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Development of a Multiscale SOFC Model and Application to Axially-Graded Electrode Design

机译:多尺度SOFC模型的开发及应用于轴向分级电极设计

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A multiscale model is built to understand how microscale characteristics and the thermo-chemical and electrochemical phenomena, occurring in the electrode and electrolyte assembly, may affect the overall performance of a solid oxide fuel cell (SOFC) stack. This study presents the integration of two-dimensional finite volume models: a 1D microscale model and a 1D (or 2D) macroscale (channel/cell) model. The new tool is calibrated against the experimental data of a short-stack via a numerical procedure aiming at the minimisation of the mean square deviation of the model from the measured data. Subsequently, the distribution of electrochemical active thickness in a state-of-the-art solid oxide cell channel is calculated; the result is limited between 3% and 7% of the electrode thickness. An axially graded electrode is studied by changing the particle radii in order to locally control the triple phase boundary length distribution along the cell channel. The performances of a four-section graded electrode is estimated in comparison to a reference non-graded electrode. The average current density increases by approximately 6% in the short-stack. If such a graded design was introduced into a state-of-the-art cogeneration system, the extrapolation of these results suggests that a power output increase up to 13.5% is attainable.
机译:建立了多尺度模型,以了解在电极和电解质组件中发生的微观特性和热化学和电化学现象是如何影响固体氧化物燃料电池(SOFC)叠层的整体性能。本研究提出了二维有限卷模型的集成:1D微观模型和1D(或2D)宏尺寸(通道/单元)模型。通过旨在通过旨在最小化模型的均线偏差从测量数据的最小化的数值过程来校准新工具。随后,计算了在最先进的固体氧化物电池通道中的电化学活性厚度的分布;结果限制在电极厚度的3%和7%之间。通过改变粒子半径来研究轴向分级电极,以便局部控制沿着电池通道的三相边界长度分布。与参考非梯度电极相比,估计四截面梯度电极的性能。短堆叠的平均电流密度增加了大约6%。如果将这种分级设计引入最先进的热电联产系统,则这些结果的外推表明,可实现高达13.5%的功率输出增加。

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