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Enhancing SOFC-Stack Performance by Model-based Adaptation of Cathode Gas Transport Conditions

机译:通过基于模型的阴极气体输送条件的适应性提高SOFC堆叠性能

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High performance anode-supported cells (ASC), contacted in a planar stack by metallic interconnectors (MIC), undergo a significant power density reduction. Performance limiting factors originating from the MIC-design were identified by detailed experimental data analysis and via a straightforward FEM simulation. Conclusively, gas diffusion polarisation contributes close to the sum of all ohmic losses to the overall polarization, both controlling stack performance. Based on this knowledge, a multiphysic-FEM-model was developed, considering coupled ohmic, gas diffusion and nonlinear polarization losses in the electrodes and ohmic losses in the electrolyte. Consequential ASC-performance depends over a broad range of operating conditions on i) an optimal MIC-design and ii) a well-chosen cathode thickness increases the overall power output.
机译:通过金属互连器(MIC)在平面堆叠中接触高性能阳极支撑的电池(ASC),经历显着的功率密度降低。通过详细的实验数据分析和通过直接的有限元模拟来识别来自MIC设计的性能限制因素。结论,气体扩散极化耦合涉及控制堆叠性能的整体极化的所有欧姆损耗的总和。基于这种知识,开发了一种多体 - FEM模型,考虑到电解质中电极和欧姆损耗的耦合欧姆,气体扩散和非线性偏振损耗。因此,ASC - 性能取决于I)上的广泛的操作条件)最佳的MIC设计和II)良好选择的阴极厚度增加了整体功率输出。

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