The feasibility of in-situ steam injection technology for oil shale underground retorting

被引:15
作者
Kang, Zhiqin [1 ,2 ]
Xie, Huanyu [1 ,2 ]
Zhao, Yangsheng [1 ,3 ]
Zhao, Jing
机构
[1] State Ctr Res & Dev Oil Shale Exploitat, Beijing 100083, Peoples R China
[2] Taiyuan Univ Technol, Key Lab In Situ Property Improving Min, Minist Educ, Taiyuan 030024, Peoples R China
[3] Taiyuan Univ Technol, Min Technol Inst, Taiyuan 030024, Peoples R China
基金
中国国家自然科学基金;
关键词
oil shale underground retorting; in-situ steam injection; superheated steam; energy crisis; HIGH-TEMPERATURE; PYROLYSIS; KINETICS; CONVERSION; EVOLUTION; PORE; GAS;
D O I
10.3176/oil.2020.2.03
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 basic principles of in-situ steam injection technology (MTI) for oil shale underground retorting were presented and related technical processes were analyzed. The convection heat transfer of steam enhanced the efficiency of heating the oil shale layer, which shortened the time to achieve a complete pyrolysis of organic matter. Under the influence of steam the migration capacity of oil and gas improved and the oil and gas products were carried out of the production well more quickly. Moreover, by using superheated steam (up to 570 degrees C) to pyrolyze oil shale, the oil recovery rate exceeded 95%, and the gas production per unit mass was 0.041 m(3)/kg, at the same time, the quality of oil and gas products greatly improved. The proportion of light oils accounted for 75.38%, and the yield of H-2 and CO in pyrolysis gases was increased The numerical simulation of steam injection indicated that the MTI technology was a rapid and efficient method for oil shale underground retorting to extract oil and gas by using the injection and production wells alternately for injecting steam. It demonstrated that the development period of the MTI technology was only about 300 days for an oil shale reservoir with a well spacing of 50 m, and the roof and floor of the oil shale layer served as thermal and steam insulation. The successful industrial implementation of the MTI technology in the future should alleviate the increasing energy crisis in China and reduce the country's dependence on imported petroleum.
引用
收藏
页码:119 / 138
页数:20
相关论文
共 42 条
[31]  
Ryan R.C., 2010, ACS SYM SER, P161
[32]   ENVIRONMENTAL IMPACT OF CLOSING OF OIL SHALE MINES ON RIVER WATER QUALITY IN NORTH-EASTERN ESTONIA [J].
Selberg, A. ;
Viik, M. ;
Pall, P. ;
Tenno, T. .
OIL SHALE, 2009, 26 (02) :169-183
[33]  
Symington W.A., 2010, Oil Shale: A Solution to the Liquid Fuel Dilemma, P185
[34]  
Tanaka P. L., 2011, 31 ANN OIL SHAL S CO
[35]  
Vinegar H., 2006, P 26 OIL SHAL S OCT
[36]   Experimental investigation on anisotropic permeability and its relationship with anisotropic thermal cracking of oil shale under high temperature and triaxial stress [J].
Wang, Guoying ;
Yang, Dong ;
Zhao, Yangsheng ;
Kang, Zhiqin ;
Zhao, Jing ;
Huang, Xudong .
APPLIED THERMAL ENGINEERING, 2019, 146 :718-725
[37]   Effect of pyrolysis on oil shale using superheated steam: A case study on the Fushun oil shale, China [J].
Wang, Lei ;
Zhao, Yangsheng ;
Yang, Dong ;
Kang, Zhiqin ;
Zhao, Jing .
FUEL, 2019, 253 :1490-1498
[38]   Macro and Meso Characteristics of In-Situ Oil Shale Pyrolysis Using Superheated Steam [J].
Wang, Lei ;
Yang, Dong ;
Li, Xiang ;
Zhao, Jing ;
Wang, Guoying ;
Zhao, Yangsheng .
ENERGIES, 2018, 11 (09)
[39]   CHANGES IN OIL SHALE CHARACTERISTICS DURING SIMULATED IN-SITU PYROLYSIS IN SUPERHEATED STEAM [J].
Wang, Lei ;
Yang, Dong ;
Zhao, Jing ;
Zhao, Yangsheng ;
Kang, Zhiqin .
OIL SHALE, 2018, 35 (03) :230-241
[40]   Investigation of Chinese oil shale resources comprehensive utilization performance [J].
Wang, Sha ;
Jiang, Xiumin ;
Han, Xiangxin ;
Tong, Jianhui .
ENERGY, 2012, 42 (01) :224-232