Abstract
Extreme strain localization occurred in the centre of the cross-cutting element of a flanking structure in almost pure calcite marbles from Syros, Greece. At the maximum displacement of 120 cm along the cross-cutting element, evidence of grain size sensitive deformation mechanisms can be found in the ultramylonitic marbles, which are characterized by (1) an extremely small grain size ( ∼ 3 µm), (2) grain boundary triple junctions with nearly 120° angles, (3) a weak crystallographic preferred orientation with very low texture index (J = 1.4), (4) a random misorientation angle distribution curve and (5) the presence of small cavities. Using transmission electron microscopy, a deformation sequence is observed comprising recrystallization dominantly by bulging, resulting in the development of the fine-grained ultramylonite followed by the development of a high dislocation density ( ∼ 1013 m−2) with ongoing deformation of the fine-grained ultramylonite. The arrangement of dislocations in the extremely fine-grain-sized calcite differs from microstructures created by classical dislocation creep mediated by combined glide and thermally activated climb. Instead, it exhibits extensive glide and dislocation networks characteristic of recovery accommodated by cross-slip and network-assisted dislocation movement without formation of idealized subgrain walls. The enabling of grain boundary sliding to dislocation activity is deemed central to initiating and sustaining strain softening and is argued to be an important strain localization process in calcite rocks, even at a high strain rate ( ∼ 10−9 s−1) and low temperature (300 °C).
Original language | English |
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Pages (from-to) | 355-366 |
Number of pages | 12 |
Journal | Solid earth |
Volume | 7 |
Issue number | 2 |
DOIs | |
Publication status | Published - 8 Mar 2016 |
Austrian Fields of Science 2012
- 105124 Tectonics
Keywords
- Strain localization
- Marble
- grain boundary sliding
- CAVITATION
- SIZE REDUCTION
- METAMORPHIC ROCKS
- MECHANISMS
- DYNAMIC RECRYSTALLIZATION
- CRYSTALLOGRAPHIC PREFERRED ORIENTATION
- STEADY-STATE CREEP
- PLASTIC-DEFORMATION
- SUPERPLASTIC FLOW
- CALCITE