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首页> 外文期刊>Chemical Engineering Science >OPTIMIZATION OF THE SIMULATED COUNTERCURRENT MOVING-BED CHROMATOGRAPHIC REACTOR FOR THE OXIDATIVE COUPLING OF METHANE
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OPTIMIZATION OF THE SIMULATED COUNTERCURRENT MOVING-BED CHROMATOGRAPHIC REACTOR FOR THE OXIDATIVE COUPLING OF METHANE

机译:甲烷氧化偶合的模拟流动床色谱反应器的优化

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This work deals with the further development and optimization of a simulated countercurrent moving bed chromatographic reactor (SCMCR) for the oxidative coupling of methane (OCM). To optimize the adsorptive separation of OCM products from unreacted methane, different adsorbents were selected and tested. Hydrophobic carbon molecular sieve, examined along with other adsorbents (activated charcoal and zeolite with high silica/alumina ratio), appears to be the most suitable choice, both for methane storing and for efficient handling of the OCM separation. Three catalysts, Sm2O3, Y1Ba2Zr3O9.5, and Y1Ba2Ge1O3.5 have been studied in microcatalytic reactor experiments. The Y1Ba2Zr3O9.5 catalyst proved to be the best, giving 84% selectivity to C-2-products at a CH4/O-2 ratio of 11 and nearly complete oxygen conversion. A detailed model of the SCMCR employing experimental information about the catalyst and adsorbent properties was developed to analyze the complex cyclic behavior of the SCMCR. It was found that observed methane loss, and therefore decreased conversion, are caused by incomplete desorption of methane in the carrier section of the SCMCR. This effect can be minimized by selecting a better adsorbent. The influence of the switching time and CH4/O-2 ratio in the make-up feed, the two most important parameters in this system, on reactor performance was analyzed. It was shown that for the best catalyst (Y1Ba2Zr3O9.5) at optimal operating conditions the SCMCR can give 55% yield for C2 products at 75% methane conversion. Adaptive flow switching and the use of a non-uniform make-up feed appear to be promising methods for further optimization of the SCMCR. [References: 10]
机译:这项工作涉及用于甲烷氧化偶联(OCM)的模拟逆流移动床色谱反应器(SCMCR)的进一步开发和优化。为了优化OCM产品与未反应甲烷的吸附分离,选择并测试了不同的吸附剂。与其他吸附剂(具有高二氧化硅/氧化铝比的活性炭和沸石)一起检查的疏水碳分子筛似乎是最适合的选择,无论是甲烷存储还是有效处理OCM分离。在微催化反应器实验中研究了三种催化剂Sm2O3,Y1Ba2Zr3O9.5和Y1Ba2Ge1O3.5。事实证明,Y1Ba2Zr3O9.5催化剂是最好的,在CH4 / O-2比为11时,对C-2-产物的选择性为84%,并且几乎完成了氧气转化。利用有关催化剂和吸附剂性能的实验信息,建立了SCMCR的详细模型,以分析SCMCR的复杂循环行为。已发现观察到的甲烷损失是由于SCMCR载体部分中甲烷的不完全解吸引起的,因此转化率降低。通过选择更好的吸附剂可以使这种影响最小化。分析了补料中切换时间和CH​​4 / O-2比(该系统中两个最重要的参数)对反应器性能的影响。结果表明,对于在最佳操作条件下的最佳催化剂(Y1Ba2Zr3O9.5),SCMCR在甲烷转化率为75%的情况下,对C2产品的产率为55%。自适应流量切换和使用非均匀补充进料似乎是进一步优化SCMCR的有前途的方法。 [参考:10]

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