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Electrochemical characterization and performance assessment of SOC stacks in electrolysis mode

机译:电解模式中SOC堆栈的电化学表征及性能评估

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High temperature electrolysis (HTE) of steam, CO_2, and steam and CO_2 for highly efficient generation of hydrogen, carbon monoxide as well as syngas was investigated for four solid oxide cell stacks, all supplied by different stack manufacturers. The SOCs employed within the stacks were planar, and electrolyte or electrode supported with an industrial size between 80 and 128 cm~2. A comprehensive electrochemical characterization of both stacks and individual cells within the stacks was conducted by means of electrochemical impedance spectroscopy and polarization curve measurement. Detailed performance analyses showed the highest efficiency when operating the stack under H_2O electrolysis, followed by co-electrolysis and eventually CO_2 electrolysis. Subsequently, the stacks were operated under reversible system-relevant steady-state conditions, thus varying the working temperatures, the current density and the gas inlet flow. For that purpose both the conversion rate and fuel utilization were set to be between 70% and 80%. All stacks were operated for long-term periods of >1,000 h, during which degradation monitoring was applied. The results obtained within the present study allow a better understanding of the electrochemical processes that occur during reversible operation and especially HTE, and provide a guideline for optimized operation of a fully autonomous rSOC system.
机译:研究了四种固体氧化物电池堆的高效产生氢,一氧化碳和合成气的高温电解(HTE),用于高效产生氢,一氧化碳,一氧化碳,一氧化碳和合成气。在堆叠内使用的SOC是平面的,并且电解质或电极支撑在80至128cm〜2之间的工业尺寸。通过电化学阻抗光谱和偏振曲线测量进行堆叠内堆叠和单个电池的综合电化学表征。在H_2O电解下操作堆叠时,详细的性能分析显示了最高效率,然后进行了共同电解,最终CO_2电解。随后,在可逆系统相关稳态条件下操作堆叠,从而改变工作温度,电流密度和气体入口流动。为此,转换率和燃料利用均设定为70%至80%。所有堆叠都在长期为> 1,000h的长期期间运营,在此期间应用降解监测。在本研究中获得的结果允许更好地理解可逆操作期间发生的电化学过程,特别是HTE,并提供完全自主RSOC系统的优化操作的指导。

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