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Improving Seawater Barrier Operation with Simulation Optimization in Southern California

机译:通过模拟优化改善南加州的海水屏障运营

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摘要

A calibrated simulation model is linked with two optimization models to investigate alternatives for enhancing seawater intrusion barrier operations for the Alamitos Barrier Project in Los Angeles. Two types of management problems are analyzed, the optimal scheduling problem (OSP) and the optimal well location problem. The OSP objective is to minimize the total injected water subject to constraints on the state variables: Hydraulic head and chloride concentration at target locations. Two OSP formulations are considered, a pure hydraulic gradient formulation, and a combined hydraulic and transport formulation. When considering all 43 injection wells over a five-year planning horizon, the simulation-optimization model could not significantly improve upon the assigned initial injection rates. However, if a subset of the injection wells is exclusively considered, more favorable injection policies are obtained where less water is injected, compared with either the mean or annual mean derived from the historical record. Next, a genetic algorithm (GA) is linked with the calibrated simulation model to determine the locations of new injection wells that maximize one of two alternative fitness functions, which quantify barrier improvement. Parallel processing is implemented to accelerate the convergence of the GA.
机译:校准的仿真模型与两个优化模型链接,以研究替代方法,以增强洛杉矶Alamitos屏障项目的海水入侵屏障操作。分析了两种管理问题,即最佳调度问题(OSP)和最佳井位问题。 OSP的目标是最大程度地减少总注入水量,但要受状态变量的限制:目标位置的水头和氯化物浓度。考虑了两种OSP公式,纯液压梯度公式以及组合的液压和运输公式。在五年规划期内考虑所有43口注入井时,模拟优化模型无法在分配的初始注入率上得到显着改善。但是,如果仅考虑注入井的子集,则与从历史记录得出的平均值或年度平均值相比,在注入较少水的情况下可获得更有利的注入策略。接下来,将遗传算法(GA)与校准的仿真模型链接起来,以确定新的注入井的位置,这些注入井的位置可最大化两个替代适应度函数中的一个,从而量化了屏障的改进。实施并行处理可加快GA的收敛速度。

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