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首页> 外文期刊>Journal of power sources >Catalytic modification of conventional SOFC anodes with a view to reducing their activity for direct internal reforming of natural gas
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Catalytic modification of conventional SOFC anodes with a view to reducing their activity for direct internal reforming of natural gas

机译:常规SOFC阳极的催化改性,以降低其在天然气直接内部重整中的活性

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摘要

When using natural gas as fuel for the solid oxide fuel cell (SOFC), direct internal reforming lowers the requirement for cell cooling and, theoretically, offers advantages with respect to capital cost and efficiency. The high metal content of a nickel/zirconia anode and the high temperature, however, cause the endothermic reforming reaction to take place very fast. The resulting drop of temperature at the inlet produces thermal stresses, which may lower the system efficiency and limit the stack lifetime. To reduce the reforming rate without lowering the electrochemical activity of the cell, a wet impregnation procedure for modifying conventional cermets by coverage with a less active metal was developed. As the coating material copper was chosen. Copper is affordable, catalytically inert for the reforming reaction and exhibits excellent electronic conductivity. The current density-voltage characteristics of the modified units showed that it is possible to maintain a good electrochemical performance of the cells despite the catalytic modification. A copper to nickel ratio of 1:3 resulted in a strong diminution of the catalytic reaction rate. This indicates that the modification could be a promising method to improve the performance of solid oxide fuel cells with direct internal reforming of hydrocarbons.
机译:当使用天然气作为固体氧化物燃料电池(SOFC)的燃料时,直接内部重整降低了对电池冷却的要求,并且从理论上讲,在资本成本和效率方面都具有优势。然而,镍/氧化锆阳极的高金属含量和高温导致吸热重整反应非常迅速地发生。入口处温度的下降会产生热应力,这可能会降低系统效率并限制烟囱寿命。为了在不降低电池的电化学活性的情况下降低重整速率,开发了通过用活性较低的金属覆盖来改性常规金属陶瓷的湿法浸渍方法。选择铜作为涂层材料。铜价格低廉,对重整反应具有催化惰性,并具有出色的电子传导性。修饰单元的电流密度-电压特性表明,尽管进行了催化修饰,仍可以保持电池的良好电化学性能。 1∶3的铜镍比导致催化反应速率的强烈降低。这表明该修饰可能是通过烃的直接内部重整来改善固体氧化物燃料电池性能的有前途的方法。

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