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Model-based analysis for the thermal management of open-cathode proton exchange membrane fuel cell systems concerning efficiency and stability

机译:基于模型的开放式阴极质子交换膜燃料电池系统热效管理分析,涉及效率和稳定性

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摘要

In this work we present a dynamic, control-oriented, concentrated parameter model of an open-cathode proton exchange membrane fuel cell system for the study of stability and efficiency improvement with respect to thermal management. The system model consists of two dynamic states which are the fuel cell temperature and the liquid water saturation in the cathode catalyst layer. The control action of the system is the inlet air velocity of the cathode air flow manifold, set by the cooling fan, and the system output is the stack voltage. From the model we derive the equilibrium points and eigenvalues within a set of operating conditions and subsequently discuss stability and the possibility of efficiency improvement. The model confirms the existence of a temperature-dependent maximum power in the moderate temperature region. The stability analysis shows that the maximum power line decomposes the phase plane in two parts, namely stable and unstable equilibrium points. The model is capable of predicting the temperature of a stable steady-state voltage maximum and the simulation results serve for the design of optimal thermal management strategies.
机译:在这项工作中,我们提出了一个开放式阴极质子交换膜燃料电池系统的动态,面向控制的集中参数模型,用于研究热管理方面的稳定性和效率提高。系统模型由两个动态状态组成,分别是燃料电池温度和阴极催化剂层中的液态水饱和度。系统的控制作用是由冷却风扇设置的阴极空气歧管的进气速度,系统输出是电池堆电压。从模型中,我们得出了一组运行条件下的平衡点和特征值,随后讨论了稳定性和效率提高的可能性。该模型证实了在中等温度范围内存在温度相关的最大功率。稳定性分析表明,最大电力线将相平面分解为两个部分,即稳定和不稳定的平衡点。该模型能够预测稳定的稳态电压最大值的温度,仿真结果有助于设计最佳的热管理策略。

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