Pyrolysis Mechanism and Reservoir Simulation Study of Organic-Rich Shale during the In Situ Conversion via Supercritical Water Heating

被引:0
|
作者
Liu, Yaqian [1 ,2 ]
Yao, Chuanjin [1 ,2 ]
Meng, Xiangxiang [1 ,2 ]
Ma, Yuanbo [1 ,2 ]
Xu, Liang [1 ,2 ]
Du, Xinge [1 ,2 ]
机构
[1] China Univ Petr East China, State Key Lab Deep Oil & Gas, Key Lab Unconvent Oil & Gas Dev, Minist Educ, Qingdao 266580, Shandong, Peoples R China
[2] China Univ Petr East China, Sch Petr Engn, Qingdao 266580, Shandong, Peoples R China
基金
中国国家自然科学基金;
关键词
HUADIAN OIL-SHALE; HEAVY OIL; KINETICS; COMBUSTION; EXTRACTION; GENERATION; BITUMEN; HYDROCARBONS; APPLICABILITY; BEHAVIORS;
D O I
10.1021/acs.energyfuels.4c02100
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The low-medium maturity shale reservoir has garnered substantial interest because of its huge reserves and promising hydrocarbon generation potential. In this paper, a self-designed high-temperature and pressure pyrolysis experiment device was constructed. Experiments involving thermogravimetric pyrolysis and isothermal pyrolysis in supercritical water (SCW) environments were carried out on samples from the Longkou shale. The effect of SCW on organic-rich shale pyrolysis was understood by comparing the product characteristics of shale pyrolysis in SCW environments with dry environments. The complete kinetic models of kerogen pyrolysis in dry and SCW environments were established by fitting the composition characteristics of pyrolysis products using the nonlinear least-squares method. The numerical simulation of shale in situ conversion via SCW injection and electrical heating was investigated, and the performance evolution of thermal-reactive flow coupling was clarified. The results showed that SCW reduced the main temperature window of kerogen pyrolysis, and the total mass loss increased by 46.29% compared to that in a dry environment. SCW promoted the generation and subsequent release of pyrolysis hydrocarbons. SCW altered the compositional profile of the generated products, mainly by increasing CO2 content in pyrolysis gas, reducing olefin content, and effectively improving oil quality compared with the dry environment. SCW reduced the activation energy of kerogen pyrolysis by 41.65%, indicating that the reaction is more easily activated. More hydrocarbon products and less coke were generated. The superiority of kinetic models holds significant practical implications for the application of SCW heating organic-rich shale in situ conversion technology. The shale in situ conversion via SCW greatly shortened the production cycle and improved cumulative oil. Kerogen within the interwell region was completely pyrolyzed, the reservoir porosity increased to 2 times of the original value, and permeability was enhanced by 10 times after shale in situ conversion via SCW for 3 years.
引用
收藏
页码:14246 / 14261
页数:16
相关论文
共 50 条
  • [1] Experimental Investigation on the Pyrolysis and Conversion Characteristics of Organic-Rich Shale by Supercritical Water
    Yao, Chuanjin
    Meng, Fanyi
    Zhang, Hexing
    Di, Tianyuan
    Zhou, Yiran
    Du, Xinge
    [J]. ACS OMEGA, 2023, 8 (51): : 49046 - 49056
  • [2] Experimental investigation on the pyrolysis process and product distribution characteristics of organic-rich shale via supercritical water
    Meng, Fanyi
    Yao, Chuanjin
    Zhang, Hexing
    Zheng, Yang
    Di, Tianyuan
    Li, Lei
    [J]. FUEL, 2023, 333
  • [3] Mechanism and reservoir simulation study of the autothermic pyrolysis in-situ conversion process for oil shale recovery
    Guo, Wei
    Li, Qiang
    Deng, Sun-Hua
    Wang, Yuan
    Zhu, Chao-Fan
    [J]. PETROLEUM SCIENCE, 2023, 20 (02) : 1053 - 1067
  • [4] Mechanism and reservoir simulation study of the autothermic pyrolysis in-situ conversion process for oil shale recovery
    Wei Guo
    Qiang Li
    SunHua Deng
    Yuan Wang
    ChaoFan Zhu
    [J]. Petroleum Science, 2023, 20 (02) - 1067
  • [5] Performance Prediction and Heating Parameter Optimization of Organic-Rich Shale In Situ Conversion Based on Numerical Simulation and Artificial Intelligence Algorithms
    Liu, Yaqian
    Yao, Chuanjin
    Liu, Baishuo
    Xuan, Yangyang
    Du, Xinge
    [J]. ACS OMEGA, 2024, 9 (13): : 15511 - 15526
  • [6] Compositional Reservoir-Flow Simulation for Organic-Rich Gas Shale
    Olorode, O. M.
    Akkutlu, I. Y.
    Efendiev, Y.
    [J]. SPE JOURNAL, 2017, 22 (06): : 1963 - 1983
  • [7] Experimental Investigation on Composition and Pore Structure Evolution of Organic-Rich Shale via Supercritical Water
    Meng, Fanyi
    Yao, Chuanjin
    Du, Xinge
    Di, Tianyuan
    Zhang, Hexing
    Ge, Jiao
    [J]. ENERGY & FUELS, 2023, 37 (20) : 15671 - 15686
  • [8] Experimental study on the damage of organic-rich shale during water-shale interaction
    Wang, Yuepeng
    Liu, Xiangjun
    Liang, Lixi
    Xiong, Jian
    [J]. JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2020, 74
  • [9] Pore Evolution Characteristics of Marine Organic-Rich Shale Based on a Pyrolysis Simulation Experiment
    Zhao, Xin
    Zhou, Wen
    Xu, Hao
    Chen, Wenling
    Jiang, Ke
    [J]. MINERALS, 2022, 12 (09)
  • [10] Study on the influence of non-temperature factors on the migration path of organic carbon and evolution characteristics of pore permeability parameters of organic-rich shale under supercritical water in situ conversion
    Xie, Tian
    Zhao, Qiuyang
    Jin, Hui
    Wang, Yechun
    Guo, Liejin
    [J]. OIL SHALE, 2024, 41 (03) : 189 - 207