222, A-W40 Vienna, Austria;

    Department of Environmental Chemistry, Swiss Federal Institute of Aquatic Science and Technology, UEberlandstrasse 133, CH-8600 Dubendorf, Switzerland;

    Research Centers for Water Quality Management and Biology and Chemistry of Water, Institute for Water Quality, Resource and Waste Management, Vienna University of Technology, Karlsplatz 13/226, A-1040 Vienna, Austria,The Centre for Water Resource Systems, Vienna University of Technology, Karlsplatz 13/222, A-W40 Vienna, Austria;

    Department of Small Watershed Hydrology and Erosion, Institute for Land and Water Management Research, Austrian Federal Agency for Water Management, Pollnbergstrasse 1, A-3252 Petzenkirchen, Austria,The Centre for Water Resource Systems, Vienna University of Technology, Karlsplatz 13/222, A-W40 Vienna, Austria;

    Department of Sanitary and Environmental Engineering, Budapest University of Technology and Economics, Muegyetem rakpart 3, H-UU Budapest, Hungary;

    Research Center of Hydrology and Water Resources Management, Institute of Hydraulic Engineering and Water Resources Management, Vienna University of Technology, Karlsplatz 13/222, A-1040 Vienna, Austria,The Centre for Water Resource Systems, Vienna University of Technology, Karlsplatz 13/222, A-W40 Vienna, Austria;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    optimization; paniculate phosphorus; suspended solids; transport modeling; watershed management;

    机译:优化;颗粒状磷悬浮固体;运输模型;分水岭管理;
  • 入库时间 2022-08-17 13:54:50

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