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Verifiable Metamodels for Nitrate Losses to Drains and Groundwater in the Corn Belt, USA

机译:美国玉米带中硝酸盐流失至排水渠和地下水的可验证元模型

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摘要

Nitrate leaching in the unsaturated zone poses a risk to groundwater, whereas nitrate in tile drainage is conveyed directly to streams. We developed metamodels (MMs) consisting of artificial neural networks to simplify and upscale mechanistic fate and transport models for prediction of nitrate losses by drains and leaching in the Corn Belt, USA. The two final MMs predicted nitrate concentration and flux, respectively, in the shallow subsurface. Because each MM considered both tile drainage and leaching, they represent an integrated approach to vulnerability assessment. The MMs used readily available data comprising farm fertilizer nitrogen (N), weather data, and soil properties as inputs; therefore, they were well suited for regional extrapolation. The MMs effectively related the outputs of the underlying mechanistic model (Root Zone Water Quality Model) to the inputs (R~2 = 0.986 for the nitrate concentration MM). Predicted nitrate concentration was compared with measured nitrate in 38 samples of recently recharged groundwater, yielding a Pearson's r of 0.466 (p = 0.003). Predicted nitrate generally was higher than that measured in groundwater, possibly as a result of the time-lag for modem recharge to reach well screens, denitrification in groundwater, or interception of recharge by tile drains. In a qualitative comparison, predicted nitrate concentration also compared favorably with results from a previous regression model that predicted total N in streams.
机译:硝酸盐在非饱和区中的浸出对地下水构成威胁,而瓷砖排水中的硝酸盐则直接输送到溪流中。我们开发了由人工神经网络组成的元模型(MMs),以简化和升级机械的命运和运输模型,以预测美国玉米带中的排水和浸出引起的硝酸盐损失。最终的两个MM分别预测了浅层地下的硝酸盐浓度和通量。因为每个MM都考虑了瓷砖排水和沥滤,所以它们代表了一种脆弱性评估的综合方法。 MM们使用了包括农业肥料氮(N),天气数据和土壤特性在内的现成数据作为输入。因此,它们非常适合于区域推断。 MM有效地将基本机理模型(根区水质模型)的输出与输入(硝酸盐浓度MM的R〜2 = 0.986)相关联。将38个最近补给的地下水样品中的硝酸盐浓度与测得的硝酸盐浓度进行了比较,得出的皮尔逊系数r为0.466(p = 0.003)。预测的硝酸盐通常高于地下水中的硝酸盐,这可能是由于现代补给到达井眼筛网的时间滞后,地下水中的反硝化作用或瓷砖排水沟对补给的拦截所致。在定性比较中,预测的硝酸盐浓度也与先前预测流中总氮的回归模型的结果相吻合。

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  • 来源
    《Environmental Science & Technology》 |2012年第2期|p.901-908|共8页
  • 作者单位

    U.S. Geological Survey, 413 National Center, Reston, Virginia 20192, United States;

    U.S. Department of Agriculture, 2110 University Boulevard, Ames, Iowa 50011, United States;

    U.S. Geological Survey, 345 Middlefield Road, Menlo Park, California 94025-3561, United States;

    U.S. Department of Agriculture, 21881 North Cardon Lane, Maricopa, Arizona 85138, United States;

    U.S. Department of Agriculture, 2150 Centre Avenue, Fort Collins, Colorado 80526, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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