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首页> 外文期刊>Journal of power sources >In situ, simultaneous thermal imaging and infrared molecular emission studies of solid oxide fuel cell electrodes
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In situ, simultaneous thermal imaging and infrared molecular emission studies of solid oxide fuel cell electrodes

机译:固体氧化物燃料电池电极的原位同步热成像和红外分子发射研究

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Various in situ probes of solid oxide fuel cells (SOFCs) have advanced recently to provide detailed, real time data regarding materials and chemical processes that relate to device performance and degradation. These techniques offer insights into complex fuel chemistry at the anode in particular, especially in the context of model predictions. However, cell-to-cell variations can hinder mechanistic interpretations of measurements from separate, independent techniques. The present study describes an in situ technique that for the first time simultaneously measures surface temperature changes using near infrared thermal imaging and gas species using Fourier-transform infrared emission spectra at the anodes of operating SOFCs. Electrolyte-supported SOFCs with Ni-based anodes are operated at 700 degrees C with internal, dry reformed methane at 75% maximum current and at open circuit voltage (OCV) while electrochemical and optical measurements are collected. At OCV, more cooling is observed coincident with more CO reforming products. Under load, CO decreases while the anode cools less, especially near the current collectors. The extent of cooling is more sensitive to polarization for electrolyte-supported cells because their anodes are thinner relative to anode-supported cells. This study exemplifies how this duplex technique can be a useful probe of electrochemical processes in SOFCs. Published by Elsevier B.V.
机译:固体氧化物燃料电池(SOFC)的各种原位探针近来已取得进展,可提供有关与设备性能和性能下降有关的材料和化学过程的详细实时数据。这些技术特别是在模型预测的背景下,提供了对阳极处复杂燃料化学的深入了解。但是,单元间的差异可能会妨碍对来自独立,独立技术的测量结果进行机械解释。本研究描述了一种现场技术,该技术首次使用近红外热成像同时测量表面温度的变化,并使用工作的SOFC阳极上的傅立叶变换红外发射光谱来测量气体种类。具有Ni基阳极的电解质支持的SOFC在700°C下与内部干燥的重整甲烷一起以最大电流75%和开路电压(OCV)进行操作,同时收集电化学和光学测量值。在OCV,观察到更多的冷却与更多的CO重整产品同时出现。在负载下,CO降低,而阳极的冷却降低,特别是在集电器附近。对于电解质支持的电池,冷却程度对极化更敏感,因为它们的阳极相对于阳极支持的电池更薄。这项研究例证了这种双工技术如何成为SOFC中电化学过程的有用探针。由Elsevier B.V.发布

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