LATE CRETACEOUS EXHUMATION OF THE METAMORPHIC GLEINALM DOME, EASTERN ALPS - KINEMATICS, COOLING HISTORY AND SEDIMENTARY RESPONSE IN A SINISTRAL WRENCH CORRIDOR

Citation
F. Neubauer et al., LATE CRETACEOUS EXHUMATION OF THE METAMORPHIC GLEINALM DOME, EASTERN ALPS - KINEMATICS, COOLING HISTORY AND SEDIMENTARY RESPONSE IN A SINISTRAL WRENCH CORRIDOR, Tectonophysics, 242(1-2), 1995, pp. 79-98
Citations number
88
Categorie Soggetti
Geosciences, Interdisciplinary
Journal title
ISSN journal
00401951
Volume
242
Issue
1-2
Year of publication
1995
Pages
79 - 98
Database
ISI
SICI code
0040-1951(1995)242:1-2<79:LCEOTM>2.0.ZU;2-I
Abstract
The metamorphic Gleinalm dome, Eastern Alps, was uplifted and exhumed within a releasing structure in a sinistral wrench corridor during the Late Cretaceous. The dome is confined by a system of ductile shear zo nes including low-angle normal faults and steep sinistral tear faults which define a large releasing structure with the metamorphic dome in its center. The fabrics developed within all ductile shear zones recor d processes which were operating during decreasing temperatures from i nitial epidote-amphibolite/upper greenschist facies conditions (with c rystal plastic fabrics in quartz) to temperatures below ca. 300 degree s C (with predominantly cataclastic fabrics). A cooling path based on Ar-40/Ar-39 amphibole (95.4 +/- 1.2 Ma) and muscovite ages (87.6 +/- 0 .6; 84.3 +/- 0.7 Ma) together with sphene, zircon and apatite fission track data indicate cooling through ca. 500 degrees C at ca. 94 Ma to below ca. 250-200 degrees C at 65 Ma. Subsidence of the adjacent Late Cretaceous Kainach Gosau basin occurred synchronously with cooling and uplift of the Gleinalm dome. Internal depositional patterns record ra pid subsidence at the time of cooling with internal synsedimentary blo ck rotation above an intra-crustal ductile normal fault. The sinistral wrench corridor of the Eastern Alps developed by sinistral displaceme nt of the Austroalpine units against a relatively stable Europe during the Late Cretaceous.