HR: 10:35h
AN: T22A-02 [Abstracts]
TI: Maine Pseudotachylyte Localities and the Role of Host Rock Anisotropy in Fault Zone Development and
Frictional Melting
AU: * Swanson, M T
EM: mswanson@usm.maine.edu
AF: Department of Geosciences
University of Southern Maine, 37 College Avenue, Gorham, ME 04038
United States
AB:
Three brittle strike-slip fault localities in coastal Maine have developed pseudotachylyte fault veins, injection veins and
other reservoir structures in a variety of host rocks where the pre-existing layering can serve as a controlling fabric for
brittle strike-slip reactivation. Host rocks with a poorly-oriented planar anisotropy at high angles to the shear direction
will favor the development of R-shears in initial en echelon arrays as seen in the Two Lights and Richmond Island Fault Zones
of Cape Elizabeth that cut gently-dipping phyllitic quartzites. These en echelon R-shears grow to through-going faults with
the development of P-shear linkages across the dominantly contractional stepovers in the initial arrays. Pseudotachylyte on
these faults is very localized, typically up to 1-2 mm in thickness and is restricted to through-going fault segments,
P-shear linkages and some sidewall ripouts. Overall melt production is limited by the complex geometry of the multi-fault
array. Host rocks with a favorably-oriented planar anisotropy for reactivation in brittle shear, however, preferentially
develop a multitude of longer, non-coplanar layer-parallel fault segments. Pseudotachylyte in the newly-discovered Harbor
Island Fault Zone in Muscongus Bay is developed within vertical bedding on regional upright folds with over 50 individual
layer-parallel single-slip fault veins, some of which can be traced for over 40 meters along strike. Many faults show clear
crosscuts of pre-existing quartz veins that indicate a range of coseismic displacements of 0.23-0.53 meters yielding fault
vein widths of a few mm and dilatant reservoirs up to 2 cm thick. Both vertical and rare horizontal lateral injection veins
can be found in the adjoining wall rock up to 0.7 cm thick and 80 cm in length. The structure of these faults is simple with
minor development of splay faults, sidewall ripouts and strike-slip duplexes. The prominent vertical flow layering within
the mylonite gneisses of Gerrish Island serves as host to the complex Fort Foster Brittle Zone where it localizes brittle
fault slip and contributes to a maximum area of contact between the sliding surfaces which, in turn, yields fault vein
thicknesses of 1-2 mm and locally up to 2 cm. The reactivation of this planar anisotropy in brittle shear produces long
overlapping geometries that develop linking structures in both extensional and contractional stepovers may reflect the
development of sidewall ripouts due to adhesive wear. The prominent development of closely-spaced individual single-slip
fault veins suggests frictional welding as an effective strain hardening mechanism for repeated stick-slip.
DE: 8010 Fractures and faults
DE: 8123 Dynamics, seismotectonics
SC: Tectonophysics [T]
MN: 2004 AGU Fall Meeting