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Differential evolution (DE) strategy for optimization of hydrogen production and utilization in a thermally coupled membrane reactor for decalin dehydrogenation and Fischer-Tropsch synthesis in GTL technology

机译:GTL技术中用于十氢化萘脱氢和费托合成的热耦合膜反应器中优化氢气生产和利用的差异演化(DE)策略

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In this study, the operating conditions of a thermally coupled membrane reactor (TCMR) in gas-to-liquid (GTL) technology are optimized via differential evolution (DE) method to maximize the hydrogen mole fraction in the endothermic side as well as the gasoline yield in the exothermic side. TCMR is designed as a double pipe reactor where highly exothermic Fischer-Tropsch synthesis (FTS) reactions in the exothermic side are coupled with decalin dehydrogenation reaction in the endothermic side. The minimum required hydrogen molar flow rate in the recycled stream is optimized to compensate a hydrogen lack at the end of the reactor in the exothermic side. The optimization results show 14.28% increase in the gasoline yield in optimized TCMR compared with conventional tubular reactor (CR). Moreover, 81.49% hydrogen is produced in the endothermic side and about 1% hydrogen is recycled to the exothermic side for utilization in FTS reactions in optimized TCMR.
机译:在这项研究中,通过差分演化(DE)方法优化了气液(GTL)技术中的热耦合膜反应器(TCMR)的运行条件,以使吸热侧以及汽油中的氢摩尔分数最大化放热方面的产率。 TCMR设计为双管反应器,其中放热侧的高放热费-托合成(FTS)反应与吸热侧的十氢化萘脱氢反应耦合。优化了再循环物流中所需的最小氢摩尔流量,以补偿反应器末端放热侧的氢缺乏。优化结果表明,与常规管式反应器(CR)相比,优化TCMR的汽油收率提高了14.28%。而且,在吸热侧产生81.49%的氢,并且约1%的氢再循环到放热侧,以用于优化的TCMR中的FTS反应中。

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