PDE-based geophysical modelling using finite elements: Examples from 3D resistivity and 2D magnetotellurics

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Abstract

We present a general finite-element solver, escript, tailored to solve geophysical forward and inverse modeling problems in terms of partial differential equations (PDEs) with suitable boundary conditions. Escript's abstract interface allows geoscientists to focus on solving the actual problem without being experts in numerical modeling. General-purpose finite element solvers have found wide use especially in engineering fields and find increasing application in the geophysical disciplines as these offer a single interface to tackle different geophysical problems. These solvers are useful for data interpretation and for research, but can also be a useful tool in educational settings. This paper serves as an introduction into PDE-based modeling with escript where we demonstrate in detail how escript is used to solve two different forward modeling problems from applied geophysics (3D DC resistivity and 2D magnetotellurics). Based on these two different cases, other geophysical modeling work can easily be realized. The escript package is implemented as a Python library and allows the solution of coupled, linear or non-linear, time-dependent PDEs. Parallel execution for both shared and distributed memory architectures is supported and can be used without modifications to the scripts.

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APA

Schaa, R., Gross, L., & Du Plessis, J. (2016). PDE-based geophysical modelling using finite elements: Examples from 3D resistivity and 2D magnetotellurics. Journal of Geophysics and Engineering, 13(2), S59–S73. https://doi.org/10.1088/1742-2132/13/2/S59

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