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Hydrogen looping approach in optimized methanol thermally coupled membrane reactor

机译:优化的甲醇热耦合膜反应器中的氢气循环方法

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摘要

In this study, cyclohexane and hydrogen loop approach is proposed in optimized thermally coupled dual reactors in methanol production via Differential Evolution (DE) method. This new generation of thermally coupled membrane reactors uses simultaneously the advantages of hydrogen carrier characteristic and multifunctional reactors. This configuration is named thermally coupled dual methanol reactor (TCDMR). In the first reactor, cyclohexane dehydrogenation reaction is coupled with methanol production reactions. Cyclohexane is produced in the second reactor due to carrying all produced hydrogen from the first reactor to the second reactor for benzene hydrogenation reaction. The operating conditions of TCDMR are optimized via DE method and six decision variables are considered to investigate its performance. Since cyclohexane is produced continuously in the second reactor and enters the first reactor as the endothermic feed, the external cyclohexane injection rate is minimized, too. A comparison is made between the optimized TCDMR (OTCDMR), TCDMR and Thermally coupled methanol reactor (TCMR) and conventional methanol reactor (CMR). The modeling results demonstrate the superiority of OTCDMR to all previously proposed configurations. A continuous system is achieved and slight amount of exterior cyclohexane injection rate (3.6molh ~(-1)) is required in this configuration. Furthermore, the hydrogen storage problem is solved by this configuration owing to simultaneous hydrogen production and utilization. In addition, produced benzene in OTCDMR is about 10% of the one in TCMR which can be appealing from the environmental viewpoint.
机译:在这项研究中,提出了通过差示逸出(DE)方法在甲醇生产中优化的热耦合双反应器中采用环己烷和氢气回路方法。新一代的热耦合膜反应器同时利用了氢载流子特性和多功能反应器的优势。该配置称为热耦合双甲醇反应器(TCDMR)。在第一反应器中,环己烷脱氢反应与甲醇生产反应结合。由于将所有产生的氢气从第一反应器运送到第二反应器进行苯加氢反应,因此在第二反应器中产生了环己烷。通过DE方法优化了TCDMR的运行条件,并考虑了六个决策变量来研究其性能。由于环己烷在第二反应器中连续产生并作为吸热进料进入第一反应器,因此外部环己烷的注入速率也被最小化。在优化的TCDMR(OTCDMR),TCDMR和热耦合甲醇反应器(TCMR)与常规甲醇反应器(CMR)之间进行了比较。建模结果表明OTCDMR优于所有先前提出的配置。实现了一个连续系统,并且在这种配置中需要少量的外部环己烷注入速率(3.6molh〜(-1))。此外,由于同时产生和利用氢,因此通过该构造解决了氢存储问题。另外,OTCDMR中产生的苯约为TCMR中产生的苯的10%,从环境角度来看可能很有吸引力。

著录项

  • 来源
    《International journal of hydrogen energy》 |2012年第1期|p.235-249|共15页
  • 作者单位

    Department of Chemical Engineering, School of Chemical and Petroleum Engineering, Shiraz University, Shiraz 71345, Iran;

    Department of Chemical Engineering, School of Chemical and Petroleum Engineering, Shiraz University, Shiraz 71345, Iran;

    Department of Chemical Engineering, School of Chemical and Petroleum Engineering, Shiraz University, Shiraz 71345, Iran;

    Department of Chemical Engineering, School of Chemical and Petroleum Engineering, Shiraz University, Shiraz 71345, Iran;

    Priority Research Centre for Energy, Chemical Engineering, School of Engineering, Faculty of Engineering & Built Environment,The University of Newcastle, University Drive, Callaghan, NSW 2308, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    methanol synthesis; hydrogen carrier; cyclohexane dehydrogenation; benzene hydrogenation; thermally coupled; membrane reactor; looping approach;

    机译:甲醇合成;氢载体环己烷脱氢苯加氢热耦合膜反应器循环法;

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