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How Does the Mid-crust Accommodate Deformation in Large, Hot Collisional Orogens? Insight from the Himalaya-Tibet System

How Does the Mid-crust Accommodate Deformation in Large, Hot Collisional Orogens? Insight from the Himalaya-Tibet System
中地壳如何适应大型热碰撞造山带的变形?
批准号:
1119380
负责人:
John Cottle
金额:
$36.64万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-07-01 至 2016-06-30

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中文摘要
翻译
热而弱的地壳是关于大陆-大陆碰撞演化的新假说的中心组成部分,特别是可能在容纳过去5000万年喜马拉雅-西藏碰撞内3000多公里的汇聚方面发挥重要作用。半粘性的中地壳岩石向南流向喜马拉雅造山带前缘的模型,“沟道流”,能够解释喜马拉雅山脉的许多地质观察。然而,另一种碰撞模型,特别是“逆冲-楔形锥形”,表明观测到的地质可能是在没有低粘性的地壳中层的情况下形成的。沟道流和逆冲-楔形锥体模型是相互排斥的,还是代表了单个碰撞系统内的时间和/或空间变形的连续体,这对于解释喜马拉雅造山带的演化,进而理解地球的演化至关重要?S说,许多陆-陆碰撞带。这些对比模型中的一个关键区别是喜马拉雅前陆内逆冲断层的位置、性质和关系;特别是主要中央逆冲和拉马尔逆冲的空间和运动学组合。在喜马拉雅的河道流模型中,预计出土的中地壳岩石将作为一个渗透变形的构造包,其底部以单一的主要断裂为边界;拉姆加尔山和主要的中央逆冲断层是这种扩散结构的合成和同时代成分。相反,逆冲-楔形锥体模型解释说,主要的中央逆冲和拉姆加尔逆冲在运动学上是不同的,并在前陆传播褶皱和逆冲带内顺次形成。这些预测正在通过对喜马拉雅中部到东部三个关键地点的样品进行分析来验证,这些样品结合了结构分析、铀-钍-铅副相岩石年代学和温压测量、碎屑热年代学和块状岩石的钕同位素地球化学。这些数据提供了关于中央主冲断和拉姆加尔逆冲的时间,中地壳变形和变质的时间,以及岩石的来源特征的基本信息,这些特征为喜马拉雅之前的成因提供了线索。这些数据还有助于洞察在核内记录的地壳深部腹地式变形与喜马拉雅前缘附近记录的浅前陆式变形之间的时间和空间演变。该项目支持研究生和本科生,为他们提供现场调查方法和各种分析设施方面的实践研究经验,特别是利用加州大学圣巴巴拉分校最先进的高分辨率和高精度电子束和离子束仪器。该项目还支持两名早期职业研究人员的研究工作,并有助于扩大未被充分代表的群体对地球科学的参与。该项目是国际科学合作的一部分,汇集了来自加州大学圣巴巴拉分校、加拿大、尼泊尔和印度的研究人员和学生。
英文摘要
Hot, weak crust is a central component of new hypotheses about the evolution of continent-continent collisions, and in particular may play an important role in accommodating the greater than 3000 kilometers of convergence within the Himalaya-Tibetan collision over the last 50 million years. Models that implicate flow of semi-viscous midcrustal rocks south towards the front of the Himalayan orogen, 'channel flow', are able to account for many geologic observations in the Himalaya. However, alternative models of collision, particularly 'thrust-wedge taper', demonstrate that the observed geology could have formed in the absence of a low-viscosity midcrustal layer. Whether channel flow and thrust-wedge taper models are mutually exclusive or whether they represent a continuum of deformation in time and/or space within a single collisional system is of crucial importance for explaining the evolution of the Himalayan orogen and, by extension, for understanding the evolution of Earth?s many continent-continent collision zones. A key difference in these contrasting models is the location, nature and relationships of thrust faults within the Himalayan foreland; specifically, the spatial and kinematic association of the Main Central Thrust and the Ramargh Thrust. In the channel flow model of the Himalaya, exhumed midcrustal rocks are predicted to act as a pervasively-deformed tectonic package bounded at its base by a single major fault; the Ramgarh and Main Central thrust are synthetic and coeval components of that diffuse structure. In contrast, thrust-wedge taper models interpret the Main Central thrust and Ramgarh thrust to be kinematically distinct, and formed in sequence within a foreland propagating fold and thrust belt. These predictions are being tested by analyzing samples at three key sites across the central to eastern Himalaya via a combination of structural analysis, uranium-thorium-lead accessory phase petrochronology coupled to thermobarometry, detrital thermochronology and bulk rock neodymium isotope geochemistry. These data provide essential information about the timing of the Main Central Thrust and the Ramgarh Thrust, the timing of deformation and metamorphism in the midcrust, and source characteristics of the rocks that give clues as to their pre-Himalaya origins. These data also yield insight into the evolution in time and space of the transition between deep crustal hinterland-style deformation recorded within the core and the shallow foreland-style deformation recorded near the front of the Himalaya. This project supports both graduate and undergraduate students, providing them with hands-on research experience in both field investigation methods and a variety of analytical facilities, particularly taking advantage of state-of-the-art high-resolution and high-precision electron- and ion-beam instrumentation at the University of California, Santa Barbara. The project is also supporting the research efforts of two early career researchers, and is contributing to the broadening of participation of underrepresented groups in the earth sciences. This project is part of an international scientific collaboration, bringing together researchers and students from the University of California, Santa Barbara, Canada, Nepal and India.
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