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首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >The Interplay of Heat Transfer and Endothermic Chemistry Within a Ceramic Microchannel Reactor
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The Interplay of Heat Transfer and Endothermic Chemistry Within a Ceramic Microchannel Reactor

机译:陶瓷微通道反应器内传热和吸热化学的相互作用

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摘要

Ceramic microchannel heat-exchanger and reactor technology is capable of achieving high performance while operating under high-temperature, corrosive, and/or oxidative environments. This work describes two computational fluid dynamics (CFD) modeling studies which examine the coupling of heat transfer and endothermic methane-steam-reforming chemistry within a ceramic microchannel reactor. These modeling tools are then applied to improve microchannel-reactor design and performance. Within the reactor, methane is converted to syngas through steam reforming; the thermal requirements for this endothermic chemistry are provided by heat transfer from hot-inert gas on adjacent layers. Fluid flow, heat transfer, and complex elementary surface chemistry are all simulated using the ANSYS FLUENT models. CFD studies reveal the substantial chemical contribution of reforming on thermal gradients across and within the reactor. Improved control of the reforming temperature is also discovered through stack-design analysis, where an odd number of inert-gas layers are found to create more-uniform reactive wall temperatures. Model results provide insight on the interplay of conjugate heat transfer and chemical kinetics in reactor design.
机译:陶瓷微通道热交换器和反应器技术能够在高温,腐蚀性和/或氧化性环境下运行时实现高性能。这项工作描述了两个计算流体动力学(CFD)建模研究,它们研究了陶瓷微通道反应器内传热与甲烷-蒸汽重整吸热化学的耦合。然后将这些建模工具应用于改善微通道反应器的设计和性能。在反应器内,甲烷通过蒸汽重整转化为合成气。通过从相邻层上的热惰性气体传热来提供这种吸热化学的热要求。流体流动,传热和复杂的基本表面化学性质均使用ANSYS FLUENT模型进行了模拟。 CFD研究表明,重整反应器内和反应器内的热梯度对化学反应的贡献很大。通过烟囱设计分析,还发现了对重整温度的更好控制,在该分析中,发现奇数个惰性气体层可产生更均匀的反应壁温度。模型结果为反应堆设计中共轭传热和化学动力学之间的相互作用提供了见识。

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