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Application of set pair analysis and uncertainty analysis in groundwater pollution assessment and prediction: a case study of a typical molybdenum mining area in central Jilin province, China

机译:设定对分析及不确定性分析在地下水污染评价与预测中的应用 - 以吉林省中部典型钼矿区为例

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摘要

This study evaluated groundwater pollution from a molybdenum mining site in Jilin province, China. First, groundwater pollution in the study area was evaluated using set pair analysis (SPA), which addresses the uncertainties of the evaluation factors and the complex nonlinear relationship among them. Second, groundwater pollution after 3years was predicted. In this process, the influence of parameter uncertainty on simulation results was analyzed using Monte Carlo simulation, and the results of the analysis were explained from the perspective of pollution risk assessment. Monte Carlo simulation requires repeated invocation of a simulation model, which creates a large computational load. To solve this problem while ensuring high simulation accuracy, sensitivity analysis was used to select the more sensitive model parameters as random variables, and establish a surrogate model based on the Kriging method, thus facilitating the Monte Carlo simulation. We found that: (1) according to the SPA evaluation results, areas of extremely serious pollution were distributed downstream of the tailings and spoil bank. The groundwater in the study area was mainly affected by the tailings reservoir leakage and the spoil bank leachate. (2) Based on the uncertainty analysis, the serious pollution risks for observation wells 1, 2, 3, 4, 5, 6 and 7 were 100%, 100%, 64%, 79%, 52%, 100% and 23%, respectively. Groundwater in the southeast and northwest of the study area had a higher risk of pollution. In addition, pollution risk in the area near the spoil bank and tailings was higher than that of other areas. (3) The surrogate model established using the Kriging method not only had high accuracy and could fully approximate the input-output relationships of the simulation model, but also significantly reduced computing load and computation time. The results can provide a scientific basis for the prevention and control of groundwater pollution.
机译:本研究评估了中国吉林省钼矿业地下水污染。首先,使用集对分析(SPA)评估研究区域的地下水污染,这解决了评估因子的不确定性和它们之间的复杂非线性关系。第二,预计3年后的地下水污染。在该过程中,使用蒙特卡罗模拟分析了参数不确定度对模拟结果的影响,并从污染风险评估的角度解释了分析结果。 Monte Carlo仿真需要重复调​​用模拟模型,这会产生大的计算负荷。为了解决这一问题,同时确保高模拟精度,灵敏度分析用于选择更敏感的模型参数作为随机变量,并基于Kriging方法建立代理模型,从而促进蒙特卡罗模拟。我们发现:(1)根据SPA评估结果,极其严重的污染领域分布在尾矿和弃土银行下游。研究区的地下水主要受到尾矿储层泄漏的影响和破坏堤渗滤液。 (2)基于不确定性分析,观察孔1,2,3,4,5,6和7的严重污染风险为100%,100%,64%,79%,52%,100%和23% , 分别。在研究区的东南和西北地区地下水具有更高的污染风险。此外,弃土银行和尾矿附近区域的污染风险高于其他地区。 (3)使用Kriging方法建立的代理模型不仅具有高精度,并且可以完全近似模拟模型的输入输出关系,而且显着降低计算负载和计算时间。结果可为防治地下水污染提供科学依据。

著录项

  • 来源
    《Environmental Geology》 |2019年第10期|323.1-323.15|共15页
  • 作者单位

    Jilin Univ Key Lab Groundwater Resources & Environm Minist Educ Changchun 130021 Jilin Peoples R China|Jilin Univ Jilin Prov Key Lab Water Resources & Environm Changchun Jilin Peoples R China|Jilin Univ Coll New Energy & Environm Changchun 130021 Jilin Peoples R China;

    Jilin Univ Key Lab Groundwater Resources & Environm Minist Educ Changchun 130021 Jilin Peoples R China|Jilin Univ Jilin Prov Key Lab Water Resources & Environm Changchun Jilin Peoples R China|Jilin Univ Coll New Energy & Environm Changchun 130021 Jilin Peoples R China;

    Jilin Univ Key Lab Groundwater Resources & Environm Minist Educ Changchun 130021 Jilin Peoples R China|Jilin Univ Jilin Prov Key Lab Water Resources & Environm Changchun Jilin Peoples R China|Jilin Univ Coll New Energy & Environm Changchun 130021 Jilin Peoples R China;

    Jilin Univ Key Lab Groundwater Resources & Environm Minist Educ Changchun 130021 Jilin Peoples R China|Jilin Univ Jilin Prov Key Lab Water Resources & Environm Changchun Jilin Peoples R China|Jilin Univ Coll New Energy & Environm Changchun 130021 Jilin Peoples R China;

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

    Groundwater pollution assessment; Groundwater pollution risk prediction; Groundwater solute transport model; Uncertainty analysis; Surrogate model;

    机译:地下水污染评估;地下水污染风险预测;地下水溶质运输模型;不确定性分析;代理模型;
  • 入库时间 2022-08-18 22:20:22

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