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Multi-scale solid oxide fuel cell materials modeling

机译:多尺度固体氧化物燃料电池材料建模

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Performance and degradation of fuel cell components are discussed in a multi-scale framework in this paper. Electrochemical reactions in a solid oxide fuel cell occur simultaneously as charge and gas pass through the anode, electrolyte, and cathode to produce electric power. Since fuel cells typically operate at high temperatures for long periods of time, performance degradation due to aging of the fuel cell materials should be examined. This phenomenon is treated in a multi-scale framework by considering how microstructure evolution affects the performance at the macro-scale. Mass and charge conservation equations and electrochemical kinetic equations are solved to predict the overall cell performance using the local properties calculated at the micro-scale. Separately, the microstructures assigned to the macroscopic integration points are evolved via the Cahn–Hilliard equation using an experimentally calibrated kinetic parameter. The effective properties of the evolving microstructure are obtained by homogenization and incorporated in the macro-scale calculation. The proposed model is applied to a solid oxide fuel cell system with a nickel/yttria stabilized zirconia (Ni/YSZ) cermet anode. Our model predicts performance degradation after extended hours of operation related to nickel particle coarsening and the resulting decrease in triple phase boundary (TPB) density of the anode material. The investigation of the microstructural effects on TPB density suggests that using Ni and YSZ particles of similar size may retard performance degradation due to anode aging.
机译:本文在多尺度框架中讨论了燃料电池组件的性能和降解。当电荷和气体通过阳极,电解质和阴极产生电能时,固体氧化物燃料电池中的电化学反应会同时发生。由于燃料电池通常在高温下长时间工作,因此应检查由于燃料电池材料的老化而导致的性能下降。通过考虑微观结构的演变如何影响宏观尺度的性能,可以在多尺度框架中处理这种现象。求解质量和电荷守恒方程和电化学动力学方程,以使用在微观尺度上计算的局部特性预测整体电池性能。单独地,分配给宏观积分点的微观结构通过Cahn-Hilliard方程使用实验校准的动力学参数进行演化。通过均匀化获得不断发展的微观结构的有效特性,并将其纳入宏观计算中。所提出的模型应用于带有镍/氧化钇稳定的氧化锆(Ni / YSZ)金属陶瓷阳极的固体氧化物燃料电池系统。我们的模型预测了与镍颗粒粗化有关的延长运行时间后的性能下降,以及阳极材料的三相边界(TPB)密度降低的结果。对TPB密度的微观结构影响的研究表明,使用尺寸相似的Ni和YSZ颗粒可能会阻止由于阳极老化而导致的性能下降。

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