二维层状MOF原位催化裂解稠油及其催化机理研究

IF 6.1 1区 工程技术 Q2 ENERGY & FUELS
Chi Li , Ji-Xiang Guo , Li Wang , Wen-Long Zhang , Peng-Cheng Xue , Chen-Hao Gao
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引用次数: 0

摘要

中国稠油资源丰富,但稠油粘度高,开采技术落后,开发成本高。原位催化降粘技术虽然可以解决萃取过程中存在的技术、环境和成本问题,但催化剂的稳定性差,催化效率低。本研究采用绿色、简单的室温搅拌方法合成了一类高效、稳定的二维MOF催化剂,该催化剂具有原位催化裂解重油和降低粘度的能力。在160℃、催化剂浓度为0.5 wt%、供氢剂(四氢灵)浓度为2 wt%的条件下,Fe-MOF的降粘率高达89.09%,可使沥青质含量降低8.42%。此外,通过对原油沥青质的结构鉴定和分析,从分子水平上解释了稠油高粘度的原因。通过催化产物分析和分子动力学模拟,对催化机理进行了研究。发现Fe-MOF与重油大分子通过配位和孔道效应相互作用,促进其裂解和扩散。此外,Fe-MOF与氢供体之间的协同作用促进了加氢反应,增强了降粘效果。该研究提供了一种提高稠油采收率的新策略,并强调了二维MOFs在催化热解应用中的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on the in-situ catalytic pyrolysis of heavy oil by 2D layered MOF and its catalytic mechanism
China possesses abundant heavy oil resources, yet faces challenges such as high viscosity, underdeveloped production technologies, and elevated development cost. Although the in-situ catalytic viscosity-reduction technology can address certain technical, environmental, and cost problems during the extraction process, the catalysts often suffer from poor stability and low catalytic efficiency. In this study, a green and simple room-temperature stirring method was employed to synthesize a class of highly efficient and stable 2D MOF catalysts, which possess the capability to conduct in-situ catalytic pyrolysis of heavy oil and reduce the viscosity. Under the condition of 160 °C, a catalyst concentration of 0.5 wt%, and a hydrogen donor (tetralin) concentration of 2 wt%, the viscosity-reduction rate of Fe-MOF is as high as 89.09%, and it can decrease the asphaltene content by 8.42%. In addition, through the structural identification and analysis of crude oil asphaltenes, the causes for the high viscosity of heavy oil are explained at the molecular level. Through the analysis of catalytic products and molecular dynamics simulation, the catalytic mechanism is studied. It is discovered that Fe-MOF can interact with heavy oil macromolecules via coordination and pore-channel effects, facilitating their cracking and dispersal. Furthermore, synergistic interactions between Fe-MOF and the hydrogen donor facilitates hydrogenation reactions and enhances the viscosity-reducing effect. This study provides a novel strategy for boosting heavy oil recovery and underscores the potential of 2D MOFs in catalytic pyrolysis applications.
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来源期刊
Petroleum Science
Petroleum Science 地学-地球化学与地球物理
CiteScore
7.70
自引率
16.10%
发文量
311
审稿时长
63 days
期刊介绍: Petroleum Science is the only English journal in China on petroleum science and technology that is intended for professionals engaged in petroleum science research and technical applications all over the world, as well as the managerial personnel of oil companies. It covers petroleum geology, petroleum geophysics, petroleum engineering, petrochemistry & chemical engineering, petroleum mechanics, and economic management. It aims to introduce the latest results in oil industry research in China, promote cooperation in petroleum science research between China and the rest of the world, and build a bridge for scientific communication between China and the world.
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