Progress in Catalytic Pyrolysis of Oil Shale

被引:15
作者
Li D. [1 ]
Pan H. [1 ]
Di X. [1 ]
Liu X. [2 ]
Hu H. [3 ]
机构
[1] College of Petroleum Engineering, Liaoning Petrochemical University, Fushun
[2] Thermal Power Plant of PetroChina Fushun Petrochemical Company, Funshun
[3] CAS Key Laboratory of Nuclear Materials and Safety Assessment, Institute of Metal Research, Chinese Academy of Sciences, Shenyang
关键词
Oil shale - Catalysts - Energy resources;
D O I
10.1155/2021/6759176
中图分类号
学科分类号
摘要
This paper briefly describes the research status of oil shale pyrolysis technology and the main factors affecting oil shale pyrolysis, with emphasis on four kinds of commonly used catalysts: The effects of natural minerals, metal compounds, molecular sixes, and supported catalysts on the pyrolysis of oil shale were discussed. The changes of the pyrolysis mechanism and product composition of oil shale with the addition of different catalysts were discussed. Finally, the development direction of preparation of new catalysts was discussed, in order to provide a prospect for the development and utilization of unconventional and strategic alternative energy resources around the world. © 2021 Donghao Li et al.
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共 37 条
[1]  
Li H., Li G., Yang Q., Zhou H., Modeling and performance analysis of shale oil and methane cogeneration by oil shale pyrolysis integrated with a pyrolysis gas methanation process, Energy & Fuels, 34, 9, pp. 11690-11698, (2020)
[2]  
Kang Z., Zhao Y., Yang D., Review of oil shale in-situ conversion technology, Applied Energy, 269, 1, (2020)
[3]  
Mu M., Han X., Jiang X., Combined fluidized bed retorting and circulating fluidized bed combustion system of oil shale: 3. Exergy analysis, Energy, 151, pp. 930-939, (2018)
[4]  
Yang Q., Qian Y., Kraslawski A., Zhou H., Yang S., Advanced exergy analysis of an oil shale retorting process, Applied Energy, 165, 1, pp. 405-415, (2016)
[5]  
Yang Q., Qian Y., Kraslawski A., Zhou H., Yang S., Framework for advanced exergoeconomic performance analysis and optimization of an oil shale retorting process, Energy, 109, 15, pp. 62-76, (2016)
[6]  
Saif T., Lin Q., Bijeljic B., Blunt M.J., Microstructural imaging and characterization of oil shale before and after pyrolysis, Fuel, 197, 1, pp. 562-574, (2017)
[7]  
Wang L., Yang D., Kang Z., Evolution of permeability and mesostructure of oil shale exposed to high- temperature water vapor, Fuel, 290, (2021)
[8]  
Geng Y., Liang W., Liu J., Cao M., Kang Z., Evolution of pore and fracture structure of oil shale under high temperature and high pressure, Energy & Fuels, 31, 10, pp. 10404-10413, (2017)
[9]  
Jiang H., Deng S., Chen J., Zhang M., Li S., Shao Y., Yang J., Li J., Effect of hydrothermal pretreatment on product distribution and characteristics of oil produced by the pyrolysis of Huadian oil shale, Energy Conversion and Management, 143, JUL, pp. 505-512, (2017)
[10]  
Yang D., Wang L., Zhao Y., Kang Z., Investigating pilot test of oil shale pyrolysis and oil and gas upgrading by water vapor injection, Journal of Petroleum Science and Engineering, 196, (2021)