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Development of Efficient Model Predictive Control Strategy for Cost-Optimal Operation of a Water Pumping Station

机译:水泵站成本优化运行的有效模型预测控制策略的开发

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Considering time-of-use electricity pricing, the optimal scheduling problem of a pumping station is reformulated into a control sequence (CS) optimal scheduling problem, for which a reduced dynamic programming algorithm (RDPA) is proposed to obtain the solution. It is shown that the RDPA allows a reduction of the operational cost by about 60% compared to a basic conventional control strategy, in the example investigated. The fast computation feature of the RDPA facilitates the implementation of a model predictive control (MPC) strategy. In the simulations, RDPA within the MPC structure is found to provide robust control and a marginally increased operational cost, given a ${pm}10%$ inflow rate uncertainty and a modest stochastic rainfall variability (up to 20%).
机译:考虑到分时电价,将泵站的最优调度问题重新表述为控制序列(CS)最优调度问题,为此提出了一种简化的动态规划算法(RDPA)来获得解决方案。在所研究的示例中,表明与基本的常规控制策略相比,RDPA可以将运营成本降低约60%。 RDPA的快速计算功能有助于实施模型预测控制(MPC)策略。在模拟中,在给定 $ {pm} 10%$ 流入速度不确定性和适度的随机降雨变异性(最高20%)。

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