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首页> 外文期刊>Ceramic Engineering and Science Proceedings >INVESTIGATION OF PERFORMANCE DEGRADATION OF SOFC USING CHROMIUM-CONTAINING ALLOY INTERCONNECTS
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INVESTIGATION OF PERFORMANCE DEGRADATION OF SOFC USING CHROMIUM-CONTAINING ALLOY INTERCONNECTS

机译:使用含铬合金互连件研究SOFC的性能退化

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摘要

The long-term aging of a stack element (fuel cell, current collectors, and interconnect materials) was studied. A pair of tests were made in which one sample contained an interconnect, a high-temperature stainless steel (Crofer 22 APU), treated with an LSMC coating applied to the cathode-side interconnect plate and the other sample containing a similar fuel cell but no steel interconnect. The interconnect-bearing sample was evaluated for thermochemical compatibility of cell components, including interconnect materials, under conditions typical of and/or expected during the lifetime of an installed multi-cell stack. This was done in an attempt to gain an understanding of reactions between sealant and cell materials, the oxidation of interconnect steels, and the formation of non-conducting species at the electrode interfaces. Additionally, it has been proposed by several researchers that the use of chromia-forming stainless steels can lead to the deposition of material at the triple phase boundary (TPB), a process known as chromium poisoning, which leads to a reduction in the electrochemical performance of the cell over time. Sealing was accomplished using aluminosilicate glass with 30wt.% MgO filler. Long-term degradation of each sample was determined using a current density of 250 mA·cm{sup}(-2) using humidified hydrogen as the fuel and air as the oxygen source, Additionally, the stack element was cycled and an investigation into the effect of cathode atmosphere was undertaken to elucidate the aging mechanism.
机译:研究了堆叠元件(燃料电池,集电器和互连材料)的长期老化。进行了一对测试,其中一个样品包含一个互连件,一种高温不锈钢(Crofer 22 APU),其经涂在阴极侧互连板上的LSMC涂层处理,另一个样品包含一个相似的燃料电池,但没有钢互连。在已安装的多电池堆的使用寿命内典型和/或预期的条件下,评估了带有互连的样品的电池组件(包括互连材料)的热化学兼容性。这样做是为了了解密封剂和电池材料之间的反应,互连钢的氧化以及电极界面处非导电物质的形成。此外,一些研究人员已经提出,使用形成氧化铬的不锈钢会导致材料在三相边界(TPB)处沉积,这一过程被称为铬中毒,导致电化学性能下降。随着时间的流逝。使用具有30wt。%MgO填料的硅铝酸盐玻璃完成密封。使用加湿氢气作为燃料,空气作为氧气源,使用250 mA·cm {sup}(-2)的电流密度,确定每个样品的长期降解。此外,还对电池组件进行了循环并对其进行了研究。采取阴极气氛的作用来阐明老化机理。

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