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首页> 外文期刊>IEEE Transactions on Industrial Electronics >Robust Model-Based Fault Diagnosis for PEM Fuel Cell Air-Feed System
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Robust Model-Based Fault Diagnosis for PEM Fuel Cell Air-Feed System

机译:PEM燃料电池供气系统基于模型的鲁棒故障诊断

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摘要

In this paper, the design of a nonlinear observer-based fault diagnosis approach for polymer electrolyte membrane (PEM) fuel cell air-feed systems is presented, taking into account a fault scenario of sudden air leak in the air supply manifold. Based on a simplified nonlinear model proposed in the literature, a modified super-twisting (ST) sliding mode algorithm is employed to the observer design. The proposed ST observer can estimate not only the system states, but also the fault signal. Then, the residual signal is computed online from comparisons between the oxygen excess ratio obtained from the system model and the observer system, respectively. Equivalent output error injection using the residual signal is able to reconstruct the fault signal, which is critical in both fuel cell control design and fault detection. Finally, the proposed observer-based fault diagnosis approach is implemented on the MATLAB/Simulink environment in order to verify its effectiveness and robustness in the presence of load variation.
机译:本文提出了一种基于非线性观测器的高分子电解质膜(PEM)燃料电池供气系统故障诊断方法的设计,其中考虑了进气歧管中突然漏气的故障情况。在文献中提出的简化非线性模型的基础上,将改进的超扭曲(ST)滑模算法用于观察者设计。提出的ST观测器不仅可以估计系统状态,还可以估计故障信号。然后,分别根据从系统模型和观察者系统获得的氧气过量比率进行比较,在线计算残差信号。使用残差信号的等效输出误差注入能够重建故障信号,这对于燃料电池控制设计和故障检测均至关重要。最后,在MATLAB / Simulink环境中实现了基于观察者的故障诊断方法,以验证其在负载变化情况下的有效性和鲁棒性。

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