...
首页> 外文期刊>Electrochimica Acta >Mathematical modeling of the coupled transport and electrochemical reactions in solid oxide steam electrolyzer for hydrogen production
【24h】

Mathematical modeling of the coupled transport and electrochemical reactions in solid oxide steam electrolyzer for hydrogen production

机译:固体氧化物蒸汽电解槽制氢过程中运输和电化学反应耦合的数学模型

获取原文
获取原文并翻译 | 示例

摘要

A mathematical model was developed to simulate the coupled transport/electrochemical reaction phenomena in a solid oxide steam electrolyzer (SOSE) at the micro-scale level. Ohm's law, dusty gas model (DGM), Darcy's law, and the generalized Butler Volmer equation were employed to determine the transport of electronic/ionic charges and gas species as well as the electrochemical reactions. Parametric analyses were performed to investigate the effects of operating parameters and micro-structural parameters on SOSE potential. The results substantiated the fact that SOSE potential could be effectively decreased by increasing the operating temperature. In addition, higher steam molar fraction would enhance the operation of SOSE with lower potential. The effect of particle sizes on SOSE potential was studied with due consideration on the SOSE activation and concentration overpotentials. Optimal particle sizes that could minimize the SOSE potential were obtained. It was also found that decreasing electrode porosity could monotonically decrease the SOSE potential. Besides, optimal values of volumetric fraction of electronic particles were found to minimize electrode total overpotentials. In order to optimize electrode microstructure to minimize SOSE electricity consumption, the concept of "functionally graded materials (FGM)" was introduced to lower the SOSE potential. The advanced design of particle size graded SOSE was found effective for minimizing electrical energy consumption resulting in efficient SOSE hydrogen production. The micro-scale model was capable of predicting SOSE hydrogen production performance and would be a useful tool for design optimization.
机译:建立了数学模型以模拟固体氧化物蒸汽电解器(SOSE)中微观尺度的耦合运输/电化学反应现象。使用欧姆定律,尘埃气体模型(DGM),达西定律和广义Butler Volmer方程来确定电子/离子电荷和气体种类的传输以及电化学反应。进行了参数分析,以研究操作参数和微结构参数对SOSE电位的影响。结果证实了通过增加工作温度可以有效降低SOSE电位的事实。另外,较高的蒸汽摩尔分数将以较低的电位增强SOSE的操作。研究了粒径对SOSE电位的影响,同时适当考虑了SOSE活化和浓度超电势。获得了可以最小化SOSE电位的最佳粒径。还发现降低电极孔隙率可以单调降低SOSE电势。此外,发现电子粒子的体积分数的最佳值可最大程度地减少电极的总超电势。为了优化电极微观结构以最小化SOSE的电耗,引入了“功能梯度材料(FGM)”的概念以降低SOSE的电势。发现粒度分级SOSE的先进设计可有效减少电能消耗,从而有效地生产SOSE氢。微型模型能够预测SOSE制氢性能,并将成为设计优化的有用工具。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号