Multiphysics modelling in PyLith: poroelasticity

Author:

Walker Robert L1,Knepley Matthew G1,Aagaard Brad T2,Williams Charles A3

Affiliation:

1. University at Buffalo, Department of Computer Science and Engineering , Buffalo 14260-2500, NY , US

2. U.S. Geological Survey , Golden, CO 80401 , US

3. GNS Science , Lower Hutt 5040 , NZ

Abstract

SUMMARY PyLith, a community, open-source code for modelling quasi-static and dynamic crustal deformation with an emphasis on earthquake faulting, has recently been updated with a flexible multiphysics implementation. We demonstrate the versatility of the multiphysics implementation by extending the code to model fully coupled continuum poromechanics. We verify the newly incorporated physics using standard benchmarks for a porous medium saturated with a slightly compressible fluid. The benchmarks include the 1-D consolidation problem as outlined by Terzaghi, Mandel’s problem for the 2-D case, and Cryer’s problem for the 3-D case. All three benchmarks have been added to the PyLith continuous integration test suite. We compare the closed form analytical solution for each benchmark against solutions generated by our updated code, and lastly, demonstrate that the poroelastic material formulation may be used alongside the existing fault implementation in PyLith.

Funder

National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Geochemistry and Petrology,Geophysics

Reference107 articles.

1. Pylith: a finite-element code for modelling quasi-static and dynamic crustal deformation;Aagaard;Eos Trans. AGU,2007

2. A domain decomposition approach to implementing fault slip in finite-element models of quasi-static and dynamic crustal deformation;Aagaard;J. geophys. Res.,2013

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