HR: 10:50h
AN: T12A-03 [Abstracts]
TI: Three-dimensional geodynamic modeling of the Southern Alps of New Zealand: integrating models and
observations to understand crustal rheology
AU: * Upton, P
EM: phaedra.upton@maine.edu
AF: University of Maine, Bryand Global Sciences Center, Orono, ME 04469
United States
AU: * Upton, P
EM: phaedra.upton@maine.edu
AF: Bates College, 2 Andrews Rd, Lewiston, ME 04240
United States
AU: Koons, P O
EM: peter.koons@maine.edu
AF: University of Maine, Bryand Global Sciences Center, Orono, ME 04469
United States
AB:
Vertical and horizontal strain distribution within oblique convergence reflects imposed tectonic and surficial boundary
conditions as transmitted via the rheological structure of the deforming crust. Our knowledge of crustal rheology is poor at
best and it is only by combining three-dimensional mechanical modeling with geologic and geophysical observations that we
can hope to define the rheological structure of a deforming zone. In order to do so, we begin with a region where the far
field driving forces of plate motion and the orogen kinematics are well defined. Results and insights gained from these
well-constrained models are then available to be applied to other regions with less well defined far-field tectonic or
surficial boundary conditions, such as in the exposed roots of ancient mountain belts.
The tectonically active Southern Alps of New Zealand provide an ideal setting in which to study the geodynamic response of a
collisional orogen to far-field tectonic boundary conditions and to test the influence of rheological variation on that
response. Departures from rheological steady state conditions are greatest through thermal perturbations and pore pressure
fluctuations, both of which are present in the Southern Alps orogen. Using a three-dimensional mechanical framework in
conjunction with geological and geophysical observations, we define the characteristic strain regimes for an oblique orogen
analogous to the Southern Alps of New Zealand. The three-dimensional mechanical models allow us to separate those features
in the kinematic field that arise from boundary condition variation from those that result from heterogeneous and transient
rheological structure. Using the full 3 D solutions allows us to compare model predictions of metamorphic fabric with
observations of seismic anisotropy and exposed metamorphic fabrics.
DE: 8020 Mechanics, theory, and modeling
DE: 8108 Continental tectonics: compressional
DE: 8159 Rheology: crust and lithosphere (8031)
SC: Tectonophysics [T]
MN: Fall Meeting 2005