TECTONOTHERMAL EVOLUTION OF THE ZAGAN METAMORPHIC CORE COMPLEX IN TRANSBAIKALIA AS A RESULT OF THE CRETACEOUS – PALEOCENE MONGOL-OKHOTSK POST-COLLISIONAL OROGEN DESTRUCTION

Author:

Buslov M. M.1ORCID,Travin A. V.1ORCID,Bishaev Yu. A.1,Sklyarov E. V.2ORCID

Affiliation:

1. Sobolev Institute of Geology and Mineralogy, Siberian Branch of the Russian Academy of Sciences

2. Institute of the Earth’s Crust, Siberian Branch of the Russian Academy of Sciences

Abstract

Thermochronological reconstructions of the Zagan metamorphic core complex were carried out using samples from the central part of the core, mylonite zone detachment and lower nappe with U/Pb zircon dating, 40Ar/39Ar amphibole and mica dating, and apatite fission-track dating. In the tectonothermal evolution of the metamorphic core, there was distinguished an active phase (tectonic denudation) of the dome structure formation during the Early Cretaceous (131–114 Ma), which continued in the Late Cretaceous – Paleocene (111–54 Ma) in passive phase (erosive denudation). During an active phase, there was initiated a large-amplitude gently dipping normal fault (detachment), which was accompanied by tilting (sliding of rocks along subparallel listric faults). As a result, about 7 km thick rock strata underwent denudation over 17 Ma at a rate of about 0.4 mm/year. In passive phase, about 6 km thick rock strata were eroded over 57 Ma, with a denudation rate of about 0.1 mm/year. Thus, the Zagan metamorphic core complex was tectonically exposed from the mid-crust to depths of about 9 km in the Early Cretaceous as a result of post-collisional collapse of the Mongol-Okhotsk orogen. Further cooling of the rocks in the metamorphic core to depths of about 3 km occurred in the Late Cretaceous – Pliocene as a result of destruction of more than 6 km high mountains.

Publisher

Institute of Earth's Crust, Siberian Branch of the Russian Academy of Sciences

Subject

Earth-Surface Processes,Geophysics,Geology,Economic Geology

Reference32 articles.

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2. Bishaev Yu.A., Buslov M.M., Travin A.V., 2022. Tectonothermal Evolution of Western Transbaikalia in the Late Cretaceous – Cenozoic Based on Apatite Fission-Track Dating. In: Geodynamic Evolution of the Lithosphere of the Central Asian Mobile Belt (from Ocean to Continent). Proceedings of Scientific Meeting (October 18–21, 2022). Iss. 20. IEC SB RAS, Irkutsk, p. 27–28 (in Russian)

3. Buslov M.M., 2012. Geodynamic Nature of the Baikal Rift Zone and Its Sedimentary Filling in the Cretaceous–Cenozoic: The Effect of the Far-Range Impact of the Mongolo-Okhotsk and Indo-Eurasian Collisions. Russian Geology and Geophysics 53 (9), 955–962. https://doi.org/10.1016/j.rgg.2012.07.010.

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