首页> 外文会议>ASME international fuel cell science, engineering, and technology conference >THE ANALYSIS OF MASS TRANSPORT PHENOMENA IN MICRO POROUS LAYER FOR HIGH CURRENT DENSITY OPERATION IN PEMFC FOR AUTOMOBILE APPLICATION
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THE ANALYSIS OF MASS TRANSPORT PHENOMENA IN MICRO POROUS LAYER FOR HIGH CURRENT DENSITY OPERATION IN PEMFC FOR AUTOMOBILE APPLICATION

机译:用于汽车应用PEMFC中高电流密度运算的微多孔层中的质量传输现象分析

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Cost reduction is the most important issue for commercialization of Fuel Cell Electric Vehicle (FCEV). High current density operation is one of the solutions for it. In order to realize high current density operation, it is necessary to reduce both of electron and oxygen transport resistance in the porous materials such as gas diffusion layer (GDL) and micro porous layer (MPL). However, the impacts of MPL micro-structure on their properties are not fully understood yet compared with GDL because of the necessity of higher spatial resolution. In previous study, the transport analysis on the micro-structure which were visualized by Nano X-ray CT and FIB-SEM were conducted for it. However, it was not enough to understand both of the electron and oxygen transport phenomena and find the dominant factors, because there is no study which focused on the comparison of the numerical and experimental results on both of the electron and oxygen transport. In this study, the comprehensive analysis on both of electron and oxygen transport phenomena in GDL and MPL was conducted with experimental and numerical study based on the three-dimensional (3D) micro structure data. As a result, it was found that pore structure, such as a local porosity and/or tortuosity significantly affected the oxygen transport phenomena. On the other hands, especially in the case of electron transport phenomena in MPL, our results suggested that the dominant factor is not the solid structure such as local solid fraction and/or tortuosity but the contact resistance between carbon particles. This fact revealed that it is effective way to reduce the contact resistance between carbon particles and/or the number of contact points in unit length of a transport path in order to improve electrical transport of MPL.
机译:降低成本是燃料电池电动车(FCEV)商业化最重要的问题。高电流密度操作是其中的一个解决方案。为了实现高电流密度操作,有必要在多孔材料中减少电子和氧气传输阻力,例如气体扩散层(GDL)和微多孔层(MPL)。然而,MPL微结构对其性质的影响尚未完全理解,并且由于需要更高的空间分辨率,因此与GDL进行比较。在先前的研究中,对由纳米X射线CT和FIB-SEM进行可视化的微结构的运输分析。然而,了解电子和氧气传输现象并找出主导因素是不够的,因为没有任何研究,其专注于对电子和氧气两者的数值和实验结果的比较。在该研究中,基于三维(3D)微结构数据的实验和数值研究进行了GDL和MPL中的电子和氧传输现象的综合分析。结果,发现孔隙结构,例如局部孔隙率和/或曲折性显着影响氧气运输现象。另一方面,特别是在MPL中的电子传输现象的情况下,我们的结果表明主导因子不是固体结构,例如局部固体级分和/或粉碎,而是碳颗粒之间的接触电阻。这一事实表明,降低碳颗粒和/或运输路径单位长度的接触点数之间的接触电阻是有效的方法,以改善MPL的电气传输。

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