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In-Situ Investigation of Quantitative Contributions of the Anode, Cathode, and Electrolyte to the Cell Performance in Anode-Supported Planar SOFCs

机译:阳极支持的平面SOFC中阳极,阴极和电解质对电池性能的定量贡献的原位研究

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摘要

A novel method that embeds Pt voltage probes into the triple-phase boundary (TPB) is developed. Moreover, the quantitative contributions of the anode, the cathode, and the electrolyte to cell performance are investigated in situ for anode-supported planar solid oxide fuel cells (SOFCs). The voltage and maximum output power density (MOPD) measured by the probes, which are placed on both sides of the electrolyte, account for 97.3% and 94.4%, respectively, of those of the cell during the instantaneous current–voltage testing. When the stack is discharged at 0.32 A cm−2 for 200 h, the voltage drops of the anode, the cathode, and the electrolyte account for 76.9%, 15.4%, and 7.7%, respectively, of the total voltage drop of the unit cell. The ohmic resistance of the unit cell primarily depends on the resistance that results from the TPB. The variation in cell resistance is mainly attributed to the increase in anode polarization resistance caused by Ni particle agglomeration. However, cell voltage is more sensitive to the TPB ohmic resistance, which may be the primary factor for SOFC degradation.
机译:开发了一种将Pt电压探针嵌入三相边界(TPB)的新方法。此外,对于阳极支撑的平面固体氧化物燃料电池(SOFC),就地研究了阳极,阴极和电解质对电池性能的定量贡献。在瞬时电流-电压测试期间,放置在电解质两侧的探针测得的电压和最大输出功率密度(MOPD)分别占电池的97.3%和94.4%。当电池组在0.32 A cm-2下放电200 h时,阳极,阴极和电解质的电压降分别占单元总电压降的76.9%,15.4%和7.7%。细胞。单元电池的欧姆电阻主要取决于由TPB产生的电阻。电池电阻的变化主要归因于由Ni颗粒的团聚引起的阳极极化电阻的增加。但是,电池电压对TPB欧姆电阻更敏感,这可能是导致SOFC退化的主要因素。

著录项

  • 来源
    《Advanced energy materials》 |2014年第10期|1-8|共8页
  • 作者单位

    Ningbo Institute of Material Technology and Engineering Chinese Academy of Science Zhenhai District Ningbo P. R. China;

    Ningbo Institute of Material Technology and Engineering Chinese Academy of Science Zhenhai District Ningbo P. R. China;

    Ningbo Institute of Material Technology and Engineering Chinese Academy of Science Zhenhai District Ningbo P. R. China;

    Ningbo Institute of Material Technology and Engineering Chinese Academy of Science Zhenhai District Ningbo P. R. China;

    Ningbo Institute of Material Technology and Engineering Chinese Academy of Science Zhenhai District Ningbo P. R. China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    internal probes; triple-phase boundaries; solid oxide fuel cells; energy conversion;

    机译:内部探针;三相边界;固体氧化物燃料电池;能量转换;

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