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Suspension plasma spray and performance characterization of half cells with NiO/YSZ anode and YSZ electrolyte

机译:NiO / YSZ阳极和YSZ电解质对半电池的悬浮等离子喷涂和性能表征

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摘要

The use of a liquid feedstock carrier in suspension plasma spray (SPS) permits injection of fine powders, providing the possibility of producing sprayed coatings that are both thin and dense and have fine microstructures. These characteristics make SPS an attractive process for depositing highly efficient electrodes and electrolytes for solid oxide fuel cell (SOFC) applications. In this study, NiO-yttria stabilized zirconia (YSZ) anode and YSZ electrolyte half cells were successfully deposited on porous Hastelloy X substrates by SPS. The NiO-YSZ anode deposition process was optimized by design of experiment. The YSZ electrolyte spray process was examined by changing one parameter at a time. The results from the design-of-experiment trials indicated that the porosity of the as-deposited coatings increased with an increase of suspension feed rate while it decreased with an increase of total plasma gas flow rate and standoff distance. The deposition rate increased with an increase of total plasma gas flow rate, suspension feed rate, and standoff distance. The microstructure examination by SEM showed that the NiO and YSZ phases were homogeneously distributed and that the YSZ phase had a lamellar structure. It was observed that the density of the YSZ electrolyte layer increased as input power of the plasma torch increased. Electrochemical characterization of the fabricated cells indicated that an open cell voltage of 0.989 V at 500 C and a peak power of 0.610 W/cm2 at 750 C were reached.
机译:在悬浮式等离子喷涂(SPS)中使用液体原料载体可注入细粉,从而提供了生产既薄又致密且具有精细微结构的喷涂涂层的可能性。这些特性使SPS成为用于沉积固体氧化物燃料电池(SOFC)应用的高效电极和电解质的有吸引力的过程。在这项研究中,通过SPS将NiO-氧化钇稳定的氧化锆(YSZ)阳极和YSZ电解质半电池成功沉积在多孔Hastelloy X基板上。通过实验设计优化了NiO-YSZ阳极沉积工艺。通过一次更改一个参数来检查YSZ电解质喷涂过程。实验设计的结果表明,沉积的涂层的孔隙度随悬浮液进料速率的增加而增加,而随总等离子气体流量和隔离距离的增加而降低。沉积速率随总等离子气体流速,悬浮液进料速率和隔离距离的增加而增加。 SEM的显微组织检查表明,NiO和YSZ相均匀分布,并且YSZ相具有层状结构。观察到随着等离子体炬的输入功率增加,YSZ电解质层的密度增加。制成电池的电化学特性表明,在500 C下的开孔电压为0.989 V,在750 C下的峰值功率为0.610 W / cm2。

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