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A NEW SIMULATION-OPTIMIZATION APPROACH FOR SIMULTANEOUSLY IDENTIFYING THE SPATIAL DISTRIBUTION AND SOURCE FLUXES OF THE AREAL GROUNDWATER POLLUTION SOURCES

机译:一种新的仿真优化方法,用于同时识别面下地下水污染源的空间分布和源通量

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This study proposes a new simulation-optimization approach for simultaneously identifying the spatial distribution and source fluxes of the areal pollution sources in groundwater systems. In the proposed approach, groundwater flow and pollution transport processes are simulated via MODFLOW and MT3DMS models in the simulation part. These models are then integrated to an optimization model where a binary genetic algorithm (GA) is used. In the proposed GA based optimization model, finite difference grid blocks of the given aquifer domain are considered to be the potential areal pollution source locations. The main objective of the GA is to evolve the source fluxes and spatial distributions of source locations through genetic operators by minimizing the error value calculated between the measured and simulated pollution concentrations at given monitoring locations and times. The performance of the proposed approach is evaluated on a hypothetical aquifer model for 4 different pollution source distributions. Identified results indicated that the proposed simulation-optimization approach may be used as an effective way to solve the areal pollution source identification problems.
机译:本研究提出了一种新的仿真优化方法,用于同时识别地下水系统中面积污染源的空间分布和源通量。在所提出的方法中,通过模拟部分的Modflow和MT3DMS模型模拟地下水和污染传输过程。然后将这些模型集成到优化模型中,其中使用二进制遗传算法(GA)。在所提出的GA基于优化模型中,给定含水层域的有限差分网格块被认为是潜在的面积污染源位置。 GA的主要目的是通过最小化在给定监测位置和时间的测量和模拟污染浓度之间计算的误差值来演化源区的源极磁通量和空间分布。对4种不同污染源分布的假设含水层模型评估了所提出的方法的性能。所确定的结果表明,所提出的模拟优化方法可以用作解决面积污染源识别问题的有效方法。

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