An efficient computational framework for height-contained growing and intersecting hydraulic fracturing simulation via SGBEM-FEM
From MaRDI portal
Publication:6185202
DOI10.1016/j.cma.2023.116653MaRDI QIDQ6185202
Jing Hu, Mark E. Mear, Charles G. Mood
Publication date: 29 January 2024
Published in: Computer Methods in Applied Mechanics and Engineering (Search for Journal in Brave)
Cites Work
- Coupling schemes for modeling hydraulic fracture propagation using the XFEM
- A regularized boundary integral equation method for elastodynamic crack problems
- Integral equations with non integrable kernels
- Symmetric weak-form integral equation method for three-dimensional fracture analysis
- On the moving boundary conditions for a hydraulic fracture
- A variational phase-field model for hydraulic fracturing in porous media
- A consistent phase field model for hydraulic fracture propagation in poroelastic media
- Phase-field modeling of hydraulic fracture
- An implicit level set method for modeling hydraulically driven fractures
- A weakly-singular SGBEM for analysis of cracks in 3D anisotropic media
- A computational framework for well production simulation: coupling steady state Darcy flow and channel flow by SGBEM-FEM
- Mechanics of Hydraulic Fractures
- On the implementation of the galerkin approach in the boundary element method
- The crack tip region in hydraulic fracturing
- AN ADAPTIVE FINITE ELEMENT SCHEME FOR HYDRAULIC FRACTURING WITH PROPPANT TRANSPORT
- The near-tip region of a fluid-driven fracture propagating in a permeable elastic solid
- Arbitrary branched and intersecting cracks with the extended finite element method
- A Phase-Field Method for Propagating Fluid-Filled Fractures Coupled to a Surrounding Porous Medium
- A generalized finite element method for the simulation of three-dimensional dynamic crack propagation.
- Numerical implementation of displacement discontinuity method and its application in hydraulic fracturing.
This page was built for publication: An efficient computational framework for height-contained growing and intersecting hydraulic fracturing simulation via SGBEM-FEM