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Investigation Of Iron-chromium-niobium-titanium Ferritic Stainless Steel For Solid Oxide Fuel Cell Interconnect Applications

机译:固体氧化物燃料电池互连应用的铁-铬-铌-钛铁素体不锈钢的研究

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As part of an effort to develop cost-effective ferritic stainless steel-based interconnects for solid oxide fuel cell (SOFC) stacks, both bare AlSI441 and AlSI441 coated with (Mn.Co)_3O_4 protection layers were studied in terms of its metallurgical characteristics, oxidation behavior, and electrical performance. The addition of minor alloying elements, in particular Nb, led to formation of Laves phases both inside grains and along grain boundaries. In particular, the Laves phase which precipitated out along grain boundaries during exposure at intermediate SOFC operating temperatures was found to be rich in both Nb and Si. The capture of Si in the Laves phase minimized the Si activity in the alloy matrix and prevented formation of an insulating silica layer at the scale/metal interface, resulting in a reduction in area-specific electrical resistance (ASR). However, the relatively high oxidation rate of the steel, which leads to increasing ASR over time, and the need to prevent volatilization of chromium from the steel necessitates the application of a conductive protection layer on the steel. In particular, the application of a Mn_(1.5)Co_(1.5)O_4 spinel protection layer substantially improved the electrical performance of the 441 by reducing the oxidation rate.
机译:作为开发用于固态氧化物燃料电池(SOFC)堆的经济高效的铁素体不锈钢互连的努力的一部分,研究了裸露的AlSI441和涂有(Mn.Co)_3O_4保护层的AlSI441的冶金特性,氧化行为和电性能。微量合金元素(特别是Nb)的添加导致在晶粒内部和沿晶界形成Laves相。特别地,发现在中间SOFC操作温度下暴露期间沿晶界析出的拉夫斯相富含Nb和Si。在Laves相中捕获Si可使合金基质中的Si活性最小化,并防止在氧化皮/金属界面形成绝缘二氧化硅层,从而导致面积比电阻(ASR)降低。但是,钢的相对较高的氧化速率会导致ASR随着时间的推移而增加,并且需要防止铬从钢中挥发,因此需要在钢上施加导电保护层。特别地,Mn_(1.5)Co_(1.5)O_4尖晶石保护层的施加通过降低氧化速率而实质上改善了441的电性能。

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