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Optimal Dynamic Monitoring Network Design and Identification of Unknown Groundwater Pollution Sources

机译:未知地下水污染源的最优动态监测网络设计与识别

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摘要

The identification of unknown pollution sources is a prerequisite for designing of a remediation strategy. In most of the real world situations, it is difficult to identify the pollution sources without a scientifically designed efficient monitoring network. The locations of the contaminant concentration measurement sites would determine the efficiency of the unknown source identification process to a large extent. Therefore coupled and iterative sequential source identification and dynamic monitoring network design framework is developed. The coupled approach provides a framework for necessary sequential exchange of information between monitoring network and source identification methodology. The preliminary identification of unknown sources, based on limited concentration data from existing arbitrarily located wells provides the initial rough estimate of the source fluxes. These identified source fluxes are then utilized for designing an optimal monitoring network for the first stage. Both the monitoring network and source identification process is repeated by sequential identification of sources and design of monitoring network which provides the feedback information. In the optimal source identification model, the Jacobian matrix which is the determinant for the search direction in the nonlinear optimization model links the groundwater flow-transport simulator and the optimization method. For the optimal monitoring network design, the integer programming based optimal design model requires as input, simulated sets of concentration data. In the proposed methodology, the concentration measurement data from the designed and implemented monitoring network are used as feedback information for sequential identification of unknown pollution sources. The potential applicability of the developed methodology is demonstrated for an illustrative study area.
机译:识别未知污染源是设计补救策略的前提。在大多数现实世界中,如果没有科学设计的高效监控网络很难确定污染源。污染物浓度测量位置的位置将在很大程度上决定未知源识别过程的效率。因此,开发了耦合迭代顺序源识别和动态监控网络设计框架。耦合方法为监视网络和源识别方法之间必要的信息顺序交换提供了框架。根据来自现有任意定位井的有限浓度数据,对未知源进行初步识别,可以初步估算出源通量。然后,将这些识别出的源通量用于设计第一阶段的最佳监控网络。通过对源进行顺序标识和设计提供反馈信息的监视网络,可以重复监视网络和源标识过程。在最优水源识别模型中,作为非线性优化模型中搜索方向的决定因素的雅可比矩阵将地下水流模拟程序与优化方法联系在一起。对于最佳监控网络设计,基于整数规划的最佳设计模型需要输入模拟浓度数据集作为输入。在所提出的方法中,来自设计和实施的监控网络的浓度测量数据被用作反馈信息,用于顺序识别未知污染源。所开发方法的潜在适用性已在说明性研究领域得到证明。

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