HR: 0800h
AN: GP41B-0875 [Abstracts]
TI: Upper mantle diapers, lower crustal magmatic underplating, and lithospheric dismemberment of the Great
Basin and Colorado Plateau regions, Nevada and Utah; implications from deep MT resistivity
surveying
AU: * Wannamaker, P E
EM: pewanna@egi.utah.edu
AF: University of Utah, Energy & Geoscience Institute
423 Wakara Way, Suite 300, Salt Lake City, UT 84108
United States
AU: Doerner, W M
EM: billdoerner@cs.com
AF: Quantec Geoscience, 8565 White Fir Street
Suite B-1, Reno, NV 89523
United States
AU: Hasterok, D P
EM: dhasterok@earth.utah.edu
AF: University of Utah, Dept. of Geology & Geophysics
717 W B Browning Building, Salt Lake City, UT 84112
United States
AB:
In the rifted Basin and Range province of the southwestern U.S., a common faulting model for extensional basins based e.g. on
reflection seismology data shows dominant displacement along master faults roughly coincident with the main topographic
scarp. On the other hand, complementary data such as drilling, earthquake focal mechanisms, volcanic occurrences, and trace
indicators such as helium isotopes suggest that there are alternative geometries of crustal scale faulting and material
transport from the deep crust and upper mantle in this province. Recent magnetotelluric (MT) profiling results reveal
families of structures commonly dominated by high-angle conductors interpreted to reflect crustal scale fault zones. Based
mainly on cross cutting relationships, these faults appear to be late Cenozoic in age and are of low resistivity due to
fluids or alteration (including possible graphitization). In the Ruby Mtns area of north-central Nevada, high angle faults
along the margins of the core complex connect from near surface to a regional lower crustal conductor interpreted to contain
high-temperature fluids and perhaps melts. Such faults may exemplify the high angle normal faults upon which the major
earthquakes of the Great Basin appear to nucleate. A larger-scale transect centered on Dixie Valley shows major conductive
crustal-scale structures connecting to conductive lower crust below Dixie Valley, the Black Rock desert in NW Nevada, and in
east-central Nevada in the Monitor-Diamond Valley area. In the Great Basin-Colorado Plateau transition of Utah, the main
structures revealed are a series of nested low-angle detachment structures underlying the incipient development of several
rift grabens. All these major fault zones appear to overlie regions of particularly conductive lower crust interpreted to be
caused by recent basaltic underplating. In the GB-CP transition, long period data show two, low-resistivity upper mantle
diapirs underlying the concentrated conductive lower crust and nested faults, and these are advanced as melt source regions
for the underplating. MT, with its wide frequency bandwidth, allows views of nearly a complete melting and emplacement
process, from mantle source region, through lower crustal intrusion, to brittle regime deformational response.
DE: 0925 Magnetic and electrical methods (5109)
DE: 1515 Geomagnetic induction
DE: 8031 Rheology: crust and lithosphere (8159)
DE: 8109 Continental tectonics: extensional (0905)
DE: 8415 Intra-plate processes (1033, 3615)
SC: Geomagnetism and Paleomagnetism [GP]
MN: Fall Meeting 2005