首页> 外文期刊>Journal of natural gas science and engineering >A comparative study between a fluidized-bed and a fixed-bed water perm-selective membrane reactor with in situ H2O removal for Fischer-Tropsch synthesis of GTL technology
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A comparative study between a fluidized-bed and a fixed-bed water perm-selective membrane reactor with in situ H2O removal for Fischer-Tropsch synthesis of GTL technology

机译:流化床与固定床水渗透膜反应器与原位H2O除去Fischer-Tropsch合成GTL技术的比较研究

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摘要

In order to eliminate the pressure drop problem and mal distribution of the temperature profile along the reactors, fluidized-bed membrane reactors are proposed as an alternative for Fischer-Tropsch synthesis (FTS) in gas-to-liquid (GTL) technology. Regarding this, a novel cascading fluidized-bed membrane reactor (CFMR) is proposed in this study and compared with a fixed-bed membrane cascading with fluidized-bed membrane reactor (FMFMR). The CFMR configuration consists of a fluidized-bed water perm-selective membrane reactor followed by a fluidized-bed hydrogen perm-selective membrane reactor. The performance of CFMR is compared with FMFMR in order to investigate the effect of fluidization concept on the reactor performance. Unlike CFMR where a fluidized-bed concept is applied in the first reactor, a fixed-bed concept is used in the first reactor of FMFMR The modeling results show 5.3% increase in the gasoline yield and 12% decrease in CO2 yield in CFMR in comparison with FMFMR owing to applying a fluidized-bed concept instead of a fixed-bed concept in which more effective temperature management is achieved. According to the modeling results, CFMR is superior to FMFMR for FTS in GTL technology owing to achieving excellent temperature control and a small pressure drop and consequently higher gasoline yield and lower CO2 yield.
机译:为了消除沿着反应器的温度曲线的压降问题和混合物分布,提出了流化床膜反应器作为燃气 - 液体(GTL)技术中的Fischer-Tropsch合成(FTS)的替代方案。关于这一点,在该研究中提出了一种新型级联流化床膜反应器(CFMR),并与用流化床膜反应器(FMFMR)级联的固定床膜梯形。 CFMR构型由流化床水渗透膜反应器组成,然后是流化床氢渗透剂选择性膜反应器。将CFMR的性能与FMFMR进行比较,以研究流化概念对反应器性能的影响。与第一反应器中施加流化床概念的CFMR不同,在FMFMR的第一反应器中使用固定床概念,建模结果显示汽油产量增加5.3%,CFMR中的CO 2产量下降12%由于施加流化床概念而不是固定床概念,具有FMFMR,其中实现了更有效的温度管理。根据建模结果,由于达到优异的温度控制和小的压降,CFMR优于GTL技术的FMFMR,并且因此更高的汽油产量和降低CO 2产率。

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