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Hierarchical and decentralised model predictive control of drinking water networks: Application to Barcelona case study

机译:饮用水网络的分层和分散模型预测控制:在巴塞罗那案例研究中的应用

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摘要

A hierarchical and decentralised model predictive control (DMPC) strategy for drinking water networks (DWN) is proposed. The DWN is partitioned into a set of subnetworks using a partitioning algorithm that makes use of the topology of the network, historic information about the actuator usage and heuristics. A suboptimal DMPC strategy was derived, which consists in a set of MPC controllers, whose prediction model is a plant partition, where each element solves its control problem in a hierarchical order. A comparative simulation study between centralised MPC (CMPC) and DMPC approaches is developed using a case study, which consists in an aggregate version of the Barcelona DWN. Results have shown the effectiveness of the proposed DMPC approach in terms of the scalability of computations with an acceptable admissible loss of performance in all the considered scenarios.
机译:提出了一种饮用水网络(DWN)的分级分散模型预测控制(DMPC)策略。使用分区算法将DWN划分为一组子网,该算法利用网络的拓扑,有关执行器使用的历史信息和启发式方法。推导了次优DMPC策略,该策略由一组MPC控制器组成,其预测模型为工厂分区,其中每个元素以层次结构顺序解决其控制问题。使用案例研究开发了集中式MPC(CMPC)和DMPC方法之间的比较模拟研究,该案例研究包含Barcelona DWN的汇总版本。结果表明,在所有考虑的场景中,就计算的可伸缩性而言,建议的DMPC方法的有效性,以及可接受的性能损失。

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