Physical properties variations in a shaly formation across a fault core

Author:

Bonnelye Audrey123ORCID,David Christian1ORCID,Wassermann Jérôme4,Schubnel Alexandre3,Henry Pierre5,Guglielmi Yves5,Gout Claude67,Dick Pierre8

Affiliation:

1. Laboratoire Géosciences et Environnement Cergy, CY Cergy Paris Université , GEC, F-95000 Cergy , France

2. GeoRessources, Université de Lorraine , 54000 Nancy , France

3. Laboratoire de Géologie, Ecole Normale Supérieure , 75005 Paris , France

4. Laboratoire de Mécanique et Matériaux du Génie Civil, CY Cergy Paris Université , F-95000 Cergy , France

5. CNRS, IRD, INRAE, Coll France, CEREGE, Aix Marseille Univ , Aix-en-Provence , France

6. LFCR, UPPA, CNRS , Pau , France

7. Université de Pau et des Pays de l'Adour , E2S UPPA, CNRS, TotalEnergies, LFCR, Pau , France

8. PSE-ENV/SEDRE/LETIS, Institut de Radioprotection et de Sûreté Nucléaire (IRSN) , 92260 Fontenay-aux-Roses , France

Abstract

SUMMARY Faults in general, and in clay materials in particular, have complex structures that can be linked to both a polyphased tectonic history and to the anisotropic nature of the intact rock. Drilling through faults in shaly materials allows measuring properties such as the structure, mineralogical composition, stress orientation and physical properties. We combine different petrophysical measurements on core samples retrieved from a borehole drilled perpendicularly to a fault zone affecting Toarcian shales from the Tournemire underground research laboratory (France). The borehole is cross-cutting the entire fault thickness which is of the order of 10 m. We perform several types of measurements: density, porosity, saturation directly in the field and P-wave velocities together with P-waves anisotropy on core samples taken at regular intervals. Special protocols were developed to preserve as much as possible the saturation state of the samples. From our measurements, we were able to track the increase of damage, characterized by a smooth decrease in elastic moduli from the intact zone to the fault core. We then calculated Thomsen's parameters to quantify the elastic anisotropy evolution across the fault. Our results show strong variations of the elastic anisotropy with the distance to the fault core as well as the occurrence of anisotropy reversal.

Funder

Total

Publisher

Oxford University Press (OUP)

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