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Three-dimensional Modelling of a Microtubular SOFC: A Multiphysics Approach

机译:微管SOFC的三维建模:一种多体验方法

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Microtubular Solid Oxide Fuel Cells (μ-SOFC) are suited to a broad spectrum of applications with power demands ranging from a few watts to several hundred watts. μ-SOFC's possess inherently favourable characteristics over alternate configurations such as high thermo-mechanical stability, high volumetric power density and rapid start-up times. Computational modelling at the design level minimises cost and maximises productivity, giving critical insight into complex SOFC phenomena and their interrelationships. To date, models have been limited by oversimplified geometries, often failing to account for oxidant supply complexities, gas distribution within pores and radiative heating effects (1-3). Here, a three-dimensional Computational Fluid Dynamics (CFD) model of electrodes, electrolyte, current collectors and furnace is considered using COMSOL Multiphysics. The distribution of temperature, current density, electrical potential, pressure and gas concentrations throughout the cell are simulated. Results show good correlation with experimental data and the model is reliable for prediction of fuel cell performance within set parameters.
机译:微管固体氧化物燃料电池(μ-SOFC)适用于广泛的应用,电力需求范围从几瓦到几百瓦。 μ-SOFC具有固有的良好特性,可以通过替代配置,例如高热机稳定性,高容量功率密度和快速启动时间。设计水平的计算建模可最大限度地降低成本并最大限度地提高生产率,使复杂的SOFC现象及其相互关系的关键洞察力。迄今为止,模型受到超薄几何形状的限制,通常未能考虑氧化剂供应复杂性,孔隙内的气体分布和辐射加热效应(1-3)。这里,使用COMSOL多体学,考虑电极,电解质,集电器和炉的三维计算流体动力学(CFD)模型。模拟整个电池中的温度,电流密度,电势,压力和气体浓度的分布。结果表现出与实验数据的良好相关性,并且该模型可靠地预测设定参数内的燃料电池性能。

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