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Effect of Diagenesis on Geomechanical Properties of Organic‐rich Calcareous Shale: A Multiscale Investigation

Charlton, T.S.; Goodarzi, M.; Rouainia, M.; Aplin, A.C.; Cubillas, P.

Effect of Diagenesis on Geomechanical Properties of Organic‐rich Calcareous Shale: A Multiscale Investigation Thumbnail


Authors

T.S. Charlton

M. Goodarzi

M. Rouainia

P. Cubillas



Abstract

This paper investigates the nano to core-scale geomechanical properties of a maturity series of organic-rich, calcareous shales buried to 100-180°C, with a focus on: (a) the mechanical properties of organic matter; (b) the elastic response and anisotropy of the shale composite at micro and core scale; and (c) the creep response. Atomic force microscopy was used to target kerogen at nanoscale resolution, and it was found that the elastic stiffness increased with thermal maturity from 5.8 GPa in an immature sample to 11.3 GPa in a mature sample. Nanoindentation testing of the shale matrix showed that diagenesis is a key factor in determining the bulk elasticity, with increasingly intense carbonate cementation at higher thermal maturities contributing to a stiffer response. A multiscale model was formulated to upscale the elastic properties from nanoscale solid clay minerals to a microcracked composite at core scale, with good predictions of the micro and core-scale stiffness in comparison to indentation and triaxial results. A negative correlation was found between the creep modulus and clay/kerogen content, with greater creep displacement observed in nanoindentation tests in the immature clay- and kerogen-rich sample compared to samples of higher thermal maturity.

Citation

Charlton, T., Goodarzi, M., Rouainia, M., Aplin, A., & Cubillas, P. (2021). Effect of Diagenesis on Geomechanical Properties of Organic‐rich Calcareous Shale: A Multiscale Investigation. Journal of Geophysical Research. Solid Earth, 126(7), Article e2020JB021365. https://doi.org/10.1029/2020jb021365

Journal Article Type Article
Acceptance Date Jun 8, 2021
Online Publication Date Jun 10, 2021
Publication Date Jun 30, 2021
Deposit Date Jun 13, 2021
Publicly Available Date Jul 16, 2021
Journal Journal of Geophysical Research: Solid Earth
Print ISSN 2169-9313
Electronic ISSN 2169-9356
Publisher American Geophysical Union
Peer Reviewed Peer Reviewed
Volume 126
Issue 7
Article Number e2020JB021365
DOI https://doi.org/10.1029/2020jb021365

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Publisher Licence URL
http://creativecommons.org/licenses/by/4.0/

Copyright Statement
© 2021. The Authors.

This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.




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