Chen Xinbing, Guan Chengzhi, Xiao Guoping, Du Xianlong, Wang Jian-Qiang
Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai, 201800, China.
Faraday Discuss. 2015;182:341-51. doi: 10.1039/c5fd00017c.
High temperature (HT) steam/CO2 coelectrolysis with solid oxide electrolysis cells (SOECs) using the electricity and heat generated from clean energies is an important alternative for syngas production without fossil fuel consumption and greenhouse gas emissions. Herein, reaction characteristics and the outlet syngas composition of HT steam/CO2 coelectrolysis under different operating conditions, including distinct inlet gas compositions and electrolysis current densities, are systematically studied at 800 °C using commercially available SOECs. The HT coelectrolysis process, which has comparable performance to HT steam electrolysis, is more active than the HT CO2 electrolysis process, indicating the important contribution of the reverse water-gas shift reaction in the formation of CO. The outlet syngas composition from HT steam/CO2 coelectrolysis is very sensitive to the operating conditions, indicating the feasibility of controlling the syngas composition by varying these conditions. Maximum steam and CO2 utilizations of 77% and 76% are achieved at 1.0 A cm(-2) with an inlet gas composition of 20% H2/40% steam/40% CO2.
利用清洁能源产生的电力和热量,通过固体氧化物电解池(SOEC)进行高温(HT)蒸汽/二氧化碳共电解,是一种在不消耗化石燃料和不排放温室气体的情况下生产合成气的重要替代方法。在此,使用市售的SOEC在800°C下系统地研究了不同操作条件下HT蒸汽/二氧化碳共电解的反应特性和出口合成气组成,这些操作条件包括不同的入口气体组成和电解电流密度。HT共电解过程与HT蒸汽电解具有相当的性能,比HT二氧化碳电解过程更具活性,这表明逆水煤气变换反应在CO形成中的重要贡献。HT蒸汽/二氧化碳共电解的出口合成气组成对操作条件非常敏感,这表明通过改变这些条件来控制合成气组成是可行的。在入口气体组成为20%H2/40%蒸汽/40%CO2、电流密度为1.0 A cm(-2)时,蒸汽和二氧化碳的最大利用率分别达到77%和76%。