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A light clustering model predictive control approach to maximize thermal power in solar parabolic-trough plants

机译:一种光聚类模型预测控制方法,以最大限度地提高太阳能抛物面槽厂的热力

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摘要

This article shows how coalitional model predictive control (MPC) can be used to maximize thermal power of large-scale solar parabolic-trough plants. This strategy dynamically generates clusters of loops of collectors according to a given criterion, thus dividing the plant into loosely coupled subsystems that are locally controlled by their corresponding loop valves to gain performance and speed up the computation of control inputs. The proposed strategy is assessed with decentralized and centralized MPC in two simulated solar parabolic-trough fields. Finally, results regarding scalability are also given using these case studies.
机译:本文介绍了联盟模型预测控制(MPC)如何用于最大化大型太阳能抛物槽厂的热力。该策略根据给定标准动态地生成收集器循环簇,从而将工厂分成由其相应的环路阀本地控制的松散耦合的子系统,以获得性能并加速控制输入的计算。在两个模拟的太阳抛抛槽场中,通过分散和集中的MPC评估拟议的策略。最后,还使用这些案例研究给出关于可扩展性的结果。

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