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Uncertainty analysis of parameters in non-point source pollution simulation: case study of the application of the Soil and Water Assessment Tool model to Yitong River watershed in northeast China

机译:非点源污染模拟参数的不确定性分析 - 案例研究土壤和水分评估工具模型在东北宜通河流域应用

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摘要

Uncertainty analysis of the model parameters in non-point source pollution (NPSP) simulation is important because of its great effects on predictions and decision-making. Understanding the main parameters that effect the uncertainty of NPSP is necessary to provide the basis for formulating control measures. In this study, two methods were applied to conduct parameter uncertainty analysis for Soil and Water Assessment Tool (SWAT). Sobol' method was used to screen out the model parameters with great effects on the runoff, sediment, total nitrogen (TN) and total phosphorus (TP). The results obtained by sensitivity analysis were used subsequent model calibration and further uncertainty analysis. Monte Carlo (MC) method was employed to analyse the effects of parameter uncertainty on the model outputs. However, such problems are time-consuming because the MC method required to invoke simulation model thousands of times. To address this challenge, a kriging surrogate model was developed to improve the overall calculation efficiency. The results obtained by sensitivity analysis showed that curve number value (CN2), soil evaporation compensation factor (ESCO), universal soil loss equation support practice factor (USLE_P) and initial organic nitrogen concentration in soil layer (SOL_ORGN) had significant effects on the SWAT outputs. The uncertainty analysis results showed that the uncertainty of runoff is the lowest, followed by TP and TN, and the uncertainty of sediment was the greatest. The kriging surrogate model has the ability to solve this time-consuming problem rapidly with a high degree of accuracy, and thus it is very robust.
机译:非点源污染模型参数的不确定性分析(NPSP)仿真是重要的,因为它对预测和决策的巨大影响。理解影响NPSP不确定性的主要参数是为制定控制措施的基础是必要的。在该研究中,应用了两种方法来对土壤和水评估工具进行参数不确定性分析(SWAT)。 Sobol'方法用于筛选模型参数,对径流,沉积物,总氮(TN)和总磷(TP)产生很大影响。通过敏感性分析获得的结果被使用随后的模型校准以及进一步的不确定性分析。使用蒙特卡罗(MC)方法来分析参数不确定性对模型输出的影响。然而,这种问题是耗时的,因为需要调用仿真型号的MC方法数千次。为了解决这一挑战,开发了一种Kriging代理模型,以提高整体计算效率。通过灵敏度分析获得的结果表明,曲线数值(CN2),土壤蒸发补偿因子(ESCO),通用土壤丢失方程支持实践因子(USLE_P)和土壤层中的初始有机氮浓度(SOL_ORGN)对SWAT产生了显着影响输出。不确定性分析结果表明,径流的不确定性是最低,其次是TP和TN,沉积物的不确定性是最大的。 Kriging代理模型能够以高精度快速解决这一耗时的问题,因此它非常坚固。

著录项

  • 来源
    《Water and environment journal》 |2019年第3期|390-400|共11页
  • 作者单位

    Jilin Univ Key Lab Groundwater Resources & Environm Minist Educ Changchun Jilin Peoples R China|Jilin Univ Coll Environm & Resources Changchun Jilin Peoples R China;

    Jilin Univ Key Lab Groundwater Resources & Environm Minist Educ Changchun Jilin Peoples R China|Jilin Univ Coll Environm & Resources Changchun Jilin Peoples R China;

    Jilin Univ Key Lab Groundwater Resources & Environm Minist Educ Changchun Jilin Peoples R China|Jilin Univ Coll Environm & Resources Changchun Jilin Peoples R China;

    Jilin Univ Key Lab Groundwater Resources & Environm Minist Educ Changchun Jilin Peoples R China|Jilin Univ Coll Environm & Resources Changchun Jilin Peoples R China;

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

    non-point source pollution; kriging; Monte Carlo; Sobol'; SWAT; uncertainty analysis;

    机译:非点源污染;克里格;蒙特卡洛;荞麦面';斯瓦尔;不确定性分析;
  • 入库时间 2022-08-18 21:38:59

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