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Percolation theory in SOFC composite electrodes: Effects of porosity and particle size distribution on effective properties

机译:SOFC复合电极中的渗透理论:孔隙率和粒径分布对有效性能的影响

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摘要

A percolation model, accounting for polydispersion of powders and presence of pore formers (i.e. porosity), is presented to predict effective properties of composite electrodes for solid oxide fuel cells, such as the three-phase boundary length and the mean hydraulic radius. Porosity affects both numbers of contacts (so probabilities of connection) and number of particles per unit volume. Both these effects, together with granulometric distribution, are accounted for the estimation of effective properties. As a consequence, the theory can predict numbers of contacts, coordination numbers and therefore effective properties of the electrode for multicomponent polydisperse mixtures.Model simulations show that the three-phase boundary length sharply decreases as porosity increases while the effects of polydispersion of powders are less pronounced, although significant, suggesting that these features should be considered in SOFC electrode models.
机译:提出了一种渗流模型,该模型考虑了粉末的多分散性和成孔剂的存在(即孔隙度),以预测复合电极对固体氧化物燃料电池的有效性能,例如三相边界长度和平均水力半径。孔隙率会影响接触的数量(即连接的概率)和单位体积中的粒子数量。这些影响以及粒度分布都可以用来估算有效特性。结果是,该理论可以预测多组分多分散混合物的接触数,配位数以及电极的有效性能。模型仿真表明,随着孔隙率的增加,三相边界长度急剧减小,而粉末的多分散影响较小显着(尽管很重要),表明在SOFC电极模型中应考虑这些特征。

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