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Computational study of staged membrane reactor configurations for methane steam reforming. II. Effect of number of stages and catalyst amount

机译:甲烷蒸汽重整的分段膜反应器配置的计算研究。二。级数和催化剂用量的影响

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摘要

The present work complements part I of this article and completes a computational analysis of the performances of staged membrane reactors for methane steam reforming. The influence of the number of stages and catalyst amount is investigated by comparing the methane conversion and hydrogen recovery yield achieved by an equisized-staged reactor to those of an equivalent conventional membrane reactor for different furnace temperatures and flow configurations (co- and counter-current). The most relevant result is that the proposed configuration with a sufficiently high number of stages and a significantly smaller catalyst amount (up to 70% lower) can achieve performances very close to the ones of the conventional unit in all the operating conditions considered. This is equivalent to say that the staged configuration can compensate and in fact substitute a significant part of the catalyst mass of a conventional membrane reactor. To help the interpretation of these results, stage-by-stage temperature and flux profiles are examined in detail. Then, the quantification of the performance losses with respect to the conventional reactor is carried out by evaluating the catalyst amount possibly saved and furnace temperature reduction. © 2009 American Institute of Chemical Engineers AIChE J, 2010
机译:本工作是对本文第一部分的补充,并完成了用于甲烷蒸汽重整的分段膜反应器性能的计算分析。通过比较在不同的炉温和流量配置(并流和逆流)下,等量反应器与同等常规膜反应器的甲烷转化率和氢气回收率进行比较,研究了阶段数和催化剂量的影响)。最相关的结果是,在所有考虑的操作条件下,具有足够高的级数和明显更少的催化剂量(降低多达70%)的拟议配置可以实现非常接近常规单元的性能。这等效于说,分级配置可以补偿并且实际上替代常规膜反应器的催化剂质量的很大一部分。为了帮助解释这些结果,将详细检查每个阶段的温度和通量曲线。然后,通过评估可能节省的催化剂量和降低炉温来对常规反应器进行性能损失的量化。 ©2009美国化学工程师学会AIChE J,2010

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