34 / 2025-11-19 10:43:09
Poroelastic Effects in Analysis of Pore Pressure and Strain Around a 3D Propagating Hydraulic Fracture
Abstract Pending
高千 / 西安石油大学
Pore pressure and strain monitoring around a hydraulic fracture are used to monitor its size and propagation behavior, such as length and height growth, for assessing the hydraulic connectivity between injection and production wellbores in unconventional and geothermal reservoirs. Pore pressure monitoring and fiber-optic distributed acoustic sensing (DAS) usually have used an elastic fracture model without considering coupled poroelastic processes. In this study, a 3D hydromechanical model is developed to study poroelastic phenomena in relation to pore pressure and stress distribution caused by hydraulic fracturing. Fractures and the surrounding poroelastic rock are discretized explicitly, and nonlinear mechanical behaviors of hydraulic fractures are determined through a cohesive law. Fluid pressurization of a fracture reveals that the induced total stresses in the surrounding rock remain approximately constant; however, the induced pore pressure gradually increases due to fluid leakoff and the mean stress increase via the Skempton’s pore pressure coefficient. Strain analysis at locations close to the fracture propagation path demonstrates that the diffusion can lead to the generation of tensile strain, in contrast to an elastic model which predicts a compressive strain in the direction perpendicular to the fracture surface. Importantly, we show that at a monitoring point, the strain variation from tension to compression can also occur due to poroelastic coupling rather than the fracture arrival and departure. Tensile strain is distributed around the fracture edge and ahead of it, and in the close vicinity of the fracture surfaces. The pattern of tensile strain distribution is generally consistent with the pore pressure distribution. In addition, numerical results suggest hydraulic fractures tend to propagate toward regions with relatively lower pore pressure, promoting asymmetric growth, which can lead to the well-known fracture-driven interactions.
Important Date
  • Conference Date

    Nov 27

    2025

    to

    Nov 29

    2025

  • Nov 29 2025

    Draft paper submission deadline

  • Nov 29 2025

    Registration deadline

Sponsored By
重庆大学
Organized By
煤矿灾害动力学与控制全国重点实验室
重庆大学资源与安全学院
《Earth Energy Science》/地球能源科学(英文)
中煤科工集团重庆研究院有限公司
Supported By
自然资源部复杂构造区非常规天然气评价与开发重点实验室
重庆市地质矿产勘查开发集团有限公司
InterPore China (国际多孔介质学会中国分会)
贵州大学
西南石油大学