Numerical simulation study on the ultimate injection concentration and injection strategy of a proppant in hydraulic fracturing

被引:3
作者
Wu, Jianfa [1 ]
He, Yuting [2 ]
Zeng, Bo [1 ]
Huang, Haoyong [1 ]
Gui, Junchuan [1 ]
Guo, Yintong [2 ]
机构
[1] PetroChina Southwest Oil & Gas Field Co, Shale Gas Res Inst, Chengdu, Peoples R China
[2] Chinese Acad Sci, Inst Rock & Soil Mech, State Key Lab Geomech & Geotech Engn, Wuhan, Peoples R China
关键词
hydraulic fracturing; proppant; transport; proppant plugging; ultimate concentration; SUPERCRITICAL CO2; TRANSPORT;
D O I
10.3389/fenrg.2024.1370970
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 injection volume and the distribution of a proppant inside a fracture have a direct impact on the stimulation effect of fracturing. In this study, a new proppant transport model was established based on the Euler method. In this model, the proppant plugging element allows fluid to pass through. Furthermore, the proppant plugging process was successfully simulated based on this model. The proppant transport and ultimate injection concentration under different injection modes were discussed. The numerical simulation results indicate that compared with the strategy of constant concentration, the strategy of a stepwise increasing concentration can make the proppant distribution in the fracture more uniform. The strategy of injection with a stepwise increasing concentration and a periodic injection with a stepwise increasing concentration can increase the injection volume of the proppant by 25%. In the fracture network, a 67% increase in the number of branch fractures resulted in a 17% increase in the maximum proppant injection volume. If the branch fracture width is reduced by 50%, the maximum proppant injection volume is reduced by 17%.
引用
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页数:14
相关论文
共 31 条
[1]   Slickwater Proppant Transport in Hydraulic Fractures: New Experimental Findings and Scalable Correlation [J].
Alotaibi, Msalli A. ;
Miskimins, Jennifer L. .
SPE PRODUCTION & OPERATIONS, 2018, 33 (02) :164-178
[2]  
Batchelor G.K., 1967, An Introduction to Fluid Dynamics
[3]   Numerical study of the effect of propped surface area and fracture conductivity on shale gas production: Application for multi-size proppant pumping schedule design [J].
Bhandakkar, Parth ;
Siddhamshetty, Prashanth ;
Sang-Il Kwon, Joseph .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2020, 79 (79)
[4]   Model development of proppant transport through hydraulic fracture network and parametric study [J].
Chang, Oliver ;
Dilmore, Robert ;
Wang, John Yilin .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2017, 150 :224-237
[5]  
Dayan A., 2009, SPE ANN TECHNICAL C
[6]   Self-supporting conductivity in shallow and ultra shallow shale reservoirs: Under hydraulic, CO2 and Sc-CO2 fracturing [J].
He, Yuting ;
Chen, Zhangxin ;
Li, Xiaogang ;
Yang, Zhaozhong ;
Jiang, Ming ;
Ran, Longhai .
GEOENERGY SCIENCE AND ENGINEERING, 2023, 223
[7]   Effect of proppant addition schedule on the proppant distribution in a straight fracture for slickwater treatment [J].
Hu, Xiaodong ;
Wu, Kan ;
Li, Gensheng ;
Tang, Jizhou ;
Shen, Zhonghou .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2018, 167 :110-119
[8]   Exploring the influence of rock inherent heterogeneity and grain size on hydraulic fracturing using discrete element modeling [J].
Huang, Liuke ;
Liu, Jianjun ;
Zhang, Fengshou ;
Dontsov, Egor ;
Damjanac, Branko .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2019, 176 :207-220
[9]  
ITASCACG, 2024, 3 DEC 7.0 documentation
[10]  
KERN LR, 1959, T AM I MIN MET ENG, V216, P403