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A novel (ex situ) method to quantify oxygen diffusion coefficient of polymer fuel cells backing and catalyst layers

机译:一种新的(非原位)定量聚合物燃料电池背衬和催化剂层的氧扩散系数的方法

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Limiting current density of oxygen reduction reaction in polymer electrolyte fuel cells is determined by several mass transport resistances that lower the concentration of oxygen on the catalyst active site. Among them, diffusion across porous media plays a significant role. Despite the extensive experimental activity documented in PEMFC literature, only few efforts have been dedicated to the measurement of the effective transport properties in porous layers. In the present work, a methodology for ex situ measurement of the effective diffusion coefficient and Knudsen radius of porous layers for polymer electrolyte fuel cells (gas diffusion layer, micro porous layer and catalyst layer) is described and applied to high temperature polymer fuel cells State of Art materials. Regression of the measured quantities by means of a quasi 2D physical model is performed to quantify the Knudsen effect, which is reported to account, respectively, for 30% and 50% of the mass transport resistance in micro porous layer and catalyst layer. On the other side, the model reveals that pressure gradient consequent to permeation in porous layers of high temperature polymer fuel cells has a negligible effect on oxygen concentration in relevant operating conditions. (C) 2016 Elsevier B.V. All rights reserved.
机译:聚合物电解质燃料电池中氧还原反应的极限电流密度由降低催化剂活性位点上氧浓度的几种传质阻力确定。其中,在多孔介质中的扩散起着重要作用。尽管PEMFC文献中记录了广泛的实验活动,但只有很少的努力致力于测量多孔层中的有效传输性能。在本工作中,描述了一种用于非原位测量聚合物电解质燃料电池多孔层(气体扩散层,微孔层和催化剂层)的有效扩散系数和克努森半径的方法,并将其应用于高温聚合物燃料电池。艺术材料。借助于准二维物理模型对测量量进行回归以量化克努森效应,据报道该克努森效应分别占微孔层和催化剂层中传质阻力的30%和50%。另一方面,该模型表明,在相关操作条件下,高温聚合物燃料电池的多孔层中渗透导致的压力梯度对氧气浓度的影响可忽略不计。 (C)2016 Elsevier B.V.保留所有权利。

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