Journal Article
Fluid Flow Characterization Framework for Naturally Fractured Reservoirs Using Small-Scale Fully Explicit Models
Daniel Lorng Yon Wong; Florian Doster; Sebastian Geiger; Eddy Francot; François Gouth
Transport in Porous Media · Vol. 134, Issue 2 · pp. 399-434 · 2020
Abstract
Flow modelling challenges in fractured reservoirs have led to the development of many simulation methods. It is often unclear which method should be employed. High-resolution discrete fracture and matrix (DFM) studies on small-scale representative models allow us to identify dominant physical processes influencing flow. We propose a workflow that utilizes DFM studies to characterize subsurface flow dynamics. The improved understanding facilitates the selection of an appropriate method for large-scale simulations. Validation of the workflow was performed via application on a gas reservoir represented using an embedded discrete fracture model, followed by the comparison of results obtained from hybrid and dual-porosity representations against fully explicit simulations. The comparisons ascertain that the high-resolution small-scale DFM studies lead to a more accurate upscaled model for full field simulations. Additionally, we find that hybrid implicit–explicit representations of fractures generally outperform pure continuum-based models.
Bibliographic Information
| Journal | Transport in Porous Media |
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| Publisher | Springer |
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| Publication Date | 2020-09-01 |
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| Publication Year | 2020 |
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| Volume | 134 |
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| Issue | 2 |
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| Pages | 399-434 |
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| Document Type | Journal Article |
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| Print ISSN | 0169-3913 |
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| eISSN | 1573-1634 |
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| DOI | 10.1007/s11242-020-01451-8 |
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