HR: 17:00h
AN: T44B-05 [Abstracts]
TI: Extreme grain size reduction in dolomite: microstructures and mechanisms.
AU: * Kennedy, L
EM: lkennedy@eos.ubc.ca
AF: University of British Colulmbia, Earth and Ocean Sciences
6339 Stores Rd, Vancovuer, BC V6T 1Z4, Canada
AU: White, J C
AF: University of New Brunswick, Department of Geology, PO Box 4400, Fredericton, NB E3B
5A3, Canada
AB:
Pure dolomite sample were deformed at room temperature and under a variety of confining pressures (0 -
100MPa) to examine the processes of grain size reduction. The dolomite is composed of > 97 vol. %
dolomite with accessory quartz, calcite, tremolite, and muscovite and has been metamorphosed to amphibolite
facies and subsequently annealed. At the hand sample scale, the rock is isotropic, except for minor, randomly
oriented tremolite porphyroblasts, and weakly aligned muscovite. At the thin section scale, coarser grains have
lobate grain boundaries, exhibit minor to no undulose extinction and few deformation twins, although well-
developed subgrains are present. Growth twins are common, as is the presence of well developed {1011}
cleavage. Mean grain size 476 microns, and porosity is essentially zero (Austin and Kennedy, 2006). Samples
contain diagonal to subvertical faults. Fractures are lined with an exceptionally fine-grained, powdered dolomite.
Even experiments done at no confining pressure and stopped before sliding on the fracture surfaces occurred
had significant powdered gouge developed along the surfaces. In this regard, fracturing of low porosity, pure
dolomite, with metamorphic textures (e.g. lobate, interlocking grain boundaries) results in the development of
fine-grained gouge.
As expected the dolomite exhibited an increase in strength with increasing confining pressure, with a maximum
differential stress of ~400MPa at 100 MPa confining pressure. At each chosen confining pressure, two
experiments were performed and stopped at different stages along the load-displacement curve: just before yield
stress and at peak stress. Microstructures at each stage were observed in order to determine the possible
mechanisms for extreme grain size reduction. SEM work shows that in samples with little to no apparent
displacement along microfractures, extreme grain size reduction still exists, suggesting that frictional sliding and
subsequent cataclasis may not be the mechanism responsible for grain size reduction. Within individual
dolomite clasts, apparent Mode I cracks are also lined with powedered gouge. Alternative mechanisms for grain
size reduction are explored. Austin et al. 2005, Geological Society, London, Special Publications, 243, 51-66.3.
DE: 8031 Rheology: crust and lithosphere (8159)
SC: Tectonophysics [T]
MN: 2007 Fall Meeting