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青藏高原东北缘扩展变形范围与深部结构 被引量:5
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作者 刘愿 程斌 杨钊 《地球物理学进展》 CSCD 北大核心 2021年第3期908-922,共15页
青藏高原东北缘的隆升和扩展一直是地学界长期关注的重要科学问题,对于研究整个青藏高原的形成演化过程具有非常重要的意义.青藏高原东北缘是高原向北东方向扩展变形的结果,其进一步向北东方向扩展变形的边界范围长期存在较大争议.本文... 青藏高原东北缘的隆升和扩展一直是地学界长期关注的重要科学问题,对于研究整个青藏高原的形成演化过程具有非常重要的意义.青藏高原东北缘是高原向北东方向扩展变形的结果,其进一步向北东方向扩展变形的边界范围长期存在较大争议.本文主要收集了近年来前人在青藏高原东北缘及其邻区开展的浅表地质、地壳-上地幔三维结构以及壳-幔变形的相关研究并进行综合分析.前人通过构造热年代学、构造解析等方法的研究,揭示出中-晚新生代以来,海原弧形构造区以及更北端的贺兰构造带—银川地堑发生的强烈构造活动均与高原的隆升、扩展有关,认为高原东北缘向北东方向扩展变形的浅表范围已经越过海原弧形构造区,到达贺兰构造带—银川地堑.深部地球物理探测显示,海原弧形构造区深部结构构造改造过程与青藏高原向北东方向扩展有关.但是其更北端的(贺兰构造带—银川地堑)深部结构构造改造过程是否与青藏高原的扩展有关,目前尚存在一定的争议:重力异常及其大地电磁、部分层析成像、接受函数、地震波各向异性等方法的研究结果揭示,贺兰构造带—银川地堑下方存在大规模代表青藏高原东北缘软流圈的低速异常体、低电阻体,以及其下地壳-上地幔存在NW-SE向的各向异性方向与青藏高原东北缘的快波方向一致,这可能反映其主要是受到青藏高原向北东方向扩展、变形的影响;但是也有研究显示贺兰构造带—银川地堑存在的低速异常体较南部弱,或者规模较小、以及推测贺兰构造带—银川地堑存在中-下地壳NW-SE向的各向异性方向主要是由于存在形变各向异性导致的,认为青藏高原东北缘的边界位于海原断裂带. 展开更多
关键词 青藏高原东北缘 扩展变形范围 浅表地质 深部结构 壳-幔变形
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Upper mantle anisotropy and crust-mantle deformation pattern beneath the Chinese mainland 被引量:21
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作者 WANG ChunYong CHANG LiJun +3 位作者 DING ZhiFeng LIU QiongLin LIAO WuLin Lucy M FLESCH 《Science China Earth Sciences》 SCIE EI CAS 2014年第1期132-143,共12页
Over the past 10 years, the number of broadband seismic stations in China has increased significantly. The broadband seismic records contain information about shear-wave splitting which plays an important role in reve... Over the past 10 years, the number of broadband seismic stations in China has increased significantly. The broadband seismic records contain information about shear-wave splitting which plays an important role in revealing the upper mantle anisotropy in the Chinese mainland. Based on teleseismic SKS and SKKS phases recorded in the seismic stations, we used the analytical method of minimum transverse energy to determine the fast wave polarization direction and delay time of shear-wave splitting. We also collected results of shear-wave splitting in China and the surrounding regions from previously published papers. From the combined dataset we formed a shear-wave splitting dataset containing 1020 parameter pairs. These splitting parameters re- veal the complexity of the upper mantle anisotropy image. Our statistical analysis indicates stronger upper mantle anisotropy in the Chinese mainland, with an average shear-wave time delay of 0,95 s; the anisotropy in the western region is slightly larger (1.01 s) than in the eastern region (0.92 s). On a larger scale, the SKS splitting and surface deformation data in the Tibetan Plateau and the Tianshan region jointly support the lithospheric deformation mode, i.e. the crust-lithospheric mantle coherent deformation. In eastern China, the average fast-wave direction is approximately parallel to the direction of the absolute plate motion; thus, the upper mantle anisotropy can be attributed to the asthenospheric flow. The area from the Ordos block to the Sichuan Basin in central China is the transition zone of deformation modes between the east and the west regions, where the anisotropy images are more complicated, exhibiting "fossil" anisotropy and/or two-layer anis^3trc^py. The c^llisi(3n between the Indian Plate and the Eurasian Plate is the main factor of upper mantle anisotropy in the western region of the Chinese mainland, while the upper mantle anisotropy in the eastern region is related to the subduction of the Pacific Plate and the Philippine Sea Plate beneath the Eurasian Plate. 展开更多
关键词 shear-wave splitting upper mantle anisotropy lithosphere deformation asthenospheric flow absolute plate motion
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