A fracture conductivity model for channel fracturing based on lattice-Boltzmann-method and computational-fluid-dynamics

被引:0
|
作者
Zhu, Haiyan [1 ]
Huang, Chuhao [1 ]
Zhang, Minghai [2 ]
Wang, Zenglin [3 ]
Li, Xiaorong [4 ]
机构
[1] State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation, Chengdu University of Technology, Sichuan, Chengdu,610059, China
[2] Baikouquan Oil Production Plant, PetroChina Xinjiang Oilfield Company, Xinjiang, Karamay,834000, China
[3] SINOPEC Shengli Oilfield Company, Dongying,257000, China
[4] College of Safety and Ocean Engineering, China University of Petroleum, Beijing,102249, China
基金
中国国家自然科学基金;
关键词
Computational fluid dynamics - Deformation - Elastic moduli - Fracture - Kinetic theory;
D O I
暂无
中图分类号
学科分类号
摘要
This paper introduces a new method to predict fracture conductivity for channel fracturing by lattice-Boltzmann-method (LBM) and computational-fluid-dynamics (CFD). Firstly, the deformation of the proppant pillar is tested using uniaxial compression experiments. A non-uniform fracture width model considering the nonlinear deformation of fracture and the embedment of proppant pillars is established. Then, an improved model based on LBM-CFD is proposed to simulate the flow field within the fracture and calculate the fracture conductivity. Finally, parametric analysis is carried out to understand the effects of closure stress, elastic modulus of the reservoir rock, proppant pillar's shape and proppant pillar's spacing on fracture width and conductivity. The results showed that the conductivity decreases gradually with closure stress and increases with elastic modulus. The proppant pillar with the smallest shape ratio can provide the highest conductivity. When the ratio of the proppant pillar's diameter to spacing is about 0.5, the conductivity for channel fracturing is best. The time of proppant-laden fluid (PLF) pulse and proppant-free fluid (PFF) pulse are the keys to the successful implementation of channel fracturing. The simulation results have been applied to the optimization of the pulse time in Shengli Oilfield. The field application proves that channel fracturing design based on our method could result in a large increase in well production. This paper gives critical insights for predicting the conductivity for channel fracturing, which could serve as guidelines for the optimization of proppant pillar's parameters and pulse time in channel fracturing design. © 2022 Elsevier B.V.
引用
收藏
相关论文
共 50 条
  • [1] A fracture conductivity model for channel fracturing based on lattice-Boltzmann-method and computational-fluid-dynamics
    Zhu, Haiyan
    Huang, Chuhao
    Zhang, Minghai
    Wang, Zenglin
    Li, Xiaorong
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2022, 217
  • [2] Discrete-Element-Method/Computational-Fluid-Dynamics Coupling Simulation of Proppant Embedment and Fracture Conductivity After Hydraulic Fracturing
    Zhang, Fengshou
    Zhu, Haiyan
    Zhou, Hanguo
    Guo, Jianchun
    Huang, Bo
    SPE JOURNAL, 2017, 22 (02): : 632 - 644
  • [3] A fracture conductivity model for channel fracturing and its implementation with Discrete Element Method
    Zhu, Haiyan
    Shen, Jiadong
    Zhang, Fengshou
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2019, 172 : 149 - 161
  • [4] LATTICE BOLTZMANN COMPUTATIONAL FLUID-DYNAMICS IN 3 DIMENSIONS
    CHEN, SY
    WANG, Z
    SHAN, XW
    DOOLEN, GD
    JOURNAL OF STATISTICAL PHYSICS, 1992, 68 (3-4) : 379 - 400
  • [5] A Coupling Model of Distinct Lattice Spring Model and Lattice Boltzmann Method for Hydraulic Fracturing
    Jiang, Chao
    Zhao, Gao-Feng
    ROCK MECHANICS AND ROCK ENGINEERING, 2019, 52 (10) : 3675 - 3690
  • [6] A Coupling Model of Distinct Lattice Spring Model and Lattice Boltzmann Method for Hydraulic Fracturing
    Chao Jiang
    Gao-Feng Zhao
    Rock Mechanics and Rock Engineering, 2019, 52 : 3675 - 3690
  • [7] Computational fluid dynamics in the microcirculation and microfluidics: what role can the lattice Boltzmann method play?
    O'Connor, Joseph
    Day, Philip
    Mandal, Parthasarathi
    Revell, Alistair
    INTEGRATIVE BIOLOGY, 2016, 8 (05) : 589 - 602
  • [8] Identification of computational-fluid-dynamics based unsteady aerodynamic models for aeroelastic analysis
    Raveh, D.E., 1600, American Institute of Aeronautics and Astronautics Inc. (41):
  • [9] Identification of computational-fluid-dynamics based unsteady aerodynamic models for aeroelastic analysis
    Raveh, DE
    JOURNAL OF AIRCRAFT, 2004, 41 (03): : 620 - 632
  • [10] Velocity spectrum model for turbulence ingestion noise from computational-fluid-dynamics calculations
    Lysak, Peter D.
    Brungart, Timothy A.
    Lysak, P.D., 1827, American Inst. Aeronautics and Astronautics Inc. (41):