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A multi-resolution approach to hydraulic fracture simulation

Publication ,  Journal Article
Costa, A; Cusini, M; Jin, T; Settgast, R; Dolbow, JE
Published in: International Journal of Fracture
September 1, 2022

We present a multi-resolution approach for constructing model-based simulations of hydraulic fracturing, wherein flow through porous media is coupled with fluid-driven fracture. The approach consists of a hybrid scheme that couples a discrete crack representation in a global domain to a phase-field representation in a local subdomain near the crack tip. The multi-resolution approach addresses issues such as the computational expense of accurate hydraulic fracture simulations and the difficulties associated with reconstructing crack apertures from diffuse fracture representations. In the global domain, a coupled system of equations for displacements and pressures is considered. The crack geometry is assumed to be fixed and the displacement field is enriched with discontinuous functions. Around the crack tips in the local subdomains, phase-field sub-problems are instantiated on the fly to propagate fractures in arbitrary, mesh independent directions. The governing equations and fields in the global and local domains are approximated using a combination of finite-volume and finite element discretizations. The efficacy of the method is illustrated through various benchmark problems in hydraulic fracturing, as well as a new study of fluid-driven crack growth around a stiff inclusion.

Duke Scholars

Published In

International Journal of Fracture

DOI

EISSN

1573-2673

ISSN

0376-9429

Publication Date

September 1, 2022

Volume

237

Issue

1-2

Start / End Page

165 / 188

Related Subject Headings

  • Mechanical Engineering & Transports
  • 4017 Mechanical engineering
  • 4016 Materials engineering
  • 4005 Civil engineering
  • 0913 Mechanical Engineering
  • 0912 Materials Engineering
  • 0905 Civil Engineering
 

Citation

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Costa, A., Cusini, M., Jin, T., Settgast, R., & Dolbow, J. E. (2022). A multi-resolution approach to hydraulic fracture simulation. International Journal of Fracture, 237(1–2), 165–188. https://doi.org/10.1007/s10704-022-00662-y
Costa, A., M. Cusini, T. Jin, R. Settgast, and J. E. Dolbow. “A multi-resolution approach to hydraulic fracture simulation.” International Journal of Fracture 237, no. 1–2 (September 1, 2022): 165–88. https://doi.org/10.1007/s10704-022-00662-y.
Costa A, Cusini M, Jin T, Settgast R, Dolbow JE. A multi-resolution approach to hydraulic fracture simulation. International Journal of Fracture. 2022 Sep 1;237(1–2):165–88.
Costa, A., et al. “A multi-resolution approach to hydraulic fracture simulation.” International Journal of Fracture, vol. 237, no. 1–2, Sept. 2022, pp. 165–88. Scopus, doi:10.1007/s10704-022-00662-y.
Costa A, Cusini M, Jin T, Settgast R, Dolbow JE. A multi-resolution approach to hydraulic fracture simulation. International Journal of Fracture. 2022 Sep 1;237(1–2):165–188.
Journal cover image

Published In

International Journal of Fracture

DOI

EISSN

1573-2673

ISSN

0376-9429

Publication Date

September 1, 2022

Volume

237

Issue

1-2

Start / End Page

165 / 188

Related Subject Headings

  • Mechanical Engineering & Transports
  • 4017 Mechanical engineering
  • 4016 Materials engineering
  • 4005 Civil engineering
  • 0913 Mechanical Engineering
  • 0912 Materials Engineering
  • 0905 Civil Engineering