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Simulation-based process optimization for surfactant-enhanced aquifer remediation at heterogeneous DNAPL-contaminated sites

机译:基于表面活性剂的含水层修复在异质DNAPL污染位点的基于模拟的过程优化

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Widespread use of dense non-aqueous phase liquids (DNAPLs) such as TCE and PCE has resulted in contamination of enormous valuable groundwater resources and become high-priority environmental problems. However, experiences from the past decades have demonstrated that DNAPL-contaminated sites were difficult to investigate and challenging to remediate. In this study, a simulation-based process optimization system was developed through integrating a multidimensional simulator, a multivariate statistical tool and an optimization model within a general framework for supporting decisions of surfactant-enhanced aquifer remediation (SEAR). A 3D multiphase and multi-component subsurface model was first provided to simulate SEAR process; dual-response surface models were then established to build a bridge between remediation actions and system performance; a nonlinear optimization model was then formulated for identifying optimal operating conditions for SEAR operations. The results in simulating a typical PCE spill event and the associated SEAR remediation operations in a heterogeneous subsurface indicated that SEAR would be capable of cleaning up the contaminated aquifer with improved efficiencies and cost-effectiveness compared with direct pump-and-treat actions. The regression-analysis results demonstrated that the proposed dual-response surface models were able to predict system responses under given operating conditions. The optimization results demonstrated that the developed simulation-optimization approach was effective in seeking cost-effective SEAR strategies for DNAPL-contaminated sites. With the developed method, optimum operation conditions under various environmental and economic considerations could be compiled into a database that would supports further studies of on-site process-control with injection and extraction rates being the main control variables.
机译:TCE和PCE等致密的非水相液体(DNAPL)的广泛使用已导致对宝贵的宝贵地下水资源的污染,并成为高度优先的环境问题。但是,过去几十年的经验表明,受DNAPL污染的位点难以调查且难以修复。在这项研究中,通过在通用框架内集成多维模拟器,多元统计工具和优化模型来开发基于模拟的过程优化系统,以支持表面活性剂增强含水层修复(SEAR)的决策。首先提供了一个3D多相和多分量地下模型来模拟SEAR过程。然后建立双响应表面模型,以建立补救措施和系统性能之间的桥梁。然后建立了非线性优化模型,以识别SEAR操作的最佳操作条件。在异质地下模拟典型PCE溢出事件和相关的SEAR修复操作的结果表明,与直接的泵送处理相比,SEAR能够以更高的效率和成本效益来清理受污染的含水层。回归分析结果表明,所提出的双重响应表面模型能够在给定的工作条件下预测系统响应。优化结果表明,开发的模拟优化方法可有效地为DNAPL污染的位点寻找具有成本效益的SEAR策略。使用开发的方法,可以将各种环境和经济考虑因素下的最佳操作条件汇编到一个数据库中,该数据库将支持对现场过程控制的进一步研究,而注入和提取速率是主要的控制变量。

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