Li Wang, Ji-Xiang Guo, Rui-Ying Xiong, 等. In situ modification of heavy oil catalyzed by nanosized metal-organic framework at mild temperature and its mechanism[J]. 中国化学工程学报(英文版), 2024,67(3):166-173. DOI: 10.1016/j.cjche.2023.11.023.
modification of heavy oil catalyzed by nanosized metal-organic framework at mild temperature and its mechanism[J]. 中国化学工程学报, 2024, 67(3): 166-173.
Li Wang, Ji-Xiang Guo, Rui-Ying Xiong, 等. In situ modification of heavy oil catalyzed by nanosized metal-organic framework at mild temperature and its mechanism[J]. 中国化学工程学报(英文版), 2024,67(3):166-173. DOI: 10.1016/j.cjche.2023.11.023.DOI:
modification of heavy oil catalyzed by nanosized metal-organic framework at mild temperature and its mechanism[J]. 中国化学工程学报, 2024, 67(3): 166-173.DOI: 10.1016/j.cjche.2023.11.023.
In situ modification of heavy oil catalyzed by nanosized metal-organic framework at mild temperature and its mechanism
摘要
Abstract
Two catalysts
nano-sized cobalt-metal-organic framework (Co-MOF) and nickel (Ni)-MOF
were successfully prepared by the modification method. Tetralin (C
10
H
12
) was used as the hydrogen donor for the catalytic cracking and hydrogenation modification study of the dehydrated crude oil from the Shengli Oilfield. The optimal reaction conditions were determined through orthogonal experiments
and the components of the crude oil and modified oil samples were analyzed. The results revealed that the nanoMOF catalysts were successfully prepared and exhibited high catalytic activity. They could catalyze the cracking of large molecules in heavy oil at mild temperatures (300 ℃)
leading to the decomposition of the hydrogen donor. When the mass fraction of the catalyst was≥0.2%
the mass fraction of the hydrogen donor was 1%
and the reaction temperature was 280 ℃
the Ni-MOF showed the best catalytic viscosity reduction effect. It could reduce the viscosity of heavy oil at 50 ℃ from 15761.9 mPa·s to 1266.2 mPa·s
with a viscosity reduction rate of 91.97%. The modification effect of Co-MOF was the next best
which could reduce the viscosity of heavy oil to 2500.1 mPa·s with a viscosity reduction rate of 84.14%. Molecular dynamics simulations revealed a strong interaction force between the MOF surface and asphaltene molecules. In the process of heavy-oil catalytic hydrogenation
the nano-MOF catalyst exhibited high catalytic activity. On the one hand
the empty d orbitals outside the metal atoms in the catalyst could polarize the carbon atoms in the organic matter
accelerating the breaking of long chains. On the other hand
the metal atoms in the catalyst could bond with the carbon
σ
bonds
breaking the carbon ecarbon bonds. This disrupted the structure of the recombined components in the crude oil
irreversibly reducing the viscosity of the heavy oil and improving its fluidity.
关键词
Keywords
references
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Effect of carbon modifications on the performance of hydrogenation catalysts
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High nitrogen carbon material with rich defects as a highly efficient metal-free catalyst for excellent catalytic performance of acetylene hydrochlorination
Controllable synthesis of Ni3S2/V3S4@NF-xF(x=0, 4, 8) catalysts for efficient hydrogen production in seawater and urea electrolyte
相关作者
Zhenhui Lv
Jianan Li
Tao Yang
Yibao Li
Chong Peng
Xiangzhao Hu
Junjie Sun
Wanzhen Zheng
相关机构
State Key Laboratory of Fine Chemicals, School of Chemical Engineering, Dalian University of Technology
Dalian Research Institute of Petroleum and Petrochemicals, SINOPEC
Key Laboratory of Organo-Pharmaceutical Chemistry, Gannan Normal University
Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering, Zhejiang University
Department of Material Chemistry, Nanchang Hangkong University