HR: 11:50h
AN: T42B-07 [Abstracts]
TI: Intracontinental Strain Localization due to Heterogeneous Strength I: Evidence From a Recently
Discovered, S-Directed Cenozoic Thrust Belt at the SW end of the Altyn Tagh Fault
AU: * Cowgill, E
EM: cowgill@geology.ucdavis.edu
AF: University of California, Davis, Dept. of Geology
One Shields Ave., Davis, CA 95616
United States
AU: Raterman, N
EM: raterman@geology.ucdavis.edu
AF: University of California, Davis, Dept. of Geology
One Shields Ave., Davis, CA 95616
United States
AU: Ding, L
EM: dinglin@mail.igcas.ac.cn
AF: Chinese Academy of Sciences, Inst. of Geology and Geophysics, Beijing, 100029
China
AU: Zhang, H
EM: dinglin@mail.igcas.ac.cn
AF: Chinese Academy of Sciences, Inst. of Geology and Geophysics, Beijing, 100029
China
AB:
Upper crustal deformation in many active orogens appears to be concentrated along first-order fault systems that are
thousands of kilometers long and hundreds of kilometers wide parallel and perpendicular to strike, respectively. But what
controls the formation and evolution of these intracontinental "microplate" boundaries? To address this question, we are
investigating the evolution of the SW termination of the active, left-slip Altyn Tagh fault, the largest intracontinental
strike-slip system in Asia. Although the fault presently terminates into E-W striking, N-directed thrust belts at both its
NE and SW ends, this structural geometry cannot account for 475$\pm$70 km of displacement recently documented along the
central section of the fault. To address this problem, we have conducted 1:100,000-scale structural mapping in westernmost
Tibet, at the SW terminus of the Altyn Tagh fault, to test the idea that early to middle Cenozoic slip along the Altyn Tagh
fault was absorbed at its SW end by a S-directed thrust belt prior to formation of the presently active N-directed thrust
system. Our mapping indicates that western Tibet has been shortened by a regionally extensive system of Late Cretaceous or
younger, N-dipping, S-directed thrusts. This S-directed thrust belt shows systematically shallowing structural levels from
north to south. For example, in the north, the steeply north-dipping Tianshuihai thrust places a sequence of greenschist
facies Proterozoic metasediments over Carboniferous strata in its footwall. About 45 km to the south, these Carboniferous
strata are in turn thrust southwards over Cretaceous strata that are deformed by S-directed thrusts and associated folds
within the Loqzung range. The Aksai Chin anticline is the southernmost structure we have mapped within the S-directed thrust
belt. This E-W trending fold has a N-S interlimb width of 12 km and deforms both Carboniferous rocks in its core and
unconformably overlying Cretaceous strata on its limbs. Cretaceous beds dip 25-45\deg N on the N limb but are vertical to
10\deg overturned on the south limb. Shortening due to folding alone is at least 35% but could be as high as 65% within
the Aksai Chin anticline, and ongoing work aims to address total shortening across the thrust belt. The S-directed thrust
belt coincides with a late Paleozoic to early Mesozoic subduction-accretion complex, while the zone of most intense
shortening within the belt coincides with a Mesozoic suture along the N edge of the Qiangtang block. Thus, heterogeneous
crustal strength inherited from Paleozoic and Mesozoic assembly of Asia has likely controlled the location and geometry of
first-order fault systems produced during Cenozoic orogeny.
DE: 9320 Asia
DE: 8005 Folds and folding
DE: 8010 Fractures and faults
DE: 8102 Continental contractional orogenic belts
DE: 8159 Rheology--crust and lithosphere
SC: Tectonophysics [T]
MN: 2004 AGU Fall Meeting