Multiple Uplift and Exhumation of the Southeastern Tibetan Plateau: Evidence from Low‐Temperature Thermochronology

Author:

WU Limin123,PENG Touping12,FAN Weiming34,ZHAO Guochun5,GAO Jianfeng6,DONG Xiaohan7,PENG Shili123,MIN Kang6,MYINT Tin Aung8

Affiliation:

1. State Key Laboratory of Isotope Geochemistry, Guangzhou Institute of Geochemistry Chinese Academy of Sciences Guangzhou 510640 China

2. Chinese Academy of Sciences Center for Excellence in Deep Earth Science Guangzhou 510640 China

3. University of Chinese Academy of Sciences Beijing 100049 China

4. Chinese Academy of Sciences Center for Excellence in Tibetan Plateau Earth Sciences Beijing 100101 China

5. Department of Earth Sciences The University of Hong Kong Hong Kong 999077 China

6. State Key Laboratory of Ore Deposit Geochemistry, Institute of Geochemistry Chinese Academy of Sciences Guiyang 550081 China

7. Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai) Zhuhai Guangdong 519085 China

8. Department of Geology University of Mandalay Mandalay 05011 Myanmar

Abstract

AbstractSince the Cenozoic, the Tibetan Plateau has experienced large‐scale uplift and outgrowth due to the India–Asia collision. However, the mechanism and timing of these tectonic processes still remain debated. Here, using apatite fission track dating and inverse thermal modeling, we explore the mechanism of different phases of rapid cooling for different batholiths and intrusions in the southeastern Tibetan Plateau. In contrast to previous views, we find that the coeval granitic batholith exposed in the same tectonic zone experienced differential fast uplift in different sites, indicating that the present Tibetan Plateau was the result of differential uplift rather than the entire lithosphere uplift related to lithospheric collapse during Cenozoic times. In addition, we also suggest that the 5–2 Ma mantle‐related magmatism should be regarded as the critical trigger for the widely coeval cooling event in the southeastern Tibetan Plateau, because it led to the increase in atmospheric CO2 level and a hotter upper crust than before, which are efficient for suddenly fast rock weathering and erosion. Finally, we propose that the current landform of the southeastern Tibetan Plateau was the combined influences of tectonic and climate.

Publisher

Wiley

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