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Hybrid-Optimization Algorithm for the Management of a Conjunctive-Use Project and Well Field Design

机译:混合使用项目管理和井场设计的混合优化算法

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摘要

Hi-Desert Water District (HDWD), the primary water-management agency in the Warren Groundwater Basin, California, plans to construct a waste water treatment plant to reduce future septic-tank effluent from reaching the groundwater system. The treated waste water will be reclaimed by recharging the groundwater basin via recharge ponds as part of a larger conjunctive-use strategy. HDWD wishes to identify the least-cost conjunctive-use strategies for managing imported surface water, reclaimed water, and local groundwater. As formulated, the mixed-integer nonlinear programming (MINLP) groundwater-management problem seeks to minimize water-delivery costs subject to constraints including potential locations of the new pumping wells, California State regulations, groundwater-level constraints, water-supply demand, available imported water, and pump/recharge capacities. In this study, a hybrid-optimization algorithm, which couples a genetic algorithm and successive-linear programming, is developed to solve the MINLP problem. The algorithm was tested by comparing results to the enumerative solution for a simplified version of the HDWD groundwater-management problem. The results indicate that the hybrid-optimization algorithm can identify the global optimum. The hybrid-optimization algorithm is then applied to solve a complex groundwater-management problem. Sensitivity analyses were also performed to assess the impact of varying the new recharge pond orientation, varying the mixing ratio of reclaimed water and pumped water, and varying the amount of imported water available. The developed conjunctive management model can provide HDWD water managers with information that will improve their ability to manage their surface water, reclaimed water, and groundwater resources.
机译:加州沃伦地下水盆地的主要水管理机构高沙漠水区(HDWD)计划建造一个废水处理厂,以减少将来的化粪池污水进入地下水系统。作为更大的联合使用策略的一部分,将通过补给池对地下水盆地进行补给来回收处理过的废水。 HDWD希望确定用于管理进口地表水,再生水和当地地下水的成本最低的联合使用策略。按照制定的程序,混合整数非线性规划(MINLP)地下水管理问题力求最大程度地降低水的输送成本,但要遵守以下条件:新泵井的潜在位置,加利福尼亚州法规,地下水水位约束,供水需求等进口水和泵/补给能力。在这项研究中,开发了一种混合优化算法,将遗传算法和连续线性规划相结合,以解决MINLP问题。通过将结果与枚举解决方案的HDWD地下水管理问题的简化版本进行比较,对算法进行了测试。结果表明,混合优化算法可以识别全局最优。然后将混合优化算法应用于解决复杂的地下水管理问题。还进行了敏感性分析,以评估改变新的补给池方向,改变再生水和抽水的混合比例以及改变可用进口水量的影响。开发的联合管理模型可以为HDWD水管理人员提供信息,这些信息将提高他们管理地表水,再生水和地下水资源的能力。

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  • 来源
    《Ground water》 |2012年第1期|p.103-117|共15页
  • 作者单位

    California Water Science Center, San Diego Project Office, U.S. Geological Survey, 4165 Spruance Rd., Suite 200, San Diego, CA 92101;

    California Water Science Center, San Diego Project Office, U.S. Geological Survey, 4165 Spruance Rd., Suite 200, San Diego, CA 92101;

    California Water Science Center, San Diego Project Office, U.S. Geological Survey, 4165 Spruance Rd., Suite 200, San Diego, CA 92101;

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