4.6 Article

Anisotropic three-dimensional inversion of CSEM data using finite-element techniques on unstructured grids

Journal

GEOPHYSICAL JOURNAL INTERNATIONAL
Volume 213, Issue 2, Pages 1056-1072

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/gji/ggy029

Keywords

Electrical anisotropy; Marine electromagnetics; Inverse theory; Numerical approximations and analysis

Funding

  1. China Scholarship Council [2009637116]

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In this paper, we present a recently developed anisotropic 3-D inversion framework for interpreting controlled-source electromagnetic (CSEM) data in the frequency domain. The framework integrates a high-order finite-element forward operator and a Gauss-Newton inversion algorithm. Conductivity constraints are applied using a parameter transformation. We discretize the continuous forward and inverse problems on unstructured grids for a flexible treatment of arbitrarily complex geometries. Moreover, an unstructured mesh is more desirable in comparison to a single rectilinear mesh for multisource problems because local grid refinement will not significantly influence the mesh density outside the region of interest. The non-uniform spatial discretization facilitates parametrization of the inversion domain at a suitable scale. For a rapid simulation of multisource EM data, we opt to use a parallel direct solver. We further accelerate the inversion process by decomposing the entire data set into subsets with respect to frequencies (and transmitters if memory requirement is affordable). The computational tasks associated with each data subset are distributed to different processes and run in parallel. We validate the scheme using a synthetic marine CSEM model with rough bathymetry, and finally, apply it to an industrial-size 3-D data set from the Troll field oil province in the North Sea acquired in 2008 to examine its robustness and practical applicability.

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