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Wiener structures for modeling and nonlinear predictive control of proton exchange membrane fuel cell

机译:用于质子交换膜燃料电池的建模和非线性预测控制的维纳结构

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The proton exchange membrane (PEM) fuel cell is a nonlinear dynamic system which cannot be precisely described and controlled using a linear model. This work has two objectives: (a) it discusses model selection for the PEM and (b) it develops two nonlinear computationally efficient model predictive control (MPC) algorithms for the PEM. Three Wiener model types of different orders of dynamics and complexity of the nonlinear steady-state block are compared. The model consisting of three dynamic blocks and a neural network with five hidden nodes is chosen. To obtain simple MPC quadratic optimization problems, a linear approximation of the model or a linear approximation of the predicted trajectory is repeatedly found. The first MPC scheme gives very good control accuracy, whereas the second MPC scheme leads to the same trajectories as those possible in the ideal MPC scheme with full online nonlinear optimization.
机译:质子交换膜(PEM)燃料电池是非线性动态系统,不能使用线性模型精确描述和控制。 这项工作有两个目标:(a)它讨论了PEM和(b)的模型选择,它为PEM开发了两个非线性计算有效的模型预测控制(MPC)算法。 比较了三种Wiener模型类型的不同动力学和非线性稳态块的复杂性。 选择由三个动态块和具有五个隐藏节点的神经网络组成的模型。 为了获得简单的MPC二次优化问题,重复找到模型的线性近似或预测轨迹的线性近似。 第一MPC方案提供了非常好的控制精度,而第二MPC方案导致与具有完整在线非线性优化的理想MPC方案中可能的轨迹相同的轨迹。

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