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Output-feedback control of combined sewer networks through receding horizon control with moving horizon estimation

机译:通过移动视界估计的后退视界控制实现组合下水道网络的输出反馈控制

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摘要

An output-feedback control strategy for pollution mitigation in combined sewer networks is presented. The proposed strategy provides means to apply model-based predictive control to large-scale sewer networks, in-spite of the lack of measurements at most of the network sewers. In previous works, the authors presented a hybrid linear control-oriented model for sewer networks together with the formulation of Optimal Control Problems (OCP) and State Estimation Problems (SEP). By iteratively solving these problems, preliminary Receding Horizon Control with Moving Horizon Estimation (RHC/MHE) results, based on flow measurements, were also obtained. In this work, the RHC/MHE algorithm has been extended to take into account both flow and water level measurements and the resulting control loop has been extensively simulated to assess the system performance according different measurement availability scenarios and rain events. All simulations have been carried out using a detailed physically based model of a real case-study network as virtual reality.
机译:提出了一种减少下水道网络污染的输出反馈控制策略。尽管大多数网络下水道缺乏测量,但所提出的策略提供了将基于模型的预测控制应用于大型下水道网络的方法。在先前的工作中,作者提出了面向下水道网络的混合线性控制导向模型,以及最优控制问题(OCP)和状态估计问题(SEP)的提出。通过迭代解决这些问题,还获得了基于流量测量的带有移动视点估计的初步后视控制(RHC / MHE)结果。在这项工作中,对RHC / MHE算法进行了扩展,以考虑流量和水位测量,并广泛模拟了所得的控制回路,以根据不同的测量可用性情况和降雨事件评估系统性能。所有模拟都是使用作为虚拟现实的真实案例研究网络的基于物理的详细模型进行的。

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