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Kinetics of Internal Methane Reforming on the Anodes of Low Temperature Ceres Power Steel Cell SOFCs

机译:低温谷粒动力钢电池SOFC阳极内部甲烷重整的动力学

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Ceres Power has developed a unique low-temperature metal supported SOFC design (the 'Steel Cell') based predominantly around the use of ceria. This unique design architecture offers greatly enhanced robustness to real-world operating conditions at a lower cost than conventional SOFC designs, whilst retaining the advantages of fuel flexibility, high efficiency and low degradation. A widely quoted benefit of SOFCs is the ability to carry reforming of hydrocarbon fuels to syngas within the anode of the cells, simplifying the design of the fuel processing system. A perceived disadvantage of low temperature SOFC operation is that significant levels of internal methane reforming are no longer possible due to poor kinetics and thermodynamically limited methane conversion. The Ceres steel cell technology has been developed and demonstrated to perform high levels (40-60%) of internal methane reforming. In this paper a method for approximately estimating the kinetics of methane reforming on Steel Cell anodes will be described, coupling experimental measurements to a mathematical model.
机译:Ceres Power主要围绕二氧化铈的使用开发了独特的低温金属支持的SOFC设计(“钢电池”)。这种独特的设计架构以比传统的SOFC设计更低的成本,大大提高了对实际运行条件的鲁棒性,同时保留了燃料灵活性,高效率和低降解的优点。 SOFC的广泛引用的好处是能够将烃类燃料重整为电池阳极内的合成气,从而简化了燃料处理系统的设计。低温SOFC操作的一个公认的缺点是,由于不良的动力学和甲烷在热力学上的限制,不再可能进行大量的内部甲烷重整。谷神星钢电池技术已经开发并证明可进行高水平(40-60%)的内部甲烷重整。在本文中,将描述一种估计钢电池阳极上甲烷重整动力学的方法,并将实验测量结果与数学模型相结合。

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