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Numerical studies on heat coupling and configuration optimization in an industrial hydrogen production reformer

机译:工业制氢重整器热耦合和构型优化的数值研究

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Steam methane reforming furnaces are the most important devices in the hydrogen production industry. The highly endothermic reaction system requires reaction tubes in the furnace to have a large heat transfer area and to be operated under high temperature and pressure conditions. In order to enhance heat transfer efficiency and protect reaction tubes, the controlling and optimization of the furnace structure have increasingly received more and more research attention. As known from the furnace structure, it is essential to couple the exothermic combustion with the endothermic reforming reactions due to the highly interactive nature of the two processes. Thus, in this paper, the combustion process in the furnace was numerically studied by using computational fluid dynamics (CFD) to model the combustion chamber, coupled with methane steam reforming reaction inside the reaction tubes, defined by a plug flow model. A set of combustion models were compared for the furnace chamber and a plug flow reaction model was employed for reforming reaction tubes, and then a heat coupling process was established. The predicted flue gas temperature distribution showed that the heat transfer in the furnace was not uniform, resulting in hot spots and heat losses on the tube wall. Therefore, structure optimization schemes were proposed. Optimization on arrangements of the tubes and the nozzles promoted the uniform distribution of flue-gas temperature and then improved heat transfer efficiency, thereby enhancing performance of the steam reforming process. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:蒸汽甲烷重整炉是制氢行业中最重要的设备。高度吸热的反应系统要求炉中的反应管具有较大的传热面积,并且必须在高温和高压条件下运行。为了提高换热效率和保护反应管,炉膛结构的控制和优化越来越受到研究的重视。如从炉子结构中已知的,由于两个过程的高度相互作用的性质,必须将放热燃烧与吸热重整反应耦合。因此,在本文中,通过使用计算流体力学(CFD)对燃烧室进行建模,并通过塞流模型定义了反应管内的甲烷蒸汽重整反应,对炉膛中的燃烧过程进行了数值研究。比较了炉膛的一组燃烧模型,并采用活塞流反应模型对反应管进行重整,然后建立了热耦合过程。预测的烟道气温度分布表明,炉内的传热不均匀,从而导致热点和管壁上的热损失。因此,提出了结构优化方案。管和喷嘴布置的优化促进了烟气温度的均匀分布,然后提高了传热效率,从而提高了蒸汽重整过程的性能。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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