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A Numerical Investigation of the Thermal Stresses of a Planar Solid Oxide Fuel Cell

机译:平面固体氧化物燃料电池热应力的数值研究

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摘要

A typical operating temperature of a solid oxide fuel cell (SOFC) is quite high above 750 °C and affects the thermomechanical behavior of the cell. Thermal stresses may cause microstructural instability and sub-critical cracking. Therefore, a joint analysis by the computational fluid dynamics (CFD) and computational structural mechanics based on the finite element method (FEM) was carried out to analyze thermal stresses in a planar SOFC and to predict potential failure locations in the cell. A full numerical model was based on the coupling of thermo-fluid model with the thermo-mechanical model. Based on a temperature distribution from the thermo-fluid model, stress distribution including the von Mises stress, shear stress as well as the operating principal stress were derived in the thermo-mechanical model. The FEM calculations were performed under different working conditions of the planar SOFC. The highest total stress was noticed at the lower operating voltage of 0.3 V, while the lowest total stress was determined at the voltage of 0.7 V. The obtained stress distributions allowed a better understanding of details of internal processes occurring within the SOFC and provided helpful guidance in the optimization of a new SOFC design.
机译:固体氧化物燃料电池(SOFC)的典型工作温度在750°C以上时会很高,并会影响电池的热机械性能。热应力可能会导致微结构不稳定性和亚临界裂纹。因此,通过基于有限元方法(FEM)的计算流体力学(CFD)和计算结构力学进行了联合分析,以分析平面SOFC中的热应力并预测电池中的潜在失效位置。一个完整的数值模型是基于热流体模型与热力学模型的耦合。根据热流体模型的温度分布,在热力学模型中得出包括冯·米塞斯应力,剪切应力以及工作主应力在内的应力分布。有限元计算是在平面SOFC的不同工作条件下进行的。在较低的0.3 V工作电压下发现最高总应力,而在0.7 V的电压下确定最低的总应力。所获得的应力分布有助于更好地了解SOFC内部发生的内部过程的细节,并提供有用的指导在优化新的SOFC设计中。

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