微型反应器
甲醇
甲醇重整装置
催化作用
制氢
燃烧
氢
蒸汽重整
化学工程
化学
合成气
体积流量
材料科学
热力学
有机化学
物理
工程类
作者
Yuchen Zhong,Wei Zhou,Shupan Zhou,Xinying Li,Xuyang Chu,Linjing Wu
标识
DOI:10.1016/j.ijhydene.2023.11.312
摘要
To achieve high flow hydrogen production, a laminated self-thermal methanol reforming microreactor was designed. Through simulation and experiments, the hydrogen production performance of the microreactor and the compatibility between the methanol catalytic combustion module and the methanol steam reforming module were investigated. The results show that the microreactor exhibits impressive hydrogen production performance, with a methanol conversion rate of 95.27%. When the inlet flow rate of the mixture of methanol and deionized water was increased to a high flow rate, the microreactor exhibits significant cold spots over a wide range in the reaction chamber plates, which could be effectively solved by enhancing the methanol catalytic combustion intensity. The methanol catalytic combustion module inside the microreactor can meet the heat demand of the methanol reforming module. The microreactor operated for 20 h with a methanol-deionized water mixture inlet flow rate of 12 mL/min and a methanol inlet flow rate of 7.5 mL/min; the methanol conversion rate finally stabilized at 90.1%, which was decreased by about 2.2% compared with the initial methanol conversion rate.
科研通智能强力驱动
Strongly Powered by AbleSci AI