Microstructures and deformation mechanisms in Opalinus Clay: insights from scaly clay from the Main Fault in the Mont Terri Rock Laboratory (CH)
The Main Fault in the shaly facies of Opalinus Clay is a small reverse fault formed in slightly overconsolidated claystone at around 1 km depth. The fault zone is up to 6 m wide, with micron-thick shear zones, calcite and celestite veins, scaly clay and clay gouge. Scaly clay occurs in up to 1.5 m w...
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doaj-27e4969b41be4b879f7e441a2aef24d22020-11-25T01:41:39ZengCopernicus PublicationsSolid Earth1869-95101869-95292017-01-0181274410.5194/se-8-27-2017Microstructures and deformation mechanisms in Opalinus Clay: insights from scaly clay from the Main Fault in the Mont Terri Rock Laboratory (CH)B. Laurich0J. L. Urai1C. Nussbaum2Structural Geology, Tectonics and Geomechanics, RWTH Aachen University, Lochnerstr. 4–20, 52056 Aachen, GermanyStructural Geology, Tectonics and Geomechanics, RWTH Aachen University, Lochnerstr. 4–20, 52056 Aachen, GermanyMont Terri Consortium, Federal Office of Topography swisstopo, Route de la Gare 63, 2882 St-Ursanne, SwitzerlandThe Main Fault in the shaly facies of Opalinus Clay is a small reverse fault formed in slightly overconsolidated claystone at around 1 km depth. The fault zone is up to 6 m wide, with micron-thick shear zones, calcite and celestite veins, scaly clay and clay gouge. Scaly clay occurs in up to 1.5 m wide lenses, providing hand specimens for this study. We mapped the scaly clay fabric at 1 m–10 nm scale, examining scaly clay for the first time using broad-ion beam polishing combined with scanning electron microscopy (BIB-SEM). Results show a network of thin shear zones and microveins, separating angular to lensoid microlithons between 10 cm and 10 µm in diameter, with slickensided surfaces. Our results show that microlithons are only weakly deformed and that strain is accumulated by fragmentation of microlithons by newly formed shear zones, by shearing in the micron-thick zones and by rearrangement of the microlithons.<br><br>The scaly clay aggregates can be easily disintegrated into individual microlithons because of the very low tensile strength of the thin shear zones. Analyses of the microlithon size by sieving indicate a power-law distribution model with exponents just above 2. From this, we estimate that only 1 vol % of the scaly clay aggregate is in the shear zones.<br><br>After a literature review of the hypotheses for scaly clay generation, we present a new model to explain the progressive formation of a self-similar network of anastomosing thin shear zones in a fault relay. The relay provides the necessary boundary conditions for macroscopically continuous deformation. Localization of strain in thin shear zones which are locally dilatant, and precipitation of calcite veins in dilatant shear fractures, evolve into complex microscale re-partitioning of shear, forming new shear zones while the microlithons remain much less deformed internally and the volume proportion of the µm-thick shear zones slowly increases. Grain-scale deformation mechanisms are microfracturing, boudinage and rotation of mica grains, pressure solution of carbonate fossils and pore collapse during ductile flow of the clay matrix. This study provides a microphysical basis to relate microstructures to macroscopic observations of strength and permeability of the Main Fault, and extrapolating fault properties in long-term deformation.http://www.solid-earth.net/8/27/2017/se-8-27-2017.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
B. Laurich J. L. Urai C. Nussbaum |
spellingShingle |
B. Laurich J. L. Urai C. Nussbaum Microstructures and deformation mechanisms in Opalinus Clay: insights from scaly clay from the Main Fault in the Mont Terri Rock Laboratory (CH) Solid Earth |
author_facet |
B. Laurich J. L. Urai C. Nussbaum |
author_sort |
B. Laurich |
title |
Microstructures and deformation mechanisms in Opalinus Clay: insights from scaly clay from the Main Fault in the Mont Terri Rock Laboratory (CH) |
title_short |
Microstructures and deformation mechanisms in Opalinus Clay: insights from scaly clay from the Main Fault in the Mont Terri Rock Laboratory (CH) |
title_full |
Microstructures and deformation mechanisms in Opalinus Clay: insights from scaly clay from the Main Fault in the Mont Terri Rock Laboratory (CH) |
title_fullStr |
Microstructures and deformation mechanisms in Opalinus Clay: insights from scaly clay from the Main Fault in the Mont Terri Rock Laboratory (CH) |
title_full_unstemmed |
Microstructures and deformation mechanisms in Opalinus Clay: insights from scaly clay from the Main Fault in the Mont Terri Rock Laboratory (CH) |
title_sort |
microstructures and deformation mechanisms in opalinus clay: insights from scaly clay from the main fault in the mont terri rock laboratory (ch) |
publisher |
Copernicus Publications |
series |
Solid Earth |
issn |
1869-9510 1869-9529 |
publishDate |
2017-01-01 |
description |
The Main Fault in the shaly facies of Opalinus
Clay is a small reverse fault formed in slightly overconsolidated claystone
at around 1 km depth. The fault zone is up to 6 m wide, with micron-thick
shear zones, calcite and celestite veins, scaly clay and clay gouge. Scaly
clay occurs in up to 1.5 m wide lenses, providing hand specimens for this
study. We mapped the scaly clay fabric at 1 m–10 nm scale, examining scaly
clay for the first time using broad-ion beam polishing combined with scanning
electron microscopy (BIB-SEM). Results show a network of thin shear zones and
microveins, separating angular to lensoid microlithons between 10 cm and
10 µm in diameter, with slickensided surfaces. Our results show
that microlithons are only weakly deformed and that strain is accumulated by
fragmentation of microlithons by newly formed shear zones, by shearing in the
micron-thick zones and by rearrangement of the microlithons.<br><br>The scaly clay aggregates can be easily disintegrated into individual
microlithons because of the very low tensile strength of the thin shear
zones. Analyses of the microlithon size by sieving indicate a power-law
distribution model with exponents just above 2. From this, we estimate that
only 1 vol % of the scaly clay aggregate is in the shear zones.<br><br>After a literature review of the hypotheses for scaly clay generation, we
present a new model to explain the progressive formation of a self-similar
network of anastomosing thin shear zones in a fault relay. The relay provides
the necessary boundary conditions for macroscopically continuous deformation.
Localization of strain in thin shear zones which are locally dilatant, and
precipitation of calcite veins in dilatant shear fractures, evolve into
complex microscale re-partitioning of shear, forming new shear zones while
the microlithons remain much less deformed internally and the volume
proportion of the µm-thick shear zones slowly increases. Grain-scale
deformation mechanisms are microfracturing, boudinage and rotation of mica
grains, pressure solution of carbonate fossils and pore collapse during
ductile flow of the clay matrix. This study provides a microphysical basis to
relate microstructures to macroscopic observations of strength and
permeability of the Main Fault, and extrapolating fault properties in
long-term deformation. |
url |
http://www.solid-earth.net/8/27/2017/se-8-27-2017.pdf |
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