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A numerical study on the heat and mass transfer characteristics of metal-supported solid oxide fuel cells

机译:金属负载固体氧化物燃料电池传热传质特性的数值研究

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The heat and mass transfer characteristics of solid oxide fuel cells (SOFCs) need to be considered when designing SOFCs because they heavily influence the performance and durability of the cells. The physical property models, the governing equations (mass, momentum, energy and species balance equations) and the electrochemical reaction models were calculated simultaneously in a 3-dimensional SOFC simulation. The current density-voltage (I-V) curves measured experimentally from a single SOFC were compared with the simulation data for code validation purposes. The error between the experimental data and the numerical results was less than 5% at operating temperatures from 700 ~°C to 850 ~°C. The current density and the mass transfer rate of an anode-supported SOFC were compared with those of a metal-supported SOFC. The metal-supported SOFC had a 17% lower average current density than the anode-supported SOFC because of the bonding layer, but it showed better thermal stability than the anode-supported SOFC because of its more uniform current density distribution. The current density, temperature and pressure drop of the metal-supported SOFC were investigated for several channel designs. A high current density was observed near the hydrogen inlet and at the intersection of the hydrogen and air channels. However, there was a low current density under the rib and at the cell edge because of an insufficient reactant diffusion flux. When the proper channel design was applied to the metal-supported SOFC, the average current density was increased by 45%.
机译:设计SOFC时需要考虑固体氧化物燃料电池(SOFC)的传热和传质特性,因为它们会严重影响电池的性能和耐用性。在3维SOFC模拟中同时计算了物理性质模型,控制方程(质量,动量,能量和物质平衡方程)和电化学反应模型。从单一SOFC实验测得的电流密度-电压(I-V)曲线与仿真数据进行了比较,以进行代码验证。在700°C至850°C的工作温度下,实验数据与数值结果之间的误差小于5%。将阳极负载的SOFC的电流密度和传质速率与金属负载的SOFC进行比较。由于键合层的原因,金属负载的SOFC的平均电流密度比阳极负载的SOFC低17%,但由于电流密度分布更均匀,因此它显示出比阳极负载的SOFC更好的热稳定性。对于几种通道设计,研究了金属负载的SOFC的电流密度,温度和压降。在氢气入口附近以及氢气和空气通道的交叉处观察到高电流密度。但是,由于反应物扩散通量不足,肋骨下方和电池边缘的电流密度较低。当将适当的通道设计应用于金属负载的SOFC时,平均电流密度增加了45%。

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