Treffeisen, Torben ; Henk, Andreas (2023)
Faults as Volumetric Weak Zones in Reservoir-Scale Hydro-Mechanical Finite Element Models — A Comparison Based on Grid Geometry, Mesh Resolution and Fault Dip.
In: Energies, 2020, 13 (10)
doi: 10.26083/tuprints-00016987
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Item Type: | Article |
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Type of entry: | Secondary publication |
Title: | Faults as Volumetric Weak Zones in Reservoir-Scale Hydro-Mechanical Finite Element Models — A Comparison Based on Grid Geometry, Mesh Resolution and Fault Dip |
Language: | English |
Date: | 20 November 2023 |
Place of Publication: | Darmstadt |
Year of primary publication: | 2020 |
Place of primary publication: | Basel |
Publisher: | MDPI |
Journal or Publication Title: | Energies |
Volume of the journal: | 13 |
Issue Number: | 10 |
Collation: | 27 Seiten |
DOI: | 10.26083/tuprints-00016987 |
Corresponding Links: | |
Origin: | Secondary publication DeepGreen |
Abstract: | An appropriate representation of faults is fundamental for hydro-mechanical reservoir models to obtain robust quantitative insights into the spatial distribution of stress, strain and pore pressure. Using a generic model containing a reservoir layer displaced by a fault, we examine three issues which are typically encountered if faults have to be incorporated in reservoir-scale finite element simulations. These are (1) mesh resolution aspects honoring the scale difference between the typical cell size of the finite element (FE) reservoir model and the heterogeneity of a fault zone, (2) grid geometry relative to the fault geometry and (3) fault dip. Different fault representations were implemented and compared regarding those on the modeling results. Remarkable differences in the calculated stress and strain patterns as well as the pore pressure field are observed. The modeling results are used to infer some general recommendations concerning the implementation of faults in hydro-mechanical reservoir models regarding mesh resolution and grid geometry, taking into account model-scale and scope of interest. The goal is to gain more realistic simulations and, hence, more reliable results regarding fault representation in reservoir models to improve production, lower cost and reduce risk during subsurface operations. |
Uncontrolled Keywords: | faults, reservoir, hydro-mechanical modeling, finite element modeling |
Status: | Publisher's Version |
URN: | urn:nbn:de:tuda-tuprints-169878 |
Additional Information: | This article belongs to the Special Issue Applied Geomechanics in Petroleum Engineering |
Classification DDC: | 500 Science and mathematics > 550 Earth sciences and geology 600 Technology, medicine, applied sciences > 620 Engineering and machine engineering |
Divisions: | 11 Department of Materials and Earth Sciences > Earth Science > Engineering Geology |
Date Deposited: | 20 Nov 2023 10:08 |
Last Modified: | 28 Nov 2023 14:37 |
SWORD Depositor: | Deep Green |
URI: | https://tuprints.ulb.tu-darmstadt.de/id/eprint/16987 |
PPN: | 51352679X |
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