质子交换膜燃料电池
氢
电流(流体)
材料科学
膜
体积流量
电流密度
膜电极组件
大气温度范围
渡线
化学工程
聚合物电解质膜电解
磁导率
入口
催化作用
分析化学(期刊)
工作温度
蒸汽重整
热扩散率
扩散
化学
航程(航空)
电极
膜透性
电解水
制氢
温度测量
复合数
水运
流量(数学)
热交换器
作者
Dingding Ye,Jian Huang,Qiang Liao,Liang Zhang,Liulin Que,Wenjie Ding,Xun Zhu,Jun Li
标识
DOI:10.60893/figshare.apl.c.8222146
摘要
Hydrogen crossover critically affects the safety and efficiency of proton exchange membrane (PEM) water electrolyzers. This study fabricated a composite membrane embedded with temperature sensors to enable in-situ monitoring of membrane electrode assembly (MEA) temperature. The results show that rising current density elevates membrane temperature beyond equilibrium, thereby intensifying hydrogen crossover. Lower inlet flow rates further aggravate crossover owing to reduced heat dissipation. Mechanistic analysis reveals that temperature elevation enlarges the membrane permeability and raises dissolved hydrogen concentration in the catalyst layer, both of which promote hydrogen crossover. Importantly, the H2 diffusion coefficient in PEM exhibits a linear dependence on temperature in the range of 50-90℃. Increasing inlet water flow rate partially mitigates this effect, while Pd-doped composite membranes achieve a significant reduction through combined physical and chemical mechanisms. These findings highlight the importance of thermal management and hydrogen removal strategies for ensuring the safe operation of PEM electrolyzers under high current density.
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