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Catalyst design for maximizing C_(5+) yields during Fischer-Tropsch synthesis

机译:催化剂设计用于最大化C_(5+)产量在Fischer-Tropsch合成期间

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Fischer-Tropsch (FT) process has great potential to accomplish energy security but also for utilizing greenhouse gases to address the energy problem. Different kinds of feedstocks like coal, biomass (via gasification), CO2, methane (via reforming), and nonconventional energy sources are used to obtain the syn-gas (CO and H-2). The formation of hydrocarbons in the FT process follows ASF distribution over the majority of the catalysts. It can be overcome by the application of a suitable catalyst, controlling the active metal interaction with the support and interaction of formed hydrocarbon with the support. The ratio of syn-gas is important to maintain the desired conversion and to have more selectivity towards C5+ products. Increase in the H-2: CO ratios in the feed increases C5+ products and methane decreases. Whereas with the decrease in the ratios increases undesirable reactions and methane formation. In this article, we have discussed the recent literature from the viewpoint of increasing the C5+ selectivity. Support has a profound influence on product distribution. With the application of suitable support and controlling the interaction of the active sites yields the good CO conversion with fewer lighters and higher C5+ hydrocarbons. (c) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:Fischer-Tropsch(FT)工艺有可能实现能源安全性的巨大潜力,也具有利用温室气体来解决能源问题的潜力。使用不同种类的原料,如煤,生物质(通过气化),CO 2,甲烷(通过重整)和非转化能源,用于获得同步气体(CO和H-2)。 FT过程中烃的形成遵循大多数催化剂的ASF分布。可以通过施加合适的催化剂来克服,控制活性金属相互作用与所形成的烃与载体的载体相互作用。同步气体的比例是保持所需转化的重要性,并且对C5 +产品具有更多选择性。 H-2的增加:进料中的CO比增加C5 +产品,甲烷降低。虽然随着比率的减少增加了不希望的反应和甲烷的形成。在本文中,从增加C5 +选择性的观点来看,我们讨论了最近的文献。支持对产品分布产生了深远的影响。随着合适的载体和控制活性位点的相互作用产生较少的打火机和更高C5 +烃的良好CO转化。 (c)2019氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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