催化燃烧
材料科学
催化作用
微通道
燃烧
大规模运输
图层(电子)
机械
微型反应器
核工程
分布(数学)
热力学
化学工程
复合材料
化学
纳米技术
物理
物理化学
数学
工程物理
有机化学
数学分析
工程类
作者
Weiqiang Kong,Qiuwan Shen,Naibao Huang,Min Yan,Shian Li
标识
DOI:10.1108/hff-03-2024-0172
摘要
Purpose The purpose of this study is to investigate the effect of catalyst distribution in the combustion catalytic layer on heat and mass transport characteristics of the auto-thermal methanol steam reforming microchannel reactor. Design/methodology/approach Computational fluid dynamics (CFD) method is used to study four different gradient designs. The corresponding distributions of temperature, species and chemical reaction rate are provided and compared. Findings The distributions of species, temperature and chemical reaction rate are significantly affected by the catalyst distribution in the combustion catalytic layer. A more uniform temperature distribution can be observed when the gradient design is used. Meanwhile, the methanol conversion rate is also improved. Practical implications This work reveals the effect of catalyst distribution in the combustion catalytic layer on heat and mass transport characteristics of the auto-thermal methanol steam reforming microchannel reactor and provides guidance for the design of reactors. Originality/value The temperature uniformity and hydrogen production performance can be improved by the gradient design in the combustion catalytic layer.
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