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An electrochemical model of a solid oxide steam electrolyzer for hydrogen production

机译:固体氧化氢蒸汽电解槽用于氢气生产的电化学模型

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An electrochemical model was developed to simulate the J-V characteristics of a solid oxide steam electrolyzer (SOSE) used for hydrogen production. Activation, concentration, and ohmic overpotentials were considered as the main factors for voltage loss. The Butler-Volmer equation, Fick's model, and Ohm's law were applied to determine the overpotentials of a SOSE cell. The simulation results were compared with experimental data from the literature and good agreement was obtained. Additionally, parametric modeling analyses were conducted to study how the operating temperature and gas composition affected the electrical characteristics. It was found that the voltage loss could be reduced by increasing the operating temperature and steam molar fraction. It was also observed that an anode-supported SOSE cell exhibited a higher hydrogen production efficiency than electrolyte-supported and cathode-supported cells. The electrochemical model can be used to perform further analysis in order to further understand the principles of SOSE hydrogen production, and to optimize SOSE cell and system designs.
机译:开发了一种电化学模型以模拟用于氢气产生的固体氧化物蒸汽电解槽(SOSE)的J-V特性。激活,浓度和欧姆过电位被认为是电压损失的主要因素。采用Butler-Volmer方程,Fick的模型和欧姆定律来确定Sose细胞的过电。将模拟结果与来自文献的实验数据进行比较,并获得了良好的协议。另外,进行参数化建模分析以研究操作温度和气体组合物如何影响电气特性。发现通过增加工作温度和蒸汽摩尔分数可以降低电压损失。还观察到阳极负载的Sose细胞表现出比电解质负载和阴极负载的细胞更高的氢生产效率。电化学模型可用于进行进一步的分析,以进一步了解Sose氢气产生的原理,并优化Sose电池和系统设计。

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