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Microscale Investigation of the Transport Characteristics in Surface-Treated Gas Diffusion Layers with Gradient Porosities for Fuel Cell Applications

机译:微观调查燃料电池应用梯度孔隙率的表面处理过的气体扩散层中的传输特性

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In the present study, microscale transport phenomena in gas diffusion layers (GDLs) with gradient porosities are investigated statistically. A series of GDLs are randomly generated with linear and nonlinear gradient porosities at a 95% confidence level to reflect the heterogeneous microstructures. Straight-cylindrical carbon fibers with a uniform diameter are randomly arranged layer-by-layer and then treated with various polytetrafluoroethylene (PTFE) loadings. Furthermore, the reactant transport phenomena throughout the GDLs are simulated using lattice Boltzmann method (LBM). Then, the corresponding mass transport characteristics (i.e., permeability, tortuosity, and effective diffusion coefficient) are predicted in a series of GDL samples. The predicted data reveal an inverse relationship between permeability and PTFE loading. Moreover, the results show that GDLs with gradient porosities are more favourable to the reactant gas diffusion, leading to larger permeability than those of GDLs with uniform porosities. Besides, electrical and thermal conductivities of GDLs are computed in both in-plane and through-plane directions, and show good agreement with published experimental data. These statistical results show that the microscopic transport characteristics of PTFE-treated GDLs with gradient porosities are strongly affected by porosity distribution and PTFE loading. The proposed model can be utilized to optimize GDL structures and investigate the effect of PTFE on microscale transport characteristics of GDLs.
机译:在本研究中,在统计上研究气体扩散层(GDL)的微观传输现象(GDL)。在95%置信水平下用线性和非线性梯度孔隙​​率随机产生一系列GDL,以反映异质微结构。具有均匀直径的直圆柱形碳纤维是随机布置的层,然后用各种聚四氟乙烯(PTFE)载荷处理。此外,使用晶格Boltzmann方法(LBM)模拟整个GDL的反应物传输现象。然后,在一系列GDL样品中预测相应的质量传递特性(即渗透性,曲折性和有效扩散系数)。预测数据揭示了渗透率和PTFE负载之间的反向关系。此外,结果表明,具有梯度孔隙率的GDL对反应气体扩散更有利,导致比具有均匀孔隙的GDL的渗透性更大。此外,GDL的电气和热导体在平面内和穿过平面方向上计算,并与已发表的实验数据显示出良好的一致性。这些统计结果表明,具有梯度孔隙率的PTFE处理的GDL的微观传输特性受孔隙率分布和PTFE载荷的强烈影响。所提出的模型可用于优化GDL结构并研究PTFE对GDLS微观传输特性的影响。

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