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首页> 外文期刊>Advances in Water Resources >A Simulation-based Fuzzy Chance-constrained Programming Model For Optimal Groundwater Remediation Under Uncertainty
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A Simulation-based Fuzzy Chance-constrained Programming Model For Optimal Groundwater Remediation Under Uncertainty

机译:不确定条件下地下水最优治理的基于模拟的模糊机会约束规划模型

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In this study a simulation-based fuzzy chance-constrained programming (SFCCP) model is developed based on possibility theory. The model is solved through an indirect search approach which integrates fuzzy simulation, artificial neural network and simulated annealing techniques. This approach has the advantages of: (1) handling simulation and optimization problems under uncertainty associated with fuzzy parameters, (2) providing additional information (i.e. possibility of constraint satisfaction) indicating that how likely one can believe the decision results, (3) alleviating computational burdens in the optimization process, and (4) reducing the chances of being trapped in local optima. The model is applied to a petroleum-contaminated aquifer located in western Canada for supporting the optimal design of ground-water remediation systems. The model solutions provide optimal groundwater pumping rates for the 3, 5 and 10 years of pumping schemes. It is observed that the uncertainty significantly affects the remediation strategies. To mitigate such impacts, additional cost is required either for increased pumping rate or for reinforced site characterization.
机译:在这项研究中,基于可能性理论,建立了基于仿真的模糊机会约束规划(SFCCP)模型。该模型通过间接搜索方法求解,该方法集成了模糊仿真,人工神经网络和仿真退火技术。这种方法的优点是:(1)在与模糊参数相关的不确定性下处理仿真和优化问题;(2)提供其他信息(即约束满足的可能性),表明人们可以相信决策结果的可能性,(3)减轻优化过程中的计算负担,以及(4)减少陷入局部最优的机会。该模型被应用于加拿大西部一个受石油污染的含水层,以支持地下水修复系统的优化设计。模型解决方案为3年,5年和10年的抽水方案提供了最佳的地下水抽水速率。可以看出,不确定性会极大地影响修复策略。为了减轻这种影响,需要增加成本以提高泵速或增强现场特征。

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