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1.
通过对2001年若羌8.1级以来欧亚地震带3次8级以上大震内存联系的探索,发现2008年汶川8级大震和2001年若羌8.1级、2004年印尼9级等巨大地震具有以下共性:①同属于印度洋板块对欧亚板块碰撞、推挤的结果;②表明印度洋板块对欧亚板块的碰撞推挤在本世纪初这些年来急剧加强;作者电子信箱:牟雅元,muyayuan@163.com  相似文献   

2.
西藏中部构造特征及印度板块仰冲问题   总被引:1,自引:0,他引:1       下载免费PDF全文
以负磁场为背景的航磁特征,揭示了基底是由浅变质的副变质岩组成的,属于柔性基底。 藏北断裂在磁场图上不明显。 雅鲁藏布江断裂是举世闻名的缝合线。反映雅鲁藏布江断裂的航磁异常带,具有强度大、连续性好和长度大的特点,为世界上罕见的大陆线性异常带。地面地质和各种地球物理资料查明断面是南倾的。 晚三迭世开始,印度板块在特提斯洋壳上向北仰冲,并导致特提斯在始新世的关闭。两大陆碰撞后,仰冲运动结束,代之以印度板块对欧亚板块南缘的推挤。  相似文献   

3.
从板块碰撞看新疆地震活动的迁移   总被引:1,自引:0,他引:1  
1.引言众所周知,新疆地处欧亚板块腹地,是我国主要的内陆地震活动区。一般认为其强震的活动主要受印度洋板块向北东推挤作用的影响。这种作用通过板块的边缘地区,即喜马拉雅弧区传递到新疆南部的帕米尔—西昆仑区,然后逐渐向北传递。传递过程中可能引起  相似文献   

4.
根据关东-东海地区1980年1月至1993年4月期间的地震资料,描绘出了菲律宾海板块和欧亚板块之间目前地震平静的边界。关东-东海地区的大多数地震,不是发生在上覆板块(欧亚板块)之内,就是发生在俯冲板块(菲律宾海板块)之中,其震源深度不到30km。  相似文献   

5.
论新疆活动构造特征与地震的关系(4)   总被引:1,自引:2,他引:1  
宋和平  柔洁 《内陆地震》2007,21(1):1-13
中国西部在印度洋板块和欧亚板块的作用下,地壳形变十分强烈。新疆地区地壳形变受力方向为近南北—北北东向,南部地区受印度洋板块作用,北部地区则主要是受西伯利亚块体的作用,整体运动速率由南向北逐渐减弱,GPS测量结果得到的区域应力场分布和地震震源机制解与区域构造的展布及其活动表现都相吻合。  相似文献   

6.
杨勇 《地球》2015,(4):68-70
青藏高原是世界的第三极,孕育了多条亚洲的主要河流。这里是世界上最重要的生态系统之一,对维持整个欧亚大陆的生态稳定发挥着关键作用。雅鲁藏布江是世界上海拔最高的河流,发源于雄伟的喜马拉雅山,沿着欧亚板块运动形成的山脊自西向东横贯青藏高原,经由喜马拉雅山、念青唐古拉山和横断山脉的交界处,在加拉白垒和南迦巴瓦峰之间形成世界上最深的峡谷,随后进入南亚与恒河相会,注入印度洋。雅鲁藏布江源地海拔高、地质条件复杂,河流水量充沛、水道长、落差大,有极大的开发潜力。  相似文献   

7.
根据菲律宾海的演化,指出菲律宾海板块的特点:以俯冲边界为主,易于产生形变.将理论结果与地球物理、地质以及GPS测量结果进行比较,发现菲律宾海板块内部及边界有明显形变.讨论了菲律宾海板块与欧亚板块的相互作用,指出其相互作用有明显的分段性.在南海海槽一带有较强的挤压,在琉球海沟一带由于两板块耦合较弱及冲绳海槽的开裂,没有形成对东亚大陆的挤压;台湾附近两板块碰撞,对中国东南形成较强的挤压;在菲律宾群岛一带形成两板块间的复杂变形带,使两板块间的作用减弱.  相似文献   

8.
华北东部新生代构造应力场变化之探讨   总被引:2,自引:0,他引:2       下载免费PDF全文
本文在分析了华北东部地堑构造发育特征、地震断层和震源机制等资料的基础上,提出:早第三纪,本区受到了北西—南东向的强烈拉张,其应力场主要受太平洋板块活动的影响;自晚第三纪以来本区主要受北东—北东东向挤压应力场控制。其应力场主要受印度洋板块活动的影响,而太平洋板块活动的影响已相对减弱  相似文献   

9.
青藏高原是印度洋板块和欧亚板块的汇聚区域,是陆壳碰撞的典型地区。地质构造十分复杂,成为解决大陆地球动力学等重要理论问题的关键地区。在1980年国际青藏高原科学讨论会上,关于青藏高原板块运动的讨论大致分为三部份:一、关于板块边界划分的论点以古生物为依据,喜马拉雅地区发现分布广泛的反映冷温环境的动植物化石和含有冰碛落石的石炭—下二叠统冰海相沉积。它们大致可以和印度次大陆同时代的冈瓦纳型沉积对比。因此认为喜马拉雅山是印度板块的一部份,其北缘的雅鲁藏布江为两大板块的边界。  相似文献   

10.
西藏最南边的部分是属于印度大陆板块,而拉萨地块自白垩纪以前就属于欧亚板块,两者之间的缝合带是1981—1982年中法两国联合考察项目深部构造地震探测的主要目的。第一阶段的探测结果,已在相应的论文中报导。1982年6月的第二阶段主要设想在拉萨地块上,紧靠雅鲁藏布江缝合线的北面,布置一条平行于缝合线的大剖面,进行地震探测工作,以便与缝合线以南1981年大剖面的地震探测出的构造成果进行比较。但是由于交通及气候的限制,没有能按原设想位置布置成新的大剖  相似文献   

11.
The eastern Himalaya syntaxis is located at the southeastern end of the Qinghai-Tibet Plateau and is the area where the Eurasian plate collides and converges with the Indian plate. The Namjabawa is the highest peak in the eastern section of the Himalayas, and the Yarlung Zangbo River gorge is around the Namjabawa Peak. The NE-striking Aniqiao Fault with right-lateral strike-slip is the eastern boundary fault of the Namjabawa syntaxis. Motuo Fault is in the east of and parallel to the Aniqiao Fault, distributing along the valley of the Yarlung Zangbo River. The section of Yarlung Zangbo River valley at the eastern side of the Namjabawa area is located in the southern foothills of the Himalayas and belongs to the subtropical humid climate zone with dense tropical rainforest vegetation. Dense vegetation, large terrain elevation difference, strong endogenetic and exogenic forces, and abundant valley deposition bring enormous difficulty to the research on active faults in this area. Since 1990s, surface morphology can be quantitatively expressed by digital elevation models as the rapid development of remote sensing technology. Geomorphic types and their characteristics can be quantified by geomorphological parameters which are extracted from DEM data, describing geomorphologic evolution and tectonic activity. But to date, researches based on quantitative geomorphic parameters are mainly focus on the differential uplift of regional blocks. In the study and mapping of active faults, surface traces of active faults are acquired by visual interpretation of remote sensing images. It has not been reported to identify the location of active faults via the change of quantitative geomorphic parameters. The distribution map of topographic elevation variation coefficient is suitable to reflect the regional erosion cutting and topographic relief, and the places with higher topographic elevation variation coefficient are more strongly eroded. In this paper, we attempt to identify the active faults and explore their distribution in the Yarlung Zangbo Gorge in the east of the Namjabawa Peak based on the application of two quantitative geomorphic parameters, namely, the topographic slope and the elevation variation coefficient. Using the DEM data of 30m resolution, two quantitative geomorphic parameters of topographic slope and elevation variation coefficient in Namjabawa and its surrounding areas were obtained on the ArcGIS software platform. On the topographic slope distribution map, the slope of the eastern and western banks of the Yarlung Zangbo River near Motuo is steep with a slope angle of more than 30°. Under the background of steep terrain, there are gentle slope belts of 5°~25° distributing intermittently and NE-striking. On the distribution map of topographic elevation variation coefficient, the elevation variation coefficient of the Yarlung Zangbo River near Motuo is greater than 0.9. On the background of the high topographic fluctuation area, it develops gently topographic undulating belts with elevation variation coefficient of 0.2~0.9. The belts are intermittently distributed and northeastern trending. Through the field geological and geomorphological investigation and trench excavation, it is found that the abnormal strips of the above-mentioned geomorphological parameters are the locations where the active faults pass. The above results show that the quantitative analysis of the topographic slope and the coefficient of variation of elevation can help us find active faults in areas with large terrain slope, serious vegetation coverage and high denudation intensity.  相似文献   

12.
The middle sector of the Yarlung Zangbo suture zone stretches over 200 km long from Ngamring through Geding to Rinbung, roughly along Yarlung Zangbo River valley (Fig. 1). This belt resulted from the closure of the Tethyan ocean and the collision be- tween Indian plate and Lhasa block[1―8]. Lots of works demonstrated that rifting of the Tethyan basin in southern Tibet started from Triassic time. Initial oce- anic crust appeared in the Late Jurassic, and then ex- perienced a rapid sprea…  相似文献   

13.
本文搜集了现在已知的关于青藏高原地区的各种地球物理场特征,即:该区的地壳与上地幔构造,地磁场要素的分布,航空磁测的结果,古地磁极移轨迹,重力异常与均衡补偿,地热活动与温泉分布,地震活动以及深地震探测等研究结果,来探讨它与大陆板块构造的关系。 研究的初步结果表明,印度洋板块与欧亚板块交接地带的北界为雅鲁藏布江,南界为恒河平原的北缘。喜马拉雅地带为这两大板块碰撞与挤压的过渡带,其宽度约300公里左右。这一地带的大、小地震绝大部分是浅源地震,只在弧形山系和东西弧顶及其转折部位有中源地震。在这一过渡带内水热活动剧烈,重力也不均衡。 雅鲁藏布江以北到当雄一带,地壳厚度为70-73公里,喜马拉雅地区则为68-45公里左右,并向南翘起。地壳由多层介质组成,在下地壳中存在着低速层。断层面解表现为向南逆冲,主压应力轴基本上为南北向和北东向,且与震源深度相关。现在构造活动与地震活动似均逐渐向南移到主边界大断层一带。 在雅鲁藏布江以北,小震震源深度向南递加,而在恒河平原以北,则向北递加。此外,在上述两个地区均有零星的中源地震发生。因此,喜马拉雅地带的南北两侧有相向“俯冲”之势。在兴都库什地区,中源地震震源面北倾;在帕米尔地带,中源地震震源面南倾。因此,震源面构成了“V”字  相似文献   

14.
本文利用雅鲁藏布江下游台阵的16个台站2016年度的近震数据,通过横波窗内的横波分裂测量,在各台站总计得到369个有效的横波分裂参数对,分析得出喜马拉雅东构造结上地壳各向异性特征。空间上,各台站的快波偏振优势方向整体上自西向东由近EW向,转为NE向,然后转向近NS或NNE向,最后转向NW向。大部分靠近或位于活动断裂带上的台站的快波偏振优势方向与断裂的走向一致,主要体现在墨竹工卡断裂上的ZOS台,雅鲁藏布江断裂上的WOL,NYG,ZIB和DOJ台站,墨脱断裂上的BEB和DEX台站,以及迫龙—旁辛断裂上的BAX和DAM台站;而距离雅鲁藏布江断裂西段和东段各有一定距离的LAD和YIG台站,以及位于雅鲁藏布江断裂东段与嘉利断裂交会处的TOM台的快波偏振优势方向与断裂走向存在一定角度,但其与喜马拉雅东构造结主压应力场方向NNE向基本一致。上地壳各向异性整体体现了结构控制和应力控制的特征,但各台站的横波分裂参数并未表现出随时间的规律变化特征,这可能与2016年研究区地震活动强度较弱有关。研究区各台站间存在较大的横波分裂参数差异和自身离散度,反映出东构造结复杂的构造特征和剧烈的变形作用。   相似文献   

15.
为研究日喀则市活动断裂深浅部构造关系及深部孕震机制,跨雅鲁藏布江谢通门—日喀则段部署了48个宽频大地电磁测深点,剖面长度为108 km。在二维反演的基础上对壳幔200 km深度范围内的电性结构进行了探测研究。剖面自南向北依次经过喜马拉雅地块、雅鲁藏布江缝合带和拉萨—冈底斯地块。喜马拉雅地块地壳表现为高阻特性,其北侧的仲巴—郎杰学陆缘移置混杂地体发育了深达上地幔盖层的巨厚的北倾低阻体;雅鲁藏布江主缝合带表现为喇叭状低阻通道,宽约10 km,存在深浅部两处低阻体,浅部南倾深部北倾,低阻通道南部发育近似直立或南倾的高阻日喀则蛇绿岩,北部发育近直立的高阻冈底斯花岗岩体,整体表现为两个高阻异常体中间夹一个连通壳幔的带状低阻通道;拉萨—冈底斯地块以高阻为主,中下地壳普遍发育低阻体。缝合带附近因板块俯冲作用导致壳幔局部增厚或减薄,表现为电性的梯度变化,表现为低阻特性的部分则是壳幔物质的运移通道。   相似文献   

16.
青藏高原震源分布与板块运动   总被引:5,自引:2,他引:5       下载免费PDF全文
本文分析了青藏高原及其邻区大量近期地震的震源深度分布资料,发现中源地震不仅分布在众所周知的兴都库什和印缅山弧一带,而且在印度洋板块与欧亚板块汇聚带印度河-雅鲁藏布江以南,以及欧亚板块内部的帕米尔、西昆仑、柴达木和天山南缘一带也有中源地震分布,它们构成了这一地区三条向南倾斜的震源带。 这些中源地震震源带的存在表明,向北运动的印度次大陆与亚洲大陆碰撞以后,印度次大陆北缘本身并没有消减,而是迫使亚洲大陆通过三条向南倾斜的岩石层消减带产生了大规模的消减作用。 中源地震在平面上分布的不连续性,揭示了这一地区的许多条走滑断层的现代活动。这些走滑断层的巨大位移显示了青藏高原内部各块体之间的横向运动也是很可观的。 最后,提出了亚洲大陆多条南倾消减带的形成和发展模式。  相似文献   

17.
印度-欧亚碰撞与洋-陆碰撞的差异   总被引:1,自引:0,他引:1       下载免费PDF全文
观测的证据充分表明,印度——欧亚的缝合带雅鲁藏布江上存在自南向北的地壳俯冲带,它穿过莫霍面,深度大约达到100 km. 喜马拉雅中可能存在多重的地壳俯冲. 它们有别于海洋碰撞时所产生的整个岩石圈俯冲. 作者观测到雅鲁藏布江以北上地幔的板片构造,它可以解释为印度向欧亚俯冲时上地幔岩石圈的痕迹. 它们说明与洋——陆的俯冲不同,印度向欧亚俯冲时,地壳与上地幔岩石圈出现拆层现象. 综合现有的地壳上地幔构造,显示在不同地质年代中,印度与欧亚之间产生自南向北以及自北向南相反方向的俯冲,而且俯冲带周围出现某些速度异常区.   相似文献   

18.
The history of convergence between the India and the Asia plates, and of their subsequent collision which triggered the Himalayan orogeny is recorded in the Yarlung Zangbo suture zone. Exposed along the southern side of the suture, turbidites of the the Jiachala Formation fed largely from the Gangdese arc have long been considered as post-collisional foreland-basin deposits based on the reported occurrence of Paleocene-early Eocene dinoflagellate cysts and pollen assemblages. Because magmatic activity in the Gangdese arc continued through the Late Cretaceous and Paleogene, this scenario is incompatible with U-Pb ages of detrital zircons invariably older than the latest Cretaceous. To solve this conundrum, we carried out detailed stratigraphic, sedimentological, paleontological, and provenance analyses in the Gyangze and Sajia areas of southern Tibet,China. The Jiachala Formation consists of submarine fan deposits that lie in fault contact with the Zongzhuo Formation.Sandstone petrography together with U-Pb ages and Hf isotope ratios of detrital zircons indicate provenance from the Gangdese arc and central Lhasa terrane. Well preserved pollen or dinoflagellate cysts microfossils were not found in spite of careful research, and the youngest age obtained from zircon grain was ~84 Ma. Based on sedimentary facies, provenance analysis and tectonic position, we suggest that the Jiachala Formation was deposited during the Late Cretaceous(~88–84 Ma) in the trench formed along the southern edge of Asia during subduction of Neo-Tethyan oceanic lithosphere.  相似文献   

19.
The Xigaze ophiolite (29.2°N, 89.5°E), which outcrops in the Yarlung Zangbo suture zone, represents the remnants of an oceanic lithosphere formed in middle Cretaceous times between the Lhasa block to the north and the Indian plate to the south. In an attempt to define the paleo-orientation and latitude of the spreading center at which it has been created, a paleomagnetic study has been done on three sites in volcanics and overlying (or interbedded) radiolarites forming the upper part of the ophiolite sequence and also on seven sites in the Xigaze Group flysch which stratigraphically overlies the volcanics to the north. In each site, hand-blocks carefully oriented both with sun and magnetic compass have been sampled. The paleomagnetism data, combined with structural data on the ophiolite dolerite intrusives, allow a partial reconstruction of South Eurasia at the time of formation of the Xigaze ophiolite. The paleolatitude of accretion and deposition of the Xigaze ophiolite and overlying sediments is found to be 10–20°N. Both ophiolite and basin have encountered a 85 ± 20° anti-clockwise rotation. The corresponding ridge was close to the southern margin of the Lhasa block and was oriented N175 ± 25°.  相似文献   

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