The recently introduced phase-field approach for pressurized fractures in a porous medium offers various attractive computational features for numerical simulations of cracks such as joining, branching, and nonplanar propagation in possibly heterogeneous media. In this paper, the pressurized phase-field framework is extended to fluid-filled fractures in which the pressure is computed from a generalized parabolic diffraction problem. Here, the phase-field variable is used as an indicator function to combine reservoir and fracture pressure. The resulting three-field framework (elasticity, phase field, pressure) is a multiscale problem that is based on the Biot equations. The proposed numerical solution algorithm iteratively decouples the equations using a fixed-stress splitting. The framework is substantiated with several numerical benchmark tests in two and three dimensions.
机构:
Univ Paris Est, Ecole Ponts ParisTech, Lab Navier, ENPC,IFSTTAR,CNRS, F-77455 Marne La Vallee, France
CNRS, UMR EDF, Lab LaMSID, F-92140 Clamart, FranceUniv Paris Est, Ecole Ponts ParisTech, Lab Navier, ENPC,IFSTTAR,CNRS, F-77455 Marne La Vallee, France
Carrier, Benoit
;
Granet, Sylvie
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机构:
CNRS, UMR EDF, Lab LaMSID, F-92140 Clamart, FranceUniv Paris Est, Ecole Ponts ParisTech, Lab Navier, ENPC,IFSTTAR,CNRS, F-77455 Marne La Vallee, France
机构:
Univ Paris Est, Ecole Ponts ParisTech, Lab Navier, ENPC,IFSTTAR,CNRS, F-77455 Marne La Vallee, France
CNRS, UMR EDF, Lab LaMSID, F-92140 Clamart, FranceUniv Paris Est, Ecole Ponts ParisTech, Lab Navier, ENPC,IFSTTAR,CNRS, F-77455 Marne La Vallee, France
Carrier, Benoit
;
Granet, Sylvie
论文数: 0引用数: 0
h-index: 0
机构:
CNRS, UMR EDF, Lab LaMSID, F-92140 Clamart, FranceUniv Paris Est, Ecole Ponts ParisTech, Lab Navier, ENPC,IFSTTAR,CNRS, F-77455 Marne La Vallee, France