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Power plant maintenance scheduling using ant colony optimization: an improved formulation

机译:使用蚁群优化的电厂维护计划:改进的公式

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It is common practice in the hydropower industry to either shorten the maintenance duration or to postpone maintenance tasks in a hydropower system when there is expected unserved energy based on current water storage levels and forecast storage inflows. It is therefore essential that a maintenance scheduling optimizer can incorporate the options of shortening the maintenance duration and/or deferring maintenance tasks in the search for practical maintenance schedules. In this article, an improved ant colony optimization-power plant maintenance scheduling optimization (ACO-PPMSO) formulation that considers such options in the optimization process is introduced. As a result, both the optimum commencement time and the optimum outage duration are determined for each of the maintenance tasks that need to be scheduled. In addition, a local search strategy is presented in this article to boost the robustness of the algorithm. When tested on a five-station hydropower system problem, the improved formulation is shown to be capable of allowing shortening of maintenance duration in the event of expected demand shortfalls. In addition, the new local search strategy is also shown to have significantly improved the optimization ability of the ACO-PPMSO algorithm.
机译:当根据当前储水量和预测的入库水量预计会有无用的能源时,在水电行业中,通常的做法是缩短维护时间或推迟维护工作。因此,至关重要的是,维护计划优化器可以在搜索实际维护计划时纳入缩短维护时间和/或推迟维护任务的选项。本文介绍了一种改进的蚁群优化-电厂维护调度优化(ACO-PPMSO)公式,该公式在优化过程中考虑了此类选项。结果,为需要计划的每个维护任务确定了最佳开始时间和最佳停机时间。另外,本文提出了一种局部搜索策略,以提高算法的鲁棒性。在五站水电系统问题上进行测试时,改进的配方显示出能够在预期需求不足的情况下缩短维护时间。此外,新的本地搜索策略还显示出显着提高了ACO-PPMSO算法的优化能力。

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