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Porosity distribution in a heterogeneous clay-rich fault core by image processing of 14C-PMMA autoradiographs and Scanning Electron Microscopy
Author(s) -
Ville Valtteri Nen,
Juuso Sammaljärvi,
Bo Johanson,
Mikko Voutilainen,
Emilie L’Hôpital,
Pierre Dick,
Marja SiitariKauppi
Publication year - 2017
Publication title -
mrs advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.253
H-Index - 15
eISSN - 2731-5894
pISSN - 2059-8521
DOI - 10.1557/adv.2017.615
Subject(s) - oil shale , porosity , fault gouge , geology , scanning electron microscope , sorption , permeability (electromagnetism) , tectonics , mineralogy , fault (geology) , radioactive waste , radionuclide , slip (aerodynamics) , geotechnical engineering , materials science , composite material , chemistry , seismology , adsorption , paleontology , physics , organic chemistry , membrane , nuclear chemistry , thermodynamics , biochemistry , quantum mechanics
Shale formations are considered by a number of countries as the most suitable media to dispose of high-level radioactive waste. This is mainly due to the impermeable, self-sealing, chemical reducing, and sorption properties that tend to retard radionuclide migration. However, shale formations can also contain highly connected fault zones with permeabilities that can differ of several orders of magnitudes with respect to the undeformed host rock. The objective of this work is to use the 14 C-PMMA autoradiography method combined with SEM-EDS measurements to understand the porosity variations in and around fault gouges and to define their relationship to mechano-chemical processes. The studied samples were taken from a low permeability shale in a small-scale vertical strike-slip fault at the Tournemire underground research laboratory. Results display significant variations in porosity and mineralogy along the studied gouge zone due to polyphased tectonics and paleo-fluid circulations.

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