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Non-isothermal multi-dimensional direct methanol fuel cell model with micro-porous layers mitigating water/methanol crossover

机译:具有减少水/甲醇交叉的微孔层的非等温多维直接甲醇燃料电池模型

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摘要

A two-phase three-dimensional direct methanol fuel cell (DMFC) model with the capability of saturation jump is developed in order to investigate the effect of micro-porous layers (MPL) on the water/methanol crossover in a DMFC. It is found that hydrophobic MPL on the cathode side helps cathode catalyst layer reserve water whereas hydrophobic MPL on the anode side blocks liquid flow to the cathode side, which effectively reduces water/methanol crossover. As the water transport in a DMFC occurs in two-phase, energy equation considering the heat-pipe effect with latent heat is solved together. Calculation result revealed thermal conductivity of gas diffusion layer has a strong influence on both temperature and water transport. Finally, a large-scale simulation of 28 cm~2 cell is conducted to examine current density and fuel concentration distribution.
机译:为了研究微孔层(MPL)对DMFC中水/甲醇交叉的影响,建立了具有饱和跃迁能力的两相三维直接甲醇燃料电池(DMFC)模型。发现在阴极侧的疏水性MPL有助于阴极催化剂层储备水,而在阳极侧的疏水性MPL阻止液体流向阴极侧,这有效地减少了水/甲醇的交换。由于DMFC中的水传输发生在两相中,因此一起考虑了带有潜热的热管效应的能量方程。计算结果表明,气体扩散层的导热系数对温度和水的传输都有很大的影响。最后,对28 cm〜2电池进行大规模模拟,以检查电流密度和燃料浓度分布。

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