Abstract
AbstractUnderstanding the mechanisms of strain localization leading to brittle failure in reservoir rocks can shed light on geomechanical processes such as porosity and permeability evolution during rock deformation, induced seismicity, fracturing, and subsidence in geological reservoirs. We perform triaxial compression tests on three types of porous reservoir rocks to reveal the local deformation mechanisms that control system-size failure. We deformed cylindrical samples of Adamswiller sandstone (23% porosity), Bentheim sandstone (23% porosity), and Anstrude limestone (20% porosity), using an X-ray transparent triaxial deformation apparatus. This apparatus enables the acquisition of three-dimensional synchrotron X-ray images, under in situ stress conditions. Analysis of the tomograms provide 3D distributions of the microfractures and dilatant pores from which we calculated the evolving macroporosity. Digital volume correlation analysis reveals the dominant strain localization mechanisms by providing the incremental strain components of pairs of tomograms. In the three rock types, damage localized as a single shear band or by the formation of conjugate bands at failure. The porosity evolution closely matches the evolution of the incremental strain components of dilation, contraction, and shear. With increasing confinement, the dominant strain in the sandstones shifts from dilative strain (Bentheim sandstone) to contractive strain (Adamswiller sandstone). Our study also links the formation of compactive shear bands with porosity variations in Anstrude limestone, which is characterized by a complex pore geometry. Scanning electron microscopy images indicate that the microscale mechanisms guiding strain localization are pore collapse and grain crushing in sandstones, and pore collapse, pore-emanated fractures and cataclasis in limestones. Our dynamic X-ray microtomography data brings unique insights on the correlation between the evolutions of rock microstructure, porosity evolution, and macroscopic strain during the approach to brittle failure in reservoir rocks.
Funder
The Research Council of Norway
European Synchrotron Radiation Facility
UNINETT Sigma2
University of Oslo
Publisher
Springer Science and Business Media LLC
Subject
Geochemistry and Petrology,Geophysics
Reference75 articles.
1. Abdallah, Y., Sulem, J., Bornert, M., Ghabezloo, S., & Stefanou, I. (2021). Compaction banding in high-porosity carbonate rocks: 1. Experimental observations. Journal of Geophysical Research: Solid Earth, 126(1), e2020JB020538.
2. Aydin, A. (1978) Small faults formed as deformation bands in sandstone. In J. D. Byerlee, & M. Wyss (Eds.), Rock friction and earthquake prediction. Contributions to current research in geophysics (CCRG), Birkhäuser, Basel (Vol. 6). https://doi.org/10.1007/978-3-0348-7182-2_22
3. Aydin, A., & Johnson, A. M. (1978). Development of faults as zones of deformation bands and as slip surfaces in sandstone. Pure and Applied Geophysics, 116(4–5), 931–942.
4. Ballas, G., Soliva, R., Sizun, J. P., Fossen, H., Benedicto, A., & Skurtveit, E. (2013). Shear-enhanced compaction bands formed at shallow burial conditions; Implications for fluid flow (Provence, France). Journal of Structural Geology, 47, 3–15.
5. Baud, P., Hall, S., Ji, Y., Wong, T. F., & Heap, M. J. (2017c). The Brittle-Ductile transition in porous limestone imaged by X-ray computed tomography and digital image correlation. In Poromechanics VI, proceedings of the sixth biot conference on poromechanics (pp. 1782–1788).
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