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Electrode Reoxidation in Solid-Oxide Cells: Detailed Modeling of Nickel Oxide Film Growth

机译:固体氧化物细胞中的电极再氧化:氧化镍膜生长的详细建模

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The lifetime and performance of solid-oxide fuel cells (SOFC) and electrolyzer cells (SOEC) can be significantly degraded by oxidation of nickel within the electrode and support structures. This paper documents a detailed computational model describing nickel oxide (NiO) formation as a growing film layer on top of the nickel phase in Ni/YSZ composite electrodes. The model assumes that the oxidation rate is controlled by transport of ions across the film (Wagner's theory). The computational model, which is implemented in a two-dimensional continuum framework, facilitates the investigation of alternative chemical reaction and transport mechanisms. Model predictions agree well with a literature experimental measurement of oxidation-layer growth. In addition to providing insight in interpreting experimental observations, the model provides a quantitative predictive capability for improving electrode design and controlling operating conditions.
机译:通过在电极内的镍和支撑结构内的镍氧化可以显着降低固态氧化物燃料电池(SOFC)和电解槽电池(SOEC)的寿命和性能。本文记录了将氧化镍(NIO)形成为在Ni / YSZ复合电极中的镍相的镍相的氧化膜层的详细计算模型。该模型假设氧化率通过膜(瓦格纳理论)的离子运输来控制。在二维连续内框架中实施的计算模型有助于研究替代化学反应和运输机制。模型预测与氧化层生长的文献实验测量很好。除了在解释实验观察方面提供洞察外,该模型还提供了用于改善电极设计和控制操作条件的定量预测能力。

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