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Coordinating multiple model predictive controllers for multi-reservoir management

机译:协调用于多储层管理的多种模型预测控制器

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Modeling and coordinated control of large interconnected multi-purpose reservoirs spread across a country is usually challenging. These systems are generally characterized by coupled water quantity and quality variables and multiple control objectives. Efficient control of these systems can be achieved through appropriate and accurate modeling of reservoir dynamics in tandem with an accurate weather forecasting system. In these systems, the process variables are influenced by various physical and chemical phenomena occurring at different time scales. Also the water quality and quantity control objectives may be in conflict posing a difficult control problem. For such large-scale systems, Model Predictive Control (MPC) is an attractive control strategy and can be implemented in centralized or decentralized configurations. However, it has been shown that to achieve a flexible and reliable control structure with optimum overall system operations, individual decentralized controllers have to be coordinated and driven towards the performance of a centralized controller. In this work, two coordination strategies that have been reported in the literature viz. cooperation based coordination and price driven coordination are evaluated for controlling a network of reservoirs. These algorithms are evaluated on the basis of their robustness, stability and performance in comparison to that of a centralized MPC implementation. Ability to deal with a variety of model uncertainties and the coordination between the controllers within and across a hierarchy are important aspects that have been evaluated.
机译:遍布一个国家的大型互连多用途水库的建模和协调控制通常具有挑战性。这些系统通常以耦合的水量和水质变量以及多个控制目标为特征。这些系统的有效控制可通过对储层动力学进行适当而准确的建模,并与精确的天气预报系统相结合来实现。在这些系统中,过程变量受在不同时间范围内发生的各种物理和化学现象的影响。同样,水质和水量控制目标可能会冲突,从而带来一个困难的控制问题。对于这样的大型系统,模型预测控制(MPC)是一种有吸引力的控制策略,可以在集中式或分散式配置中实施。然而,已经显示出,为了实现具有最佳的整体系统操作的灵活且可靠的控制结构,必须对各个分散的控制器进行协调并驱动其朝着中央控制器的性能发展。在这项工作中,文献中已经报道了两种协调策略。对基于合作的协调和价格驱动的协调进行了评估,以控制水库网络。与集中式MPC实现相比,这些算法是基于其健壮性,稳定性和性能进行评估的。处理各种模型不确定性的能力以及层次结构内和跨层次结构的控制器之间的协调是已评估的重要方面。

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