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Approaches to Control Nitrate Pollution in the San Joaquin Watershed

机译:控制圣华金流域硝酸盐污染的方法

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Modeling of the San Joaquin valley using SWAT can give a comprehensive overview of hydrologic traits of the San Joaquin River and its tributaries, specifically for nutrients like nitrate. The San Joaquin valley is a site of intense modeling interest and policy making, as the San Joaquin River joins the Sacramento River to feed into the Delta. The environmental impact of dissolved oxygen on aquatic life on the Delta is a particularly key concern (Quinn 2000). The San Joaquin watershed also represents considerable investment in agriculture on the valley floor and has been studied for nitrate, sediment, and salinity concerns particularly with regard to agricultural runoff. Evaluation of model accuracy and utility are important for any future studies on the San Joaquin River for hydrology and nutrients, especially in regards to policy making. Criteria for model evaluation are based on model accuracy and reliable conclusions on the watershed traits. The accuracy of the model is summarized by the goodness-of-fit (e.g., Nash-Sutcliffe efficiency, mean of sum of square residuals), as well as the ability of the model to reproduce trustworthy results. Reliable conclusions concerning the hydrological simulation of the San Joaquin are based on recognizable hydrology trends in surface flow and nutrient origin and transport, particularly nitrates. Models are a tool used by engineers for a better understanding and explanation of natural phenomena and may provide predictions in a deterministic or probabilistic sense (Ritter 2001). Models simplify real life scenarios and situations. If models are used correctly, with the proper understanding of the utility as well as the flaws of modeling, they can sufficiently represent reality to justify decisions and formulate policies. Many hydrologic models, models which try to represent hydrologic conditions through the use of physical laws and mechanistic approaches, have been developed for research, management, and regulation for Water Resources Engineering purposes. Developing public and water stakeholder trust in hydrology models is important for model use in decision making and policy support, which is essential for emerging water management problems like urban water supply reliability, environmental restoration, climate change, floods, and agricultural water security. California's complex water system depends on how well the water community develops and uses data and models to address these water management problems (CWEMF, 2005).
机译:使用SWAT对圣华金河谷进行建模可以全面概述圣华金河及其支流的水文特征,特别是硝酸盐等营养素。随着圣华金河与萨克拉曼多河汇入三角洲,圣华金河谷成为了一个具有浓厚模型兴趣和政策制定地的地方。溶解氧对三角洲水生生物的环境影响尤其重要(Quinn 2000)。 San Joaquin流域在谷底地区也代表了对农业的大量投资,并且已经针对硝酸盐,沉积物和盐分问题进行了研究,尤其是在农业径流方面。模型准确性和实用性的评估对于未来在圣华金河上的水文和养分研究尤其是在决策方面的研究至关重要。模型评估的标准基于模型的准确性和关于分水岭特征的可靠结论。通过拟合优度(例如Nash-Sutcliffe效率,平方残差之和的平均值)以及模型再现可信赖结果的能力来概括模型的准确性。关于圣华金水文模拟的可靠结论是基于可识别的水文学趋势,包括地表水流,养分来源和运输,特别是硝酸盐。模型是工程师用来更好地理解和解释自然现象的工具,并且可以提供确定性或概率性的预测(Ritter 2001)。模型简化了现实生活中的场景和情况。如果正确使用模型,并充分了解实用程序以及建模的缺陷,则它们可以充分代表现实,以证明决策依据和制定政策。已经开发出许多水文模型,这些模型试图通过使用物理定律和机械方法来表示水文条件,以用于水资源工程的研究,管理和调节。建立公众和水资源利益相关者对水文模型的信任对于在决策和政策支持中使用模型非常重要,这对于新出现的水资源管理问题(如城市供水可靠性,环境恢复,气候变化,洪水和农业水安全)至关重要。加利福尼亚州复杂的水系统取决于水社区的发展状况,并使用数据和模型来解决这些水管理问题(CWEMF,2005)。

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