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Complementary cooperation dynamic characteristics analysis and modeling based on multiple-input multiple-output methodology combined with nonlinear control strategy for a polymer electrolyte membrane fuel cell

机译:基于多输入多输出方法与非线性控制策略的高分子电解质膜燃料电池互补协同动态特性分析与建模

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This research proposes a new dynamic nonlinear model and its nonlinear control strategy for polymer electrolyte membrane fuel cell (PEMFC) by considering all possible gas pressures and water effects. In this research, in order to prolong the PEMFC stack life, the nonlinear controller based on the proposed model is properly designed by controlling gas pressures to the reference values. Specifically, our proposed dynamic PEMFC model significantly adapts the multiple-input multiple-output (MIMO) system that can directly utilize the feedback linearization for the nonlinear control. All possible water effects are considered for optimal designing of the dynamic PEMFC model. In the control design, gas pressures in the anode and cathode, the relative humidity, as well as the fuel cell voltage are defined as the control objectives to minimize the pressure difference between the anode and cathode, and control the humidity and the fuel cell voltage. Based on these control objectives and the proposed dynamic model information, the details of the proposed control design scheme in the PEMFC model were described in this research. A transient MATLAB/SIMULINK simulation and experimental results were performed and gathered to validate the proposed PEMFC model with the nonlinear controller being approximately average two times more effective in terms of the overshoot suppressing in the pressure control during the transients. According to these results, they show the superiority of the proposed dynamic PEMFC model as a good platform in order to design a nonlinear controller using the feedback linearization for having a better transient performance of the PEMFC compared to the linear controller. (C) 2019 Elsevier Ltd. All rights reserved.
机译:该研究通过考虑所有可能的气压和水效应,为聚合物电解质膜燃料电池(PEMFC)提出了一种新的动态非线性模型及其非线性控制策略。在这项研究中,为了延长PEMFC的堆叠寿命,通过将气压控制在参考值以内,适当地设计了基于所提出模型的非线性控制器。具体而言,我们提出的动态PEMFC模型极大地适应了可以直接利用反馈线性化进行非线性控制的多输入多输出(MIMO)系统。动态PEMFC模型的最佳设计考虑了所有可能的水影响。在控制设计中,将阳极和阴极中的气压,相对湿度以及燃料电池电压定义为控制目标,以最大程度地减小阳极和阴极之间的压力差,并控制湿度和燃料电池电压。基于这些控制目标和提出的动态模型信息,本研究描述了在PEMFC模型中提出的控制设计方案的细节。进行了一个瞬态MATLAB / SIMULINK仿真和实验结果,以验证所提出的PEMFC模型,其中非线性控制器在瞬态过程中抑制压力控制的过冲方面大约平均有效两倍。根据这些结果,他们展示了所提出的动态PEMFC模型作为一个良好平台的优越性,以便设计一个使用反馈线性化的非线性控制器,从而与线性控制器相比具有更好的PEMFC瞬态性能。 (C)2019 Elsevier Ltd.保留所有权利。

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