Numerical Investigation of Hydraulic Fracture Propagation Based on Cohesive Zone Model in Naturally Fractured Formations

被引:29
作者
Li, Jianxiong [1 ]
Dong, Shiming [1 ]
Hua, Wen [1 ]
Li, Xiaolong [2 ]
Pan, Xin [1 ]
机构
[1] Sichuan Univ, Minist Educ, Coll Architecture & Environm, Key Lab Deep Underground Sci & Engn, Chengdu 610065, Sichuan, Peoples R China
[2] Sinopec Petr Explorat & Prod Res Inst, Beijing 100083, Peoples R China
基金
中国国家自然科学基金;
关键词
hydraulic fractures; PPCZ; multitude parameters; propagation pattern; stress interference; naturally fracture; SIMULATION; SHALE;
D O I
10.3390/pr7010028
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Complex propagation patterns of hydraulic fractures often play important roles in naturally fractured formations due to complex mechanisms. Therefore, understanding propagation patterns and the geometry of fractures is essential for hydraulic fracturing design. In this work, a seepage-stress-damage coupled model based on the finite pore pressure cohesive zone (PPCZ) method was developed to investigate hydraulic fracture propagation behavior in a naturally fractured reservoir. Compared with the traditional finite element method, the coupled model with global insertion cohesive elements realizes arbitrary propagation of fluid-driven fractures. Numerical simulations of multiple-cluster hydraulic fracturing were carried out to investigate the sensitivities of a multitude of parameters. The results reveal that stress interference from multiple-clusters is responsible for serious suppression and diversion of the fracture network. A lower stress difference benefits the fracture network and helps open natural fractures. By comparing the mechanism of fluid injection, the maximal fracture network can be achieved with various injection rates and viscosities at different fracturing stages. Cluster parameters, including the number of clusters and their spacing, were optimal, satisfying the requirement of creating a large fracture network. These results offer new insights into the propagation pattern of fluid driven fractures and should act as a guide for multiple-cluster hydraulic fracturing, which can help increase the hydraulic fracture volume in naturally fractured reservoirs.
引用
收藏
页数:18
相关论文
共 35 条
[11]   Numerical investigation of hydraulic fracture propagation in a layered reservoir using the cohesive zone method [J].
Guo, Jianchun ;
Luo, Bo ;
Lu, Cong ;
Lai, Jie ;
Ren, Jichuan .
ENGINEERING FRACTURE MECHANICS, 2017, 186 :195-207
[12]   Numerical simulation of interaction of hydraulic fracture and natural fracture based on the cohesive zone finite element method [J].
Guo, Jianchun ;
Zhao, Xing ;
Zhu, Haiyan ;
Zhang, Xudong ;
Pan, Rui .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2015, 25 :180-188
[13]   Numerical simulation of hydraulic fracture propagation in shale gas reservoir [J].
Guo, Tiankui ;
Zhang, Shicheng ;
Zou, Yushi ;
Xiao, Bo .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2015, 26 :847-856
[14]   Experimental study of hydraulic fracturing for shale by stimulated reservoir volume [J].
Guo, Tiankui ;
Zhang, Shicheng ;
Qu, Zhanqing ;
Zhou, Tong ;
Xiao, Yongshun ;
Gao, Jun .
FUEL, 2014, 128 :373-380
[15]  
Haddad M., 2014, P SIM COMM C PROV RI
[16]   A new three dimensional approach to numerically model hydraulic fracturing process [J].
Hamidi, Farzin ;
Mortazavi, Ali .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2014, 124 :451-467
[17]   Modeling hydraulic fracture propagation using cohesive zone model equipped with frictional contact capability [J].
Li, Y. ;
Deng, J. G. ;
Liu, W. ;
Feng, Y. .
COMPUTERS AND GEOTECHNICS, 2017, 91 :58-70
[18]   High injection rate stimulation for improving the fracture complexity in tight-oil sandstone reservoirs [J].
Liu, Chuang ;
Shi, Fang ;
Zhang, YongPing ;
Zhang, YuGuang ;
Deng, DaWei ;
Wang, XiaoLong ;
Liu, He ;
Wu, HengAn .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2017, 42 :133-141
[19]  
Manchanda R., 2012, P 46 US ROCK MECH GE
[20]  
Olson J.E., 2008, 42 US ROCK MECH S AM