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Transport in Proton Exchange Membranes for Fuel Cell Applications—A Systematic Non-Equilibrium Approach

机译:用于燃料电池应用的质子交换膜的运输 - 一种系统的非平衡方法

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We hypothesize that the properties of proton-exchange membranes for fuel cell applications cannot be described unambiguously unless interface effects are taken into account. In order to prove this, we first develop a thermodynamically consistent description of the transport properties in the membranes, both for a homogeneous membrane and for a homogeneous membrane with two surface layers in contact with the electrodes or holder material. For each subsystem, homogeneous membrane, and the two surface layers, we limit ourselves to four parameters as the system as a whole is considered to be isothermal. We subsequently analyze the experimental results on some standard membranes that have appeared in the literature and analyze these using the two different descriptions. This analysis yields relatively well-defined values for the homogeneous membrane parameters and estimates for those of the surface layers and hence supports our hypothesis. As demonstrated, the method used here allows for a critical evaluation of the literature values. Moreover, it allows optimization of stacked transport systems such as proton-exchange membrane fuel cell units where interfacial layers, such as that between the catalyst and membrane, are taken into account systematically.
机译:我们假设除非考虑界面效应,否则不能毫不含糊地描述质子交换膜的性质。为了证明这一点,我们首先制定用于膜中的膜中的传输性质的热力学,以及用于均匀膜的膜和具有两个表面层与电极或保持器材料接触的均匀膜的均匀膜。对于每个子系统,均匀膜和两个表面层,我们将自己限制为四个参数,因为整个系统被认为是等温。我们随后分析了在文献中出现的一些标准膜的实验结果,并使用两个不同的描述分析这些标准膜。该分析产生均匀膜参数的相对明确的值,以及表面层的估计值,因此支持我们的假设。如所示,这里使用的方法允许对文献值进行关键评估。此外,它允许优化堆叠的运输系统,例如质子交换膜燃料电池单元,其中界面层如催化剂和膜之间的界面层,被系统地考虑。

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