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Parametric and transient analysis of non-isothermal, planar solid oxide fuel cells

机译:非等温平面固体氧化物燃料电池的参数和瞬态分析

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A multidimensional, model of non-isothermal planar solid oxide fuel cells (SOFCs) including detailed coupled mass and charge transport phenomena, has been developed. The dusty-gas model has been used, in this a comprehensive SOFC model, and has been explicitly written/constructed, for the first time in the COMSOL multiphysics modelling framework to describe mass transport in the porous electrode and detailed charge conservation equations have been taken into account. As we have shown in a recent publication [9] the incorporation of the dusty-gas model results in more accurate predictions of the SOFC behaviour compared to mass transport models based on Fick's law or Stefan-Maxwell multi-component diffusion. Our model allows prediction of the species composition profiles, temperature profiles, electronic and ionic voltage and current density distributions, and polarisation curves in a single cell. SOFC dynamics have also been considered including responses to step changes in the operating conditions. The model is implemented in two-spatial dimensions, however, the underlying theory is independent of the geometry used. Extensive parametric analysis has been performed and the corresponding SOFC behaviour has been analysed through the resulting polarisation curves. It is shown that SOFCs exhibit higher power outputs at increased operating temperatures and pressures. It was also found that the electrodes' porosity and tortuosity have a smaller effect on power output. Furthermore, step changes in the inlet temperatures were found to induce slower dynamic behaviours than step changes in the operating voltage.
机译:已经开发了多维模型的非等温平面固体氧化物燃料电池(SOFC),包括详细的质量和电荷传输耦合现象。在此综合的SOFC模型中使用了粉尘气体模型,并且已在COMSOL多物理场建模框架中首次明确地编写/构造了粉尘气体模型,以描述多孔电极中的质量传输,并采用了详细的电荷守恒方程考虑在内。正如我们在最近的出版物[9]中所显示的,与基于菲克定律或斯特凡-麦克斯韦多组分扩散的传质模型相比,粉尘气体模型的引入可以更准确地预测SOFC行为。我们的模型可以预测单个单元中的物种组成,温度,电子和离子电压和电流密度分布以及极化曲线。还考虑了SOFC动态,包括对运行条件中阶跃变化的响应。该模型在二维空间中实现,但是基础理论与所使用的几何形状无关。已进行了广泛的参数分析,并通过生成的极化曲线分析了相应的SOFC行为。结果表明,SOFC在更高的工作温度和压力下显示出更高的功率输出。还发现电极的孔隙率和曲折度对功率输出的影响较小。此外,发现入口温度的阶跃变化比工作电压的阶跃变化引起的动态行为更慢。

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