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Towards the Design-Led Optimization of Solid Oxide Fuel Cell Electrodes

机译:走向设计主导的固体氧化物燃料电池电极优化

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A one-dimensional numerical model of a nickel-infiltrated gadolinium-doped ceria (Ni-GDC) electrode has been developed to investigate the effects of electrode microstructure on performance. Electrode microstructural information was obtained with focused-ion beam tomography and microstructural parameters were quantified. These have been used to estimate the effective transport coefficients and the electrochemical reaction rate in the electrode. GDC was considered as a mixed ionic and electronic conductor and hence the electrochemical reaction was assumed to occur on the GDC-pore contact surface, i.e. double-phase boundaries (DPBs). Sensitivity analysis was conducted to investigate the effect of electrode microstructure on both transport properties and electrochemical activity. The developed model offers a basis to understand the electrode-microstructure relationships and to further optimize the electrode microstructures.
机译:为了研究电极微结构对性能的影响,建立了镍浸渗g掺杂二氧化铈(Ni-GDC)电极的一维数值模型。通过聚焦离子束断层扫描获得电极的微结构信息,并对微结构参数进行定量。这些已被用于估计电极中的有效传输系数和电化学反应速率。 GDC被认为是离子和电子的混合导体,因此,电化学反应被假定为发生在GDC孔接触表面,即双相边界(DPB)。进行敏感性分析以研究电极微观结构对传输性质和电化学活性的影响。所开发的模型为理解电极与微观结构的关系以及进一步优化电极的微观结构提供了基础。

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