基于Actor Critic学习控制的质子交换膜燃料电池水管理

Qiujian Chen, Rong Long, Liyan Zhang
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引用次数: 0

摘要

针对水管理系统建模的复杂性和在线测量PEM燃料电池堆内湿度的困难,提出了一种行动者批判学习控制器,该控制器利用可用的测量值即堆电压和当前采样时间与上次采样时间之间的堆电压差。该方法采用最小二乘时间差分法逼近值函数,采用局部线性回归法逼近参与者模型和过程模型。仿真结果表明,行动者临界学习控制在不同工况下都能保持燃料电池堆内部的水平衡,并使堆电压达到最大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Water Management in Proton Exchange Membrane Fuel Cell Based on Actor Critic Learning Control
Due to the complexity of modeling water management system and difficulties of online measuring humidity inside the PEM fuel cell stack, the actor critic learning controller is proposed by using the available measurements which are stack voltage and the difference of stack voltage between current sample time and last sample time. In this method approximation of value function is based on least squares temporal-difference, and approximations of actor model and process model are based on local linear regression. Simulation results show that actor critic learning control can maintain water balance inside the fuel cell stack and achieve the maximum the stack voltage under the different operating conditions.
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