Fisher–Tropsch Synthesis for Conversion of Methane into Liquid Hydrocarbons through Gas-to-Liquids (GTL) Process: A Review

Methane Pub Date : 2023-01-04 DOI:10.3390/methane2010002
Farah T. Alsudani, Abdullah N. Saeed, N. S. Ali, H. Majdi, Hussein G. Salih, T. Albayati, N. Saady, Zaidoon M. Shakor
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引用次数: 5

Abstract

The interest in Gas-to-Liquid technology (GTL) is growing worldwide because it involves a two-step indirect conversion of natural gas to higher hydrocarbons ranging from Liquefied Petroleum Gas (LPG) to paraffin wax. GTL makes it possible to obtain clean diesel, naphtha, lubes, olefins, and other industrially important organics from natural gas. This article is a brief review discussing the state-of-the-art of GTL, including the basics of syngas manufacturing as a source for Fischer-Tropsch synthesis (FTS), hydrocarbons synthesis (Fischer-Tropsch process), and product upgrading. Each one is analyzed, and the main characteristics of traditional and catalysts technologies are presented. For syngas generation, steam methane reforming, partial oxidation, two-step reforming, and autothermal reforming of methane are discussed. For Fischer–Tropsch, we highlight the role of catalysis and selectivity to high molecular weight hydrocarbons. Also, new reactors technologies, such as microreactors, are presented. The GTL technology still faces several challenges; the biggest is obtaining the right H2:CO ratio when using a low steam-to-carbon ratio. Despite the great understanding of the carbon formation mechanism, little has been made in developing newer catalysts. Since 60–70% of a GTL plant cost is for syngas production, it needs more attention, particularly for developing the catalytic partial oxidation process (CPO), given that modern CPO processes using a ceramic membrane reactor reduce the plant’s capital cost. Improving the membrane’s mechanical, thermal, and chemical stability can commercialize the process. Catalytic challenges accompanying the FTS need attention to enhance the selectivity to produce high-octane gasoline, lower the production cost, develop new reactor systems, and enhance the selectivity to produce high molecular weight hydrocarbons. Catalytically, more attention should be given to the generation of a convenient catalyst layer and the coating process for a given configuration.
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费托合成甲烷气转液(GTL)转化为液态烃的研究进展
全球对气制液技术(GTL)的兴趣正在增长,因为它涉及将天然气间接转化为从液化石油气(LPG)到石蜡等高级碳氢化合物的两步过程。GTL使从天然气中获得清洁柴油、石脑油、润滑油、烯烃和其他工业上重要的有机物成为可能。本文简要介绍了GTL技术的最新进展,包括合成气制造作为费托合成(FTS)、碳氢化合物合成(费托工艺)和产品升级的基础知识。对每一种技术进行了分析,并介绍了传统技术和催化剂技术的主要特点。合成气的生成主要包括蒸汽甲烷重整、部分氧化、两步重整和甲烷自热重整。对于费托反应,我们强调了对高分子量碳氢化合物的催化和选择性作用。此外,还介绍了微反应器等新型反应器技术。GTL技术仍然面临着一些挑战;最大的问题是在使用低蒸汽碳比时获得合适的H2:CO比。尽管对碳的形成机制有了很大的了解,但在开发新的催化剂方面却做得很少。由于GTL工厂成本的60-70%用于合成气生产,因此需要更多的关注,特别是开发催化部分氧化工艺(CPO),因为使用陶瓷膜反应器的现代CPO工艺降低了工厂的资本成本。提高膜的机械、热和化学稳定性可以使该工艺商业化。FTS带来的催化挑战需要关注,以提高生产高辛烷值汽油的选择性,降低生产成本,开发新的反应器系统,并提高生产高分子量烃的选择性。在催化方面,应更多地关注生成方便的催化剂层和给定配置的涂层工艺。
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