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Real-Time Implementation of Adaptive State Feedback Predictive Control of PEM Fuel Cell Flow Systems Using the Singular Pencil Model Method

机译:PEM燃料电池流系统自适应状态反馈预测控制的奇异笔模型方法实时实现

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摘要

This brief implements the singular pencil model and the extended Kalman filter to estimate the states and parameters simultaneously with unknown noise. Combined with state feedback predictive control, the proposed method can incorporate online estimation of both states and parameters and the controller design. Stability and observability of the states and parameters vector are analyzed. Simulation and online implementation in proton exchange membrane (PEM) fuel cell flow systems illustrate the strong disturbance rejection ability of this method. This brief uses the adaptive state feedback predictive controller, which based on the singular pencil model method, to control the cathode pressure and the proportional-integral (PI) controller to control the anode pressure. The proposed method works well to track the dynamics of the process at an idle and a given load.
机译:本简介实现了奇异的铅笔模型和扩展的卡尔曼滤波器,以在未知噪声的情况下同时估计状态和参数。结合状态反馈预测控制,该方法可以将状态和参数的在线估计与控制器设计结合在一起。分析了状态和参数向量的稳定性和可观察性。在质子交换膜(PEM)燃料电池流动系统中的仿真和在线实现说明了该方法的强大干扰抑制能力。本摘要使用基于奇异笔模型方法的自适应状态反馈预测控制器来控制阴极压力,并使用比例积分(PI)控制器来控制阳极压力。所提出的方法很好地跟踪了空闲和给定负载下的过程动态。

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