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1.
Early Cenozoic Tectonics of the Tibetan Plateau   总被引:1,自引:0,他引:1  
Geological mapping at a scale of 1:250000 coupled with related researches in recent years reveal well Early Cenozoic paleo-tectonic evolution of the Tibetan Plateau. Marine deposits and foraminifera assemblages indicate that the Tethys-Himalaya Ocean and the Southwest Tarim Sea existed in the south and north of the Tibetan Plateau, respectively, in Paleocene-Eocene. The paleooceanic plate between the Indian continental plate and the Lhasa block had been as wide as 900km at beginning of the Cenozoic Era. Late Paleocene transgressions of the paleo-sea led to the formation of paleo-bays in the southern Lhasa block. Northward subduction of the Tethys-Himalaya Oceanic Plate caused magma emplacement and volcanic eruptions of the Linzizong Group in 64.5-44.3 Ma, which formed the Paleocene-Eocene Gangdise Magmatic Arc in the north of Yalung-Zangbu Suture (YZS), accompanied by intensive thrust in the Lhasa, Qiangtang, Hoh Xil and Kunlun blocks. The Paleocene-Eocene depression of basins reached to a depth of 3500-4800 m along major thrust faults and 680-850 m along the boundary normal faults in central Tibetan Plateau, and the Paleocene-Eocene depression of the Tarim and Qaidam basins without evident contractions were only as deep as 300-580 m and 600-830 m, respectively, far away from central Tibetan Plateau. Low elevation plains formed in the southern continental margin of the Tethy-Himalaya Ocean, the central Tibet and the Tarim basin in Paleocene-Early Eocene. The Tibetan Plateau and Himalaya Mts. mainly uplifted after the Indian-Eurasian continental collision in Early-Middle Eocene.  相似文献   

2.
南海位于印度板块、欧亚板块和太平洋板块之间,是世界上最大的边缘海,其构造位置处于太平洋构造域和特提斯构造域,地质构造复杂.关于南海形成演化的动力学机制存在有多种不同观点,其中最重要的一个观点是印度板块与欧亚板块的碰撞致使华南地块和印支地块地幔物质沿东南方向蠕动,从而导致南海的海底扩张.从特提斯的演化规律,以及新特提斯的闭合过程来看,南海并不是特提斯洋的残留海,而是新特提斯在闭合过程中配合印度板块与欧亚板块碰撞导致华南地块和印支地块地幔物质东南方向蠕动的动力学机制下,在南海重新活化的结果.  相似文献   

3.
Variscan to Alpine magmatic activity on the North Tethys active Eurasian margin in the Caucasus region is revealed by 40Ar/39Ar ages from rocks sampled in the Georgian Crystalline basement and exotic blocs in the Armenian foreland basin. These ages provide insights into the long duration of magmatic activity and related metamorphic history of the margin, with: (1) a phase of transpression with little crustal thickening during the Variscan cycle, evidenced by HT-LP metamorphism at 329–337 Ma; (2) a phase of intense bimodal magmatism at the end of the Variscan cycle, between 303 and 269 Ma, which is interpreted as an ongoing active margin during this period; (3) further evolution of the active margin evidenced by migmatites formed at ca. 183 Ma in a transpressive setting; (4) paroxysmal arc plutonic activity during the Jurassic (although the active magmatic arc was located farther south than the studied crystalline basements) with metamorphic rocks of the Eurasian basement sampled in the Armenian foreland basin dated at 166 Ma; (5) rapid cooling suggested by similar within-error ages of amphibole and muscovite sampled from the same exotic block in the Armenian fore-arc basin, ascribed to rapid exhumation related to extensional tectonics in the arc; and finally (6) cessation of ‘Andean’-type magmatic arc history in the Upper Cretaceous. Remnants of magmatic activity in the Early Cretaceous are found in the Georgian crystalline basement at c. 114 Ma, which is ascribed to flat slab subduction of relatively hot oceanic crust. This event corresponds to the emplacement of an oceanic seamount above the N Armenian ophiolite at 117 Ma. The activity of a hot spot between the active Eurasian margin and the South Armenian Block is thought to have heated and thickened the Neo-Tethys oceanic crust. Finally, the South Eurasian margin was uplifted and transported over this hot oceanic crust, resulting in the cessation of subduction and the erosion of the southern edge of the margin in Upper Cretaceous times. Emplacement of Eocene volcanics stitches all main collisional structures.  相似文献   

4.
The Sivas Basin is one of several Central Anatolian basins. It developed mainly after the closure of the northern branch of Neotethys. Its location between the Kirsehir Massif and the Taurides implies that it should not be confused with the Inner Tauride ocean located south of the Eastern Taurides. The basement of the Sivas Basin consists of ophiolitic nappes and melanges that were thrust toward the margins of the continental blocks present in this area—the Pontide belt to the north and the Anatolide-Tauride platform to the south. The basin was initiated by tectonic subsidence at the end of the Cretaceous, and it can be compared to a foreland basin during Paleocene and early to middle Eocene time. It was emergent during late Eocene and Oligocene time, although it continued to subside. A transgression in some parts of the basin occurred during the Oligocene and early Miocene (maximum flooding). During the Pliocene, it was affected by regional compression directed toward the NNW, which resulted from convergence of the Arabian and Eurasian plates. This basin may have developed as an intracontinental basin within the Tauride platform and probably never had an oceanic basement. As a result of this work, the general paleogeographic organization of Central Anatolia and Northern Tethys during the Mesozoic should to be revised.  相似文献   

5.
琉球弧前盆地位于菲律宾海板块北部与欧亚板块汇聚部位,发育于琉球海沟北部增生楔与琉球岛弧之间,是典型“沟-弧-盆”体系的组成单元。现利用多道地震资料,首次建立琉球弧前盆地的层序地层格架,分析其新生代层序地层特征,阐明弧前盆地沉积充填演化过程,并探讨各盆地主要物源。通过地震剖面解释分析,表明:①始新世为岛弧变质基底沉积期,晚渐新世晚期-早中新世阶段发育残余伸展盆地基底沉积,属于浅海环境,主要受岩浆活动影响,发育火山碎屑岩相;②中中新世-第四纪时期是弧前盆地的主体沉积期,盆地从半深海沉积环境向深海环境过渡,发育典型深海沉积相,局部为火山碎屑岩相;中中新世时北部的南琉球群岛是弧前盆地主要物源区;晚中新世至第四纪时期,台湾岛东北部陆区成为对该弧前盆地贡献最大的物源区,而南琉球群岛的物源供给量降为次要地位。该研究结果是对琉球岛弧及周缘构造控盆作用研究的拓展,并对台湾岛陆地与东部海域“源-汇”系统研究有重要的指导意义。  相似文献   

6.
王二七 《地质科学》2013,48(2):334-353
尽管青藏高原具有至少5 000万年漫长的演化历史,但是我们对它的认识多是基于一些持续时间很短的构造、沉积、热和气候等事件。在前人的研究基础上,本文对发生在高原内的主要构造-热事件进行梳理,并在时空上进行对比,试图确定相对合理的动力学控制因素。在新生代早期(~50 Ma)和中新世中晚期(~10 Ma),印度板块运动速率发生两次大幅度衰减,前一事件被认为与印度与欧亚大陆碰撞有关,后一事件被认为与高原向外扩展有关,成因是高原的底部岩石圈的剥离和由此引发的均衡反弹。除此以外,在高原内还发生过两次事件,虽然它们没有反应在印度板块运动速率的变化,但是留下的痕迹遍布高原。一次是高原内部区域性挤压缩短的停止,平坦的高原面得以发育,另一次是高原周边山脉的隆升,这两次事件都发生在新生代中期(~25 Ma)。这两次构造事件呈现的"此消彼长"关系反映出高原向外的扩展,成因是否是高原岩石圈底部的剥离还是个未知数。由此可以得出结论,即:中央高原现今的构造与地貌格架定型于早期事件(~25 Ma),而高原周边造山带现今的构造和地貌格架定型于晚期事件(~10 Ma)。即使是新生代中期的扩展事件,在时间上也远远滞后于印度与欧亚大陆的碰撞时间,青藏高原新生代早期(50~35 Ma)在很大程度上仍是一段哑历史,该时期到底发生了什么?这是一个值得探索的科学问题。  相似文献   

7.
缅甸Sagaing走滑断裂及对睡宝盆地构造演化的控制和影响   总被引:5,自引:0,他引:5  
在研究Sagaing走滑断裂的形成和发展的基础上将其分为2个阶段:第一阶段古新世—早始新世洋陆俯冲造成了缅甸板块与欧亚板块的分离,使缅甸板块加速向北漂移,Sagaing断裂开始形成;第二阶段始新世以来发生陆陆俯冲,印度板块的北东部首次开始碰撞缅甸板块。这次A型俯冲使得缅甸板块沿Sagaing走滑断裂向北继续漂移,最大的右行走滑位移达450 km。在Sagaing走滑断裂的控制下,睡宝盆地亦呈现2期构造特征:中新世,缅甸盆地内经历拉张和断裂,安德曼海(Andaman)打开,并且弧后扩张中心向南迁移,睡宝盆地即呈现拉张的构造环境;上新世—更新世,由于缅甸板块向北运动碰撞到亚洲板块的喜马拉雅断裂,受到阻挡,构造反转。睡宝盆地受挤压和扭压导致一系列的逆断层、花状构造,最终形成以南北向右行走滑为主、叠加东西向扭压的应力背景。  相似文献   

8.
An Outline of Mesozoic to Paleogene SequenceStratigraphy and Sea-Level Changes inNorthern Himalayas,Southern Xizang¥ShiXiaoyi...  相似文献   

9.
万晓樵 《地学前缘》2020,27(6):116-127
有孔虫化石资料是地质历史的真实记录,对不同地质时期古地理格局和生态环境的变迁具有动态响应。西藏特提斯构造带的演化、板块相对地理位置变迁等诸多问题一直是地学界关注的热点。研究西藏特提斯沉积盆地内有孔虫动物群的古生态特征和古地理分布,能够识别生物地理区系,进而恢复不同时期的大地构造演化格局。西藏地区中、新生代古生物地理区系的分化是西藏特提斯地质演变的具体反映。西藏南部早侏罗世产底栖大有孔虫Orbitopsella喜暖动物群,晚侏罗世出现双壳类Buchia喜冷动物群。由此推测,侏罗纪新特提斯洋扩张尤其是中大西洋的开张,将位于印度大陆北缘的特提斯喜马拉雅带,从早侏罗世较低纬度的温暖位置向南推移至较高纬度的低温地区。白垩纪中期Orbitolina有孔虫类群繁盛于特提斯北侧亚洲大陆的拉萨地块和羌塘盆地,但没有出现在印度大陆。这说明当时印度大陆已脱离冈瓦纳大陆向北漂移,受四周深水环境的阻隔,Orbitolina动物群未能向印度大陆扩散。此时深水环境中生活着浮游有孔虫Ticinella-Rotalipora动物群。Turonian晚期开始形成海退,拉萨地块的海洋环境基本消失。Coniacian-Campanian早期印度大陆北缘浮游有孔虫继续占优势,繁盛Marginotruncana-Globotruncana动物群。直至白垩纪末,印度和欧亚大陆之间的深海阻隔仍然存在,雅鲁藏布江缝合带两侧动物群一直存在根本性差异。印度大陆北缘发育着Orbitoides-Omphaloceclus 动物群,冈底斯南缘则以Lepidorbitoides-Pseudorbitoides动物群为特征。古新世Danian期生态环境发生变化,显示大印度与亚洲大陆发生初始碰撞(66~61 Ma)。Selandian期之后,缝合带两侧才出现相同的Miscellanea-Daviesina有孔虫类群,生物区系的分异基本结束。始新世早期缝合带两侧为完全相同的生物区系,共同发育底栖大有孔虫Nummulites-Discocyclina动物群。有孔虫古地理证据表明,大印度与欧亚大陆的初始碰撞在古新世早期发生,时间大致在Danian期,沿雅鲁藏布缝合带的深海演变为残留海环境。小个体货币虫Nummulites willcoxi和浮游有孔虫Globigerina ouachitaensis的存在,代表特提斯喜马拉雅最高海相沉积,时代属于始新世Priabonian晚期(35~34 Ma)。随后,特提斯喜马拉雅海封闭,海水完全退出西藏境内。  相似文献   

10.
中国大陆位于欧亚板块的东南部,受欧亚板块,库拉-太平洋板块与印度板块的三向不均衡作用,在中生代一新生代时导致中国东部发生郯庐断裂,梅河盆地为郯庐断裂在东北的一个分支——抚密断裂里的地堑-半地堑聚煤盆地。其构造格架是在盆地形成演化过程中,各个阶段构造叠加的结果,它包括先期的基底构造、同沉积构造、后期的改造构造。梅河盆地从形成到结束盆缘断裂(F1、F2)控制着盆地的沉积和范围,盆地充填结束后,由于纵张断裂Fv切割,下降盘煤系地层埋藏较深,根据上升盘煤层发育分析,预测下降盘应为找煤的可靠远景区。  相似文献   

11.
雅鲁藏布江断裂带的构造特征   总被引:1,自引:0,他引:1  
雅鲁藏布扛断裂带是印度板块与欧亚板块俯冲、碰撞的界面。通过对断裂带及邻近地质体的构造变形及大地构造背景研究,可将断裂带的发展划分成4个阶段:1)蛇绿岩侵位前的板块俯冲阶段(90Ma以前):2)蛇绿岩侵位时的板块俯冲阶段(90Ma左右—始新世);3)板块碰撞阶段(始新世以后);4)走滑阶段(现代)。  相似文献   

12.
雅鲁藏布江断裂带的构造特征   总被引:2,自引:0,他引:2  
雅鲁藏布扛断裂带是印度板块与欧亚板块俯冲、碰撞的界面。通过对断裂带及邻近地质体的构造变形及大地构造背景研究,可将断裂带的发展划分成4个阶段:1)蛇绿岩侵位前的板块俯冲阶段(90Ma以前):2)蛇绿岩侵位时的板块俯冲阶段(90Ma左右—始新世);3)板块碰撞阶段(始新世以后);4)走滑阶段(现代)。  相似文献   

13.
Geophysical data illustrate that the Indian continental lithosphere has northward subducted beneath the Tibet Plateau, reaching the Bangong–Nujiang suture in central Tibet. However, when the Indian continental lithosphere started to subduct, and whether the Indian continental crust has injected into the mantle beneath southern Lhasa block, are not clear. Here we report new results from the Quguosha gabbros of southern Lhasa block, southern Tibet. LA-ICP-MS zircon U–Pb dating of two samples gives a ca. 35 Ma formation age (i.e., the latest Eocene) for the Quguosha gabbros. The Quguosha gabbro samples are geochemically characterized by variable SiO2 and MgO contents, strongly negative Nb–Ta–Ti and slightly negative Eu anomalies, and uniform initial 87Sr/86Sr (0.7056–0.7058) and εNd(t) (− 2.2 to − 3.6). They exhibit Sr–Nd isotopic compositions different from those of the Jurassic–Eocene magmatic rocks with depleted Sr–Nd isotopic characteristics, but somewhat similar to those of Oligocene–Miocene K-rich magmatic rocks with enriched Sr–Nd isotopic characteristics. We therefore propose that an enriched Indian crustal component was added into the lithospheric mantle beneath southern Lhasa by continental subduction at least prior to the latest Eocene (ca. 35 Ma). We interpret the Quguosha mafic magmas to have been generated by partial melting of lithospheric mantle metasomatized by subducted continental sediments, which entered continental subduction channel(s) and then probably accreted or underplated into the overlying mantle during the northward subduction of the Indian continent. Continental subduction likely played a key role in the formation of the Tibetan plateau at an earlier date than previously thought.  相似文献   

14.
Shelf, forereef and basin margin (slope) olistoliths (Exotic blocks of limestone) of Permian–Jurassic age are tectonically juxtaposed within the Triassic to Eocene age pre-orogenic, deep abyssal plain turbidites of the Lamayuru. The pre-collision tectonic setting and depositional environment of the limestone olistoliths can be reconstructed from within the neighbouring Zanskar range. The disorganized Ophiolitic Melange Zone, an association of different tectonic rock slivers of Jurassic–Eocene age, is tectonically underlain by the overthrusted Lamayuru Formation and tectonically overlain by the Nindam Formation. Tectonic slivers of Late Jurassic–Early Cretaceous age red radiolarian cherts represent a characteristic lithotectonic unit of the Ophiolitic Melange Zone, those occurring near the contact zone with the Lamayuru Formation, were deposited within the neo-Tethyan deep-ocean floor of the Indian passive margin below the carbonate compensation depth. These tectonic slivers accumulated along the northern margin of the Indus–Yarlung Suture Zone of the Ladakh Indian Himalaya during subduction accretion associated with the initial convergence of the Indian plate beneath the Eurasian plate.  相似文献   

15.
冈底斯成矿带内的岩浆岩是印度板块与欧亚板块碰撞造山的产物,更是研究碰撞造山与成矿作用的理想对象。多仁则—桑阿卡地区位于冈底斯火山-岩浆弧中段中南部,区内含矿岩体为灰白色中细粒黑云母花岗闪长岩。LA-ICP-MS锆石U-Pb测年、岩石地球化学和Sr-Nd同位素研究表明:岩体就位年龄为(49.0±0.7)Ma,其形成时代为始新世;岩石具有高硅(w(SiO2)为67.13%)、高钾(w(K2O)为3.72%)、富碱(w(K2O+Na2O)为7.48%)、贫MgO(w(MgO)为1.34%,小于3%)的特征,为高钾钙碱性系列的高分异I型花岗岩;Eu负异常(δEu为0.70)和Sr的亏损暗示岩浆发生斜长石的分离结晶作用;岩石的微量元素表现出Th、U、K、Nd、Zr、Hf富集和Nb、Ta、Sr、Ti、P亏损的特征;全岩Sr-Nd同位素((87Sr/86Sr)i为0.705 280~0.705 530、εNdt)为-2.2~-1.6)、微量元素及元素比值揭示岩浆源区是壳幔混源,是在印度板块与欧亚板块俯冲-碰撞后板片断离构造背景下,热的软流圈地幔物质通过板片断离窗上涌,并诱发下地壳部分熔融,形成该地区壳幔混源岩浆-热液成矿作用。综合研究认为,多仁则—桑阿卡地区斑岩型-热液型铜多金属成矿作用是早始新世岩浆活动大爆发滞后的成矿响应,是与冈底斯成矿带内的壳幔花岗岩有关的Cu-Au-Mo-Fe-Pb-Zn成矿系统(52~47 Ma)的重要组成部分。  相似文献   

16.
南海西北次海扩张时代和洋壳性质:沉积地层及重磁依据   总被引:1,自引:0,他引:1  
利用沉积地层被动超覆和基底重磁异常特征对南海西北次海形成时代和洋壳性质进行了探讨。推断南海西北次海初始扩张时间为早渐新世,结束扩张时间为晚渐新世早期。地层变形、被动超覆特征、洋壳基底形态及对称性特点反映出两期洋壳扩张事件。第一期发生在早渐新世。由于洋壳扩张,上始新统被拉断,在洋壳边界处上始新统突然终止现象明显。受洋壳横向扩张推挤和纵向沉降作用影响,上始新统明显变形,并向扩张中心倾覆。第二期洋壳扩张发生在晚渐新世早期。该期洋壳扩张持续时间短,扩张幅度小,下渐新统被拉开的距离有限。由于南海西北次海形成期间不同部位地壳伸展减薄程度不同,南海西北次海洋壳基底呈北东部较宽,向南西方向变窄,并逐渐尖灭的不规则三角形。根据盆地边缘上始新统向海盆中心方向的断点/线和重磁异常资料,推测西北次海南西侧洋壳边界位于海盆基底坡角处附近,洋壳较窄;而北东侧洋壳边界位于海底坡角处附近,洋壳相对较宽。另外,重磁异常表明,在洋壳基底中有陆壳残留块体存在。上述这些现象说明南海西北次海在洋壳萌芽阶段就先天夭折,停止发育。  相似文献   

17.
东海陆架盆地新生代扩张率的估算   总被引:4,自引:0,他引:4       下载免费PDF全文
郝重涛  叶洪 《地质科学》1999,34(1):29-39
东海陆架盆地是位于中国大陆东部边缘大陆地壳之上的边缘海盆地。盆地新生代构造演化经历了断陷(初始沉降)和坳陷(热控沉降)两个阶段。本文利用钻井及地震反射剖面资料,通过钻井古地层剥蚀量和剥蚀时间的恢复,应用Mckenzie(1978)的均一拉伸模式和Sclater(1985)的双层拉伸模式对陆架盆地,主要是浙东坳陷的西湖凹陷进行了基底沉降和地壳岩石圈扩张率的定量估算。计算结果表明东海陆架盆地沉降速率早期较快,后期变慢。西湖凹陷新生代以来地壳岩石圈扩张率,在凹陷北部(D800测线)为40%-50%,中部(D688测线)为100%-140%,南部(G455测线)为60%-120%。  相似文献   

18.
王二七  孟恺  许光  樊春  苏哲 《岩石学报》2018,34(7):1867-1875
印度陆块与欧亚大陆的碰撞是印度洋扩张和特提斯洋闭合综合作用的结果。本文通过综合分析和研究提出这3个板块的相互作用致使印度陆块发生过2次向北的仰冲:早期(古新世末-始新世初,~57Ma)仰冲受其超高速运动(140mm/yr)的驱动,与特提斯之间产生的速度差致使两者间的边界发生破裂,密度小的印度陆块沿印度洋东经90°海岭和马尔代夫岛链向北仰冲到特提斯洋壳之上,两者的叠加导致印度陆块北缘——特提斯喜马拉雅地壳增厚(~70km)并且沉积了一套造山磨拉石——柳曲砾岩;晚期(渐新世-中新世之交,~25Ma)仰冲发生在碰撞后,由于高喜马拉雅结晶岩系沿主中央冲断带和藏南拆离断裂发生的垂向挤出,位于上盘的特提斯喜马拉雅沉积盖层同时发生重力垮塌,沿大喜马拉雅反冲断裂仰冲到冈底斯岩浆岩带之上并且造成后者的隆升和前陆下陷,其北缘充填了一套造山磨拉石沉积——大竹卡砾岩。这两次构造事件均受印度陆块的快速运动驱动。此外,在印度陆块超高速运动的挤压下,特提斯洋可能在早白垩世之后就停止了扩张,而老的洋壳不是俯冲消减了就是被仰冲的印度陆块掩盖了,这解释了为什么雅鲁藏布江缝合带只存早白垩世蛇绿岩。印度洋内东经90°海岭和马尔代夫岛链构成印度陆块的南东和南西边界,前者呈右行走滑,后者呈左行走滑,两者勾画出印度陆块向北漂移的轨迹。  相似文献   

19.
Late Mesozoic and Cenozoic volcanic rocks in eastern Papua record a complex series of volcanotectonic events which reflect interaction between the Indo-Australian and Solomon sea plates. Basement formations of Upper Cretaceous and Eocene submarine basalt are comparable to those characteristic of sea floor spreading centers and are thought to have originated during volcanic activity associated with spreading in the Coral Sea basin. Arc-trench type andesitic volcanism was prominent during the late Cenozoic but shows no clear relationship to a subduction event. An alternative explanation links the development of thickened crust and consequent crust/mantle interaction with the generation of andesitic magmas. The tectonic environment of eastern Papua during the late Cenozoic was one of block faulting and uplift associated with crustal tension. The presence of Quaternary peralkaline rhyolites suggests that this environment is now being replaced by active rifting.  相似文献   

20.
雅拉香波穹隆位于特提斯喜马拉雅构造带东部,出露显生宙不同时期的岩石地层,发育强烈韧性剪切变形和多期岩浆热事件,良好地记录了印度大陆俯冲导致的构造变形和岩浆热历史。对雅拉香波穹隆不同构造部位的花岗质岩石进行LA-ICP-MS锆石U-Pb同位素测年,获得4期构造岩浆事件的高精度测年数据。早期锆石年龄520.4±6.3Ma与536±12Ma指示喜马拉雅地块结晶基底泛非期岩浆侵位时代,晚期锆石年龄揭示新生代碰撞造山不同阶段构造热事件的发生时代。其中,45.6±1.2--44.16±0.88Ma反映印度大陆向北俯冲的起始时代,35.00±0.48Ma对应于始新世晚期增厚地壳深部构造热事件年龄,15.67±0.50Ma指示雅拉香波核部花岗岩侵位及穹隆的形成时代。  相似文献   

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