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浆态床重油加氢中硫化钼研究综述

Review of Molybdenum Disulfide Research in Slurry Bed Heavy Oil Hydrogenation.

作者信息

Zhang Xiaoning, Chen Buning, Wang Jianwei, Zhou Yusheng, Huang Xueli, Huang He, Wang Xuefeng, Li Kaihong

机构信息

School of Chemical Engineering and Technology, Xinjiang University, Urumqi 830046, People's Republic of China.

Xinjiang Xuanli Environmental Energy Co., Hami 839300, People's Republic of China.

出版信息

ACS Omega. 2023 May 15;8(21):18400-18407. doi: 10.1021/acsomega.3c02029. eCollection 2023 May 30.

Abstract

With the growing demand for gasoline and diesel fuel and the shortage of conventional oil reserves, there has been extensive interest in upgrading technologies for unconventional feedstocks such as heavy oil. Slurry bed reactors with high tolerance to heavy oil have been extensively investigated. Among them, dispersive MoS is favored for its excellent hydrogenation ability for heavy oil even under harsh reaction conditions such as high pressure and high temperature, its ability to effectively prevent damage to equipment from deposited coke, and its ability to meet the requirement of high catalyst dispersion for slurry bed reactors. This paper reviews the relationship between the structure and hydrogenation effectiveness of dispersive molybdenum disulfide, the hydrogenation mechanism, and the improvement of its hydrogenation performance by adding defects and compares the application of molybdenum disulfide in heavy oil hydrogenation, desulfurization, deoxygenation, and denitrification. It is found that the current research on dispersive molybdenum disulfide catalysts focuses mostly on the reduction of stacking layers and catalytic performance, and there is a lack of research on the lateral dimensions, microdomain regions, and defect sites of MoS catalysts. The relationship between catalyst structure and hydrogenation effect also lags far behind the application of MoS in the precipitation of hydrogen, etc. Oil-soluble and water-soluble MoS catalysts eventually need to be converted to a solid sulfide state to have hydrogenation activity. The conversion history of soluble catalysts to solid-type catalysts and the key to their improved catalytic effectiveness remain unclear.

摘要

随着汽油和柴油燃料需求的不断增长以及常规石油储量的短缺,人们对重油等非常规原料的升级技术产生了广泛兴趣。对重油具有高耐受性的浆态床反应器已得到广泛研究。其中,分散型MoS因其即使在高压和高温等苛刻反应条件下对重油也具有出色的加氢能力、有效防止设备因积炭而受损的能力以及满足浆态床反应器对高催化剂分散性的要求而受到青睐。本文综述了分散型二硫化钼的结构与加氢效果之间的关系、加氢机理以及通过引入缺陷对其加氢性能的改善,并比较了二硫化钼在重油加氢、脱硫、脱氧和脱氮中的应用。研究发现,目前对分散型二硫化钼催化剂的研究主要集中在减少堆积层数和催化性能方面,而对MoS催化剂的横向尺寸、微区区域和缺陷位点缺乏研究。催化剂结构与加氢效果之间的关系也远远落后于MoS在析氢等方面的应用。油溶性和水溶性MoS催化剂最终需要转化为固体硫化物状态才能具有加氢活性。可溶性催化剂向固体型催化剂的转化历程及其提高催化效果的关键仍不明确。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0e19/10233841/084df7e36ce2/ao3c02029_0001.jpg

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