Tectonic evolution of the Qinghai-Tibet Plateau

被引:706
|
作者
Pan, Guitang [1 ,2 ]
Wang, Liquan [1 ]
Li, Rongshe [3 ]
Yuan, Sihua [4 ]
Ji, Wenhua [3 ]
Yin, Fuguang [1 ]
Zhang, Wanping [1 ]
Wang, Baodi [1 ]
机构
[1] China Geol Survey, Chengdu Inst Geol & Mineral Resources, Chengdu 610082, Peoples R China
[2] China Univ Geosci, Qinghai Xizang Ctr Geol Res, Beijing 100083, Peoples R China
[3] Xian Inst Geol & Mineral Resources, Xian 710054, Peoples R China
[4] Inst Disaster Prevent, Yanjiao 101601, Sanhe, Peoples R China
关键词
Qinghai-Tibet Plateau; Tethyan Ocean; Composite island arc-basin systems; Geological mapping; Tectonic evolution; U-PB GEOCHRONOLOGY; CENTRAL QIANGTANG; LHASA TERRANE; GANGDESE; MAGMATISM; OPHIOLITE; CONSTRAINTS; BELT; AREA; PETROGENESIS;
D O I
10.1016/j.jseaes.2011.12.018
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The Qinghai-Tibet Plateau, composed of several continental slivers within the eastern Tethyan domain, is one of the pivotal sites to examine to better understand the theory of plate tectonics and the orogenic evolution on Earth. This plateau is generally inferred to be a collage of several continental blocks that rifted from Gondwanaland and subsequently accreted to the Asian continent. However, recent recognition of over twenty ophiolite melange zones and their associated island arcs indicates that the traditional model of tectonic evolution requires revision. Based on 177 recently finished 1:250,000 scale geological maps and related studies, we summarize the main tectonic context of the Qinghai-Tibet Plateau and propose a new integrated model to account for the new findings. The complex orogen of the immense Qinghai-Tibet Plateau, consisting of multiple island arc-basin systems that developed at different stages while surrounded by the North China, Yangtze, Tarim, and Indian plates, is emphasized. The entire orogen, surrounded by suture zones that mark the locations of oceanic closure, is investigated by examining (I) the first-order tectonic units and ophiolitic melanges (including arc-arc/continent collision zones) and (II) their internally enclosed blocks as the second-order tectonic units. Therefore, the Qinghai-Tibet Plateau is divided into three major orogenic systems, namely, from northeast to southwest, the Early Paleozoic Qinling-Qilianshan-Kunlunshan (Qin-Qi-Kun), the Late Paleozoic-Triassic Qiangtang-Sanjiang, and the Late Paleozoic to Cenozoic Gangdese-Himalaya orogenic systems, which are separated by the Kangxiwa-Muzitagh-Maqin-Mianxian and the Bangong-Shuanghu-Changning-Menglian sutures, respectively. We propose that the formation and evolution of the Qinghai-Tibet Plateau to have been intrinsically related to those of the eastern Tethys, recorded by the Longmu Co-Shuanghu ophiolite melange zone, the Southern Qiangtang Paleozoic accretionary arc-basin system, the Bangong-Nujiang suture zone, and their associated, composite island arc-basin systems. The present-day Bangong-Shuanghu-Changning-Menglian suture system marks the final closure of the Tethyan Ocean. The Yarlung Zangbo Ocean opened as a back-arc basin in response to the southward subduction of the Tethyan Ocean lithosphere in the Middle Triassic and closed as a result of the India-Asia collision at the end of Cretaceous, followed by the northward indention of the Indian plate that resulted in significant intra-continental deformation and plateau uplift in the Cenozoic. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:3 / 14
页数:12
相关论文
共 50 条
  • [41] The stability of Qinghai-Tibet Plateau ecosystem to climate change
    Wang, Shuren
    Guo, Lanlan
    He, Bin
    Lyu, Yanli
    Li, Tiewei
    PHYSICS AND CHEMISTRY OF THE EARTH, 2020, 115
  • [42] Carbon Balance in an Alpine Steppe in the Qinghai-Tibet Plateau
    Zhi-Yong Pei1
    2Key Laboratory of Ecosystem Network Observation and Modelling
    JournalofIntegrativePlantBiology, 2009, 51 (05) : 521 - 526
  • [43] Role of permafrost degradation on evapotranspiration on the Qinghai-Tibet Plateau
    Ji F.
    Fan L.
    Kuang X.
    Zou Y.
    Zheng C.
    Shuikexue Jinzhan/Advances in Water Science, 2022, 33 (03): : 390 - 400
  • [44] Hydrochemistry of Salt Lakes of the Qinghai-Tibet Plateau, China
    Mianping Zheng
    Xifang Liu
    Aquatic Geochemistry, 2009, 15 : 293 - 320
  • [45] Temporal and spatial characteristics of the ionosphere in the Qinghai-Tibet Plateau
    Tian, Xiangyu
    Chai, Hongzhou
    Yin, Xiao
    Wang, Min
    Chong, Yang
    Guo, Yunfei
    ADVANCES IN SPACE RESEARCH, 2021, 68 (01) : 225 - 235
  • [46] Carbon Balance in an Alpine Steppe in the Qinghai-Tibet Plateau
    Pei, Zhi-Yong
    Ouyang, Hua
    Zhou, Cai-Ping
    Xu, Xing-Liang
    JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2009, 51 (05) : 521 - 526
  • [47] Integrated assessments of land degradation on the Qinghai-Tibet plateau
    Yang, Lin
    Zhao, Guangju
    Mu, Xingmin
    Lan, Zefan
    Jiao, Juying
    An, Shaoshan
    Wu, Yongqiu
    Miping, Puqiong
    ECOLOGICAL INDICATORS, 2023, 147
  • [48] Processes and modes of permafrost degradation on the Qinghai-Tibet Plateau
    JiChun Wu
    Yu Sheng
    QingBai Wu
    Zhi Wen
    Science in China Series D: Earth Sciences, 2010, 53 : 150 - 158
  • [49] Motive force of Qinghai-Tibet Plateau moving to east
    YANG Dong-hong YANG Xue-xiang
    Global Geology, 2005, (Z1) : 123 - 125
  • [50] Review of Qinghai-Tibet Plateau Impacting on Atmospheric Circulation
    Xie, Zhen-Hong
    2016 INTERNATIONAL CONFERENCE ON ENERGY DEVELOPMENT AND ENVIRONMENTAL PROTECTION (EDEP 2016), 2016, : 355 - 359