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Product Analysis of Supercritical Fischer-Tropsch Synthesis: Utilizing a Unique On-Line and Off-Line Gas Chromatographs Setup in a Bench-Scale Reactor Unit

机译:超临界费-托合成的产品分析:在台式反应器单元中利用独特的在线和离线气相色谱仪设置

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The utilization of supercritical fluids (SCF) in the Fischer-Tropsch Synthesis (FTS) further complicates the hydrocarbon products identification and analysis process due to the dilution of hydrocarbon peaks by the predominant solvent peak. Therefore, in this project, a custom-made Gas Chromatography (GC) analysis system was designed and implemented to identify and quantify SCF-FTS products. The FTS products were identified using two different methods. The first was through retention time matching by injecting standard solutions, and the second was through the use of the GC/MS system. The quantification of CO and CH4 was achieved by using external standards, where the CO conversion was calculated by relating the peak area of CO to the peak area of an internal standard (argon) while the CH4 selectivity was calculated by relating the peak area of CH4 to that of CO. After setting and calibrating the GC system, two reaction conditions (gas phase: 240°C, 20 bar syngas with 2:1 H2:CO molar feed ratio and for the supercritical fluids FTS (SCF-FTS): 240°C, 65 bar with 20 bar syngas partial pressure and 2:1 H2:CO molar feed ratio) were used to compare the different FTS reaction media. The comparison between the gas phase FTS and the SCF-FTS showed the following: carbon monoxide conversion was improved by 14% in the SCF-FTS, while the hydrocarbon product profile SCF-FTS showed 78% reduction in light hydrocarbons (C1 - C4) products, 35% increase in middle distillates (C11 - C22) products compared to gas phase FTS. These improvements have resulted in higher chain growth probability for the SCF-FTS (α = 0.85) compared to the gas phase FTS (α = 0.76). These results are generally in agreement with previously reported enhancement in the SCF-FTS[1].
机译:费-托合成(FTS)中超临界流体(SCF)的使用由于烃峰被主要的溶剂峰稀释而使烃产物的鉴定和分析过程更加复杂。因此,在该项目中,设计并实施了定制的气相色谱(GC)分析系统,以识别和定量SCF-FTS产品。使用两种不同的方法来识别FTS产品。第一个是通过注入标准溶液进行保留时间匹配,第二个是通过使用GC / MS系统。通过使用外标进行CO和CH4的定量分析,其中CO的转化率是通过将CO的峰面积与内标(氩气)的峰面积相关联来计算的,而CH4的选择性是通过将CH4的峰面积进行关联来计算的设置和校准GC系统后,有两个反应条件(气相:240°C,20 bar合成气,H2:CO摩尔进料比为2:1,超临界流体FTS(SCF-FTS):240在65°C,20 bar合成气分压和2:1 H2:CO摩尔进料比的条件下,将其用于比较不同的FTS反应介质。气相FTS和SCF-FTS的比较显示以下内容:SCF-FTS中的一氧化碳转化率提高了14%,而碳氢化合物产品SCF-FTS的轻烃含量降低了78%(C1- C4)产品,与气相FTS相比,中间馏分(C11-C22)产品增加了35%。与气相FTS(α= 0.76)相比,这些改进导致SCF-FTS的链增长概率更高(α= 0.85)。这些结果通常与先前报道的SCF-FTS的增强一致[1]。

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