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Efficient utilization of carbon dioxide in a gas-to-methanol process composed of CO2/steam-mixed reforming and methanol synthesis

机译:高效利用二氧化碳在由CO 2 /蒸汽混合重整和甲醇合成组成的煤气 - 甲醇过程中

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摘要

Two process models for a carbon-dioxide-utilized gas-to-methanol (GTM) process (CGTM) that primarily produces methanol were developed using the process simulation software Aspen Plus. Both models comprised a reforming unit, a methanol synthesis unit and a recycling unit, with the feeding point of the fresh feed CO2 as the principal configurational difference. In the reforming unit, CO2/Steam-mixed reforming was performed to generate the targeted syngas in flexible compositions. Meanwhile, CO2 hydrogenation was conducted over a Cu-based catalysts in the methanol synthesis unit to directly produce the targeted product, methanol. After methanol synthesis, the unreacted syngas was recycled to the methanol synthesis and reforming units to enhance energy efficiency. The simulation results revealed that both CGTM options can favorably improve the energy efficiency and significantly reduce the total CO2 emissions, compared to a conventional GTM process. The energy efficiency was shown to be highly affected by the recycle ratio and a higher recycle ratio seemed to favorably improve CO2 conversion, enhance energy efficiency, and reduce CO2 emissions. However, the split ratio (recycle-to-reforming unit/total recycle) seems to have little effect on the energy efficiency, and the optimum recycle to the reforming unit was determined to be none. (C) 2016 Elsevier Ltd. All rights reserved.
机译:使用主要生产甲醇的二氧化碳利用的气体 - 甲醇(GTM)工艺(CGTM)的两个工艺模型是使用Aspen Plus进行的。两种模型包括重整单元,甲醇合成单元和再循环单元,具有新鲜馈送CO2的馈电点作为主要配置差。在重整单元中,进行CO 2 /蒸汽混合重整以在柔性组合物中产生靶向合成气。同时,在甲醇合成单元中的Cu基催化剂上进行CO 2氢化,直接产生靶向产物甲醇。在甲醇合成之后,将未反应的合成气再循环至甲醇合成和重整单元以提高能量效率。仿真结果表明,与传统的GTM工艺相比,CGTM选项均能有利地提高能源效率并显着降低总二氧化碳排放量。能量效率显示受重循环比的高度影响,并且较高的再循环比似乎有利地改善了二氧化碳转化,提高能量效率,减少二氧化碳排放。然而,分裂比(再循环重整单元/总回收)似乎对能量效率几乎没有影响,并且确定了重整单元的最佳回收是无的。 (c)2016 Elsevier Ltd.保留所有权利。

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