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首页> 外文期刊>Journal of Hydrology >A surrogate model for simulation-optimization of aquifer systems subjected to seawater intrusion
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A surrogate model for simulation-optimization of aquifer systems subjected to seawater intrusion

机译:海水入侵下含水层系统模拟优化的替代模型

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This study presents the application of Evolutionary Polynomial Regression (EPR) as a pattern recognition system to predicate the behavior of nonlinear and computationally complex aquifer systems subjected to seawater intrusion (SWI). The developed EPR models are integrated with a multi objective genetic algorithm to examine the efficiency of different arrangements of hydraulic barriers in controlling SWI. The objective of the optimization is to minimize the economic and environmental costs. The developed EPR model is trained and tested for different control scenarios, on sets of data including different pumping patterns as inputs and the corresponding set of numerically calculated outputs. The results are compared with those obtained by direct linking of the numerical simulation model with the optimization tool. The results of the two above-mentioned simulation-optimization (S/O) strategies are in excellent agreement. Three management scenarios are considered involving simultaneous use of abstraction and recharge to control SWI. Minimization of cost of the management process and the salinity levels in the aquifer are the two objective functions used for evaluating the efficiency of each management scenario. By considering the effects of the unsaturated zone, a subsurface pond is used to collect the water and artificially recharge the aquifer. The distinguished feature of EPR emerges in its application as the metamodel in the S/O process where it significantly reduces the overall computational complexity and time. The results also suggest that the application of other sources of water such as treated waste water (TWW) and/or storm water, coupled with continuous abstraction of brackish water and its desalination and use is the most cost effective method to control SWI. A sensitivity analysis is conducted to investigate the effects of different external sources of recharge water and different recovery ratios of desalination plant on the optimal results. (C) 2015 Elsevier B.V. All rights reserved.
机译:这项研究提出了进化多项式回归(EPR)作为模式识别系统的应用,以预测遭受海水入侵(SWI)的非线性和计算复杂的含水层系统的行为。已开发的EPR模型与多目标遗传算法集成在一起,以检查在控制SWI时液压障碍的不同布置的效率。优化的目的是使经济和环境成本最小化。针对不同的控制场景,对已开发的EPR模型进行了培训和测试,其数据集包括不同的泵送模式作为输入,以及相应的一组数值计算的输出。将结果与通过将数值模拟模型与优化工具直接链接而获得的结果进行比较。上面提到的两种仿真优化(S / O)策略的结果非常吻合。考虑了三种管理方案,其中涉及同时使用抽象和充电来控制SWI。管理过程成本和含水层中盐度水平的最小化是用于评估每个管理方案的效率的两个目标函数。考虑到非饱和区的影响,地下池用于收集水并人工补给含水层。 EPR的显着特征是作为S / O流程中的元模型在其应用中出现,它显着降低了总体计算复杂度和时间。结果还表明,应用其他水源(如处理后的废水(TWW)和/或雨水),加上对咸淡水的持续提取及其淡化和使用,是控制SWI的最经济有效的方法。进行敏感性分析以研究不同的外部补给水源和不同的淡化厂回收率对最佳结果的影响。 (C)2015 Elsevier B.V.保留所有权利。

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