Numerical simulation of near wellbore fracture propagation in interbedded continental shales with competing perforations

被引:0
|
作者
Yong Qin
Xian Shi
Qinglin Shan
Mukun Li
Songcai Han
Qi Gao
机构
[1] China University of Geosciences,School of Energy Resources
[2] CNPC Research Institute of Petroleum Exploration and Development,College of Petroleum Engineering
[3] China University of Petroleum (East China),Key Laboratory of Unconventional Oil and Gas Development
[4] China University of Petroleum (East China),College of Energy and Mining Engineering
[5] Ministry of Education,College of Safety and Environmental Engineering
[6] Shandong University of Science and Technology,College of Energy
[7] Shandong University of Science and Technology,School of Engineering
[8] Chengdu University of Technology,undefined
[9] The University of Western Australia,undefined
关键词
In-plane perforation; Laminated shale; Hydraulic fracturing; Global cohesive element; Finite element method;
D O I
暂无
中图分类号
学科分类号
摘要
To reduce near wellbore fracture complexity in continental laminated shales, in-plane perforations completion technology is introduced. The global embedded cohesive elements are capable to simulating arbitrary fracture propagation growth while the laminae effects on fracture propagation path can be considered in established finite element model. Numerical simulations reflect that the existence of weak micro fractures only locally alter the fracture propagation path but laminae can change the fracture propagation path greatly. Furthermore, the in-situ stress anisotropy, pump rate, perforation intersection angle and perforation angle with laminae are critical factors for affecting the fracture propagation path and breakdown pressure. There is a great impact of laminae on the fracture branching at the contact interface and hydraulic fracture tends to cross laminae at high approaching angle but propagate horizontally along laminae at low approaching angle. In most cases, hydraulic fracture tends to propagate along the laminae rather than across the laminae. The adjustment of pump rate, fluid viscosity, perforation intersection angle and perforation angle with laminae can enhance the possibilities of hydraulic fracture across laminae. It was also found that hydraulic fractures induced from different perforations can interact and overlap with each other, resulting in different fracture geometry and pressure behavior for individual fracture. The fracture width of interior fracture is almost close at the near wellbore zone at the end of pumping, and exterior fractures generally deviated away from the perforation tunnel direction because of stress interference of neighboring fractures. Additionally, although a fracture initiated initially from a perforation tunnel to short distance, hydraulic fractures still finally would reorient itself to maximum principle in-situ stress direction, thus increase more chances of creating one large and main fracture along the maximum principle in-situ stress orientation with larger horizontal stress contrast. Therefore, the existence of laminae can enhance the potential of fracture complexity near wellbore but the selection of suitable perforation scenarios in one defining plane can increase the possibility of form a main fracture. The simulation results from this study offer some important insights to hydraulic fracturing design with multiple perforations on interbedded continental shales stimulation.
引用
收藏
相关论文
共 50 条
  • [41] Numerical simulation of hydraulic fracture propagation in laminated shale reservoirs
    Zhou Tong
    Wang Haibo
    Li Fengxia
    Li Yuanzhao
    Zou Yushi
    Zhang Chi
    PETROLEUM EXPLORATION AND DEVELOPMENT, 2020, 47 (05) : 1117 - 1130
  • [42] Numerical Simulation of Fracture Propagation of Concrete on Meso-Level
    Wu, Feng
    MANUFACTURING PROCESSES AND SYSTEMS, PTS 1-2, 2011, 148-149 : 80 - 83
  • [43] Numerical simulation of hydraulic fracture propagation in shale with plastic deformation
    Liu, Chuang
    Wang, Zexing
    INTERNATIONAL JOURNAL OF FRACTURE, 2022, 238 (02) : 115 - 132
  • [44] Numerical simulation of fracture propagation of rock under uniaxial tension
    Zhang, De-Hai
    Zhu, Fu-Sheng
    Xing, Ji-Bo
    Yantu Gongcheng Xuebao/Chinese Journal of Geotechnical Engineering, 2005, 27 (09): : 1008 - 1011
  • [45] Simulation of guided wave propagation near numerical Brillouin zones
    Kijanka, Piotr
    Staszewski, Wieslaw J.
    Packo, Pawel
    HEALTH MONITORING OF STRUCTURAL AND BIOLOGICAL SYSTEMS 2016, 2016, 9805
  • [46] Numerical Simulation of Hydraulic Fracture Propagation in Coal Seams with Discontinuous Natural Fracture Networks
    Wang, Shen
    Li, Huamin
    Li, Dongyin
    PROCESSES, 2018, 6 (08)
  • [47] Numerical investigation of fluid-driven debonding fracture propagation along wellbore interfaces during hydraulic fracturing
    Gao, Qi
    Cheng, Yuanfang
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2018, 40 (10) : 1215 - 1225
  • [48] Numerical simulation of hydraulic fracture propagation under energy supplement conditions
    Dong, Jingfeng
    Qu, Hongyan
    Zhang, Jingchun
    Han, Feipeng
    Zhou, Fujian
    Shi, Peize
    Shi, Jilong
    Yu, Tianxi
    FRONTIERS IN EARTH SCIENCE, 2023, 11
  • [49] Numerical simulation of fracture propagation in different fracturing modes of “well factory”
    Zhang H.
    Chen J.
    Wang T.
    Zhao Z.
    Kou Y.
    Zhongnan Daxue Xuebao (Ziran Kexue Ban)/Journal of Central South University (Science and Technology), 2022, 53 (09): : 3561 - 3574
  • [50] Numerical simulation of hydraulic fracture propagation in weakly consolidated sandstone reservoirs
    Lin Hai
    Deng Jin-gen
    Liu Wei
    Xie Tao
    Xu Jie
    Liu Hai-long
    JOURNAL OF CENTRAL SOUTH UNIVERSITY, 2018, 25 (12) : 2944 - 2952