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1.
杨建军  夏建平 《内陆地震》1992,6(3):266-273
利用1/50万重力资料以压缩质面法反演了下扬子区(苏南)的地壳构造,探讨了深部构造特征及区划。着重论述了本区地壳结构的轮廓及特征;本区深部构造与浅部地质构造的镜象关系;本区深部构造与地震分布的联系。  相似文献   

2.
塔里木盆地深部构造的地震转换波探测结果   总被引:7,自引:0,他引:7       下载免费PDF全文
塔里木盆地深部构造的地震转换波探测结果邵学钟,张家茹(国家地震局地质研究所,北京100029)根据国家“八五”重点科技攻关项目《塔里木盆地油气资源》的需要,我们于1992-1993年在塔里木盆地开展了地震转换波测深工作.目的是探明地壳和上地幔深部构造...  相似文献   

3.
福州地区地壳结构的地震转换波测深研究   总被引:2,自引:0,他引:2       下载免费PDF全文
邵学钟  顾忠华 《地震地质》1993,15(2):174-180
地震转换波测深法首次在我国东南沿海的福州地区进行地壳深部构造的探测,得出了该区地壳中的4个主要界面的构造形态图和沿北东方向穿越本区的地壳深部构造剖面图。查明闽江断裂由两条北西向产状较陡的超壳断裂组成,福州断陷盆地的深部上地壳G界面呈条带状下沉,下地壳C、C_1界面和M面及壳内低速层均相对上隆,这一结果为解释本区高地热异常提供了深部依据  相似文献   

4.
华北强烈地震深部构造环境的探测与研究   总被引:6,自引:1,他引:5  
20世纪六七十年代以来, 华北地区发生了一系列强烈地震. 强烈地震的孕育、 发生和发展与深部构造密切相关. 近50年来, 我国地震科学领域在强烈地震的地震构造和深部环境方面开展了大量的研究. 深部地球物理探测和地震层析成像结果揭示了华北地区地壳结构的基本特征, 并在强烈地震发生的深部构造环境等问题上取得了重要进展. 本文在回顾华北地区地壳上地幔结构探测的基础上, 对1966年邢台MS7.2, 1976年唐山MS7.8, 1975年海城MS7.3和1679年三河—平谷M8.0地震的地震构造和深部构造环境进行评述. 深部地球物理数据的综合分析表明, 震源下方的低速异常带, 高角度超壳深断裂, 地壳深浅构造的不一致, 偏低的上地幔顶部速度和局部隆起的莫霍界面, 是华北伸展构造区深部孕震环境的共同特征.   相似文献   

5.
河北省南部及邻区的地壳深部构造与地震   总被引:3,自引:0,他引:3  
本文利用区域布格重力异常图(1:100万)和地质构造资料来研究河北省南部及其相邻地区的地壳深部构造特征,并讨论其与强震发生的关系。方法主要是运用三维重力正演计算,层层消除地壳浅部对布格重力异常的影响,得出一系列剩余重力异常和剩余深部重力异常,再根据异常图形的变换,探讨一些活动断裂和构造由浅到深的变化趋势。还用三维重力反演计算,求出了全区莫霍界面的深度,得到了全区的地壳厚度图,进而分析强震区的深部构造背景,这些对地震地质和烈度区划是有意义的。  相似文献   

6.
华北北部断块构造及中下地壳的构造滑脱   总被引:10,自引:0,他引:10  
本文根据浅表断裂构造、结晶基底、地震活动以及地震转换波测深等资料,对华北北部地壳浅部和深部的层-块构造特征作了进一步的研究,划分了浅部和中上地壳断块构造,并初步确认了中下地壳之间存在普遍的、定向的构造滑脱现象,进而揭示了地壳构造变动具有层-块滑移的特征。  相似文献   

7.
天山地壳非均匀性与地震分布   总被引:2,自引:0,他引:2  
胥颐 《内陆地震》1995,9(3):242-249
根据重力、航磁及地震波传播速度等地球物理资料,研究了天山地区的深部构造特征。发现天山两缘是地壳物质组成变化较大的场所,也是介质结构最不稳定的区域。地震的发生不仅涉及到地表断裂构造的分布和活动方式,而且与深部物质的非均匀程度有一定的联系。大部分中强地震都发生在地壳中部附近不同速度体之间的梯度带附近,那里是深部介质分布最不均匀的构造层位。它的存在与中强地震的孕育场所密切相关,在构造应力的作用下很容易发  相似文献   

8.
华北东部地区地壳结构的初步研究   总被引:16,自引:4,他引:12       下载免费PDF全文
综合国家地震局地球物理勘探大队在华北地区开展以人工地震测深为主的深部探测成果,认为该地区地壳结构具有如下特点; (1)纵向的分层特性。沿纵向可划分为上层地壳、中层地壳和下层地壳三部分。在很多地震剖面上,中层地壳为一低速层,出现了速度逆转现象。 (2)莫霍界面沿横向的波浪起伏性和不连续性。莫氏面多在其波浪起伏的“拐点”处被断开。在此基础上,分析了华北东部地区强震的深部构造背景,地热活动和深部物质活动  相似文献   

9.
本文根据巧家所属川滇交界地区的重大、航磁、爆破地震及大地电磁测深资料,对该地区深部断裂构造的空间展布及其相互关系和地壳结构进行了较详细的分析研究,为地震工程和地震的预测预报,提供了重要的深部地质构造资料。  相似文献   

10.
新疆独有的地貌形态及展布特征反映了地壳岩石圈深部物质运移变化的结果。由于地理位置和所处的构造部位的不同,中部天山山脉、北部阿尔泰山脉、西南部昆仑—阿尔金山脉在地壳岩石圈深部特征都有很大差异,它们有整体共性的必然联系,也有区域个性的特殊面貌。了解和认识岩石圈结构及其变化特征,对于分析研究该区域构造环境、应力场和地震的发生等有重要意义。  相似文献   

11.
溧阳震区地壳深部结构的探测与研究   总被引:5,自引:0,他引:5       下载免费PDF全文
本文利用天然地震转换波法所测得的漂阳震区地壳深部主要界面的构造图。简要地讨论了溧阳震区深部构造与震中分布的关系,认为溧阳两次中强地震都发生在较厚的花岗岩质层中,其深部构造特征表现为上地幔隆起、或界面埋深变化剧烈的梯度带,同时又处于两组以上深断裂交汇的特殊部位  相似文献   

12.
本文介绍利用地震转换波测深法研究1976年7.8级唐山大震区深部构造的某些结果,得出了沿两条测线的深部构造剖面图。发现在极震区的数十公里的范围内,地壳和上地幔具有异常结构,在地壳中部比震区外围多出一个中间层位,埋深约12-20km,地壳上部界面向上挠曲,而莫霍面和上地幔顶部界面却强烈地向下挠曲,引起了震区岩石圈厚度的加大,在震区存在深浅不等的深部断裂。深部构造与震源分布的对比表明,唐山主震和绝大多数余震均分布在壳内中间层之上,有的甚至就分布在壳内中间层的上、下界面附近。转换波测深结果表明,本区地壳上地幔中强烈的升降差异运动可能是唐山大震的重要促发因素。  相似文献   

13.
Water plays a crucial role in the melting of Earth’s mantle. Mantle magmatisms mostly occur at plate boundaries (including subduction zones and mid-ocean ridges) and in some intraplate regions with thermal anomaly. At oceanic subduction zones, water released by the subducted slab may induce melting of the overlying mantle wedge or even the slab itself, giving rise to arc magmatism, or may evolve into a supercritical fluid. The physicochemical conditions for the formation of slab melt and supercritical fluid are still under debate. At mid-ocean ridges and intraplate hot zones, water and CO2 cause melting of the upwelling mantle to occur at greater depths and in greater extents. Low degree melting of the mantle may occur at boundaries between Earth’s internal spheres, including the lithosphere-asthenosphere boundary (LAB), the upper mantletransition zone boundary, and the transition zone-lower mantle boundary, usually attributed to contrasting water storage capacity across the boundary. The origin for the stimulating effect of water on melting lies in that water as an incompatible component has a strong tendency to be enriched in the melt (i.e., with a mineral-melt partition coefficient much smaller than unity), thereby lowering the Gibbs free energy of the melt. The partitioning of water between melt and mantle minerals such as olivine, pyroxenes and garnet has been investigated extensively, but the effects of hydration on the density and transport properties of silicate melts require further assessments by experimental and computational approaches.  相似文献   

14.
We present a 3D model of shear velocity of crust and upper mantle in China and surrounding regions from surface wave tomography.We combine dispersion measurements from ambient noise correlation and traditional earthquake data.The stations include the China National Seismic Network,global networks,and all the available PASSCAL stations in the region over the years.The combined data sets provide excellent data coverage of the region for surface wave measurements from 8 to 120 s,which are used to invert for 3D shear wave velocity structure of the crust and upper mantle down to about150 km.We also derive new models of the study region for crustal thickness and averaged S velocities for upper,mid,and lower crust and the uppermost mantle.The models provide a fundamental data set for understanding continental dynamics and evolution.The tomography results reveal significant features of crust and upper mantle structure,including major basins,Moho depth variation,mantle velocity contrast between eastern and western North China Craton,widespread low-velocity zone in midcrust in much of the Tibetan Plateau,and clear velocity contrasts of the mantle lithosphere between north and southern Tibet with significant E–W variations.The low velocity structure in the upper mantle under north and eastern TP correlates with surface geological boundaries.A patch of high velocity anomaly is found under the eastern part of the TP,which may indicate intact mantle lithosphere.Mantle lithosphere shows striking systematic change from the western to eastern North China Craton.The Tanlu Fault appears to be a major lithosphere boundary.  相似文献   

15.
Based on the first arrival P and S data of 4 625 regional earthquakes recorded at 174 stations dispersed in the Yunnan and Sichuan Provinces, the 3-D velocity structure of crust and upper mantle in the region is determined, incorporating with previous deep geophysical data. In the upper crust, a positive anomaly velocity zone exists in the Sichuan basin, whereas a negative anomaly velocity zone exists in the western Sichuan plateau. The boundary between the positive and negative anomaly zones is the Longmenshan fault zone. The images of lower crust and upper mantle in the Longmenshan fault, Xianshuihe fault, Honghe fault and others show the characteristic of tectonic boundary, indicating that the faults likely penetrate the Moho discontinuity. The negative velocity anomalies at the depth of 50 km in the Tengchong volcanic area and the Panxi tectonic zone appear to be associated with the temperature and composition variations in the upper mantle. The overall features of the crustal and the upper mantle structures in the Sichuan-Yunnan region are the lower average velocity in both crust and uppermost mantle, the large crustal thickness variations, and the existence of high conductivity layer in the crust or/and upper mantle, and higher geothermal value. All these features are closely related to the collision between the India and the Asia plates. The crustal velocity in the Sichuan-Yunnan rhombic block generally shows normal value or positive anomaly, while the negative anomaly exists in the area along the large strike-slip faults as the block boundary. It is conducive to the crustal block side-pressing out along the faults. In the major seismic zones, the seismicity is relative to the negative anomaly velocity. Most strong earthquakes occurred in the upper-mid crust with positive anomaly or normal velocity, where the negative anomaly zone generally exists below. Foundation item: National Scientific and Technological Development Program (95-973-02-02), the Climb Program (95-S-05-01) of National Scientific and Technological Ministry of China, and the State Natural Sciences Foundation of China (49874021). Contribution No. 02FE2004, Institute of Geophysics, China Seismological Bureau.  相似文献   

16.
川滇地区速度结构的区域地震波形反演研究   总被引:28,自引:6,他引:22       下载免费PDF全文
利用云南数字地震台网的区域地震波形资料,对川滇地区的地壳上地幔速度结构进行了初步研究. 结果表明,川滇地区上地幔顶部P波速度较小,约78 km/s,P波速度在上地幔表现为较小的正速度梯度,S波在100~160 km深度范围内表现为弱低速层. 对于较短的观测路径,不同路径的平均P波和S波速度存在明显的横向变化. 与川滇菱形块体内部的速度结构不同,在块体边界附近可以观测到比较明显的上地壳低速层,我们认为它可能与块体边界的断裂带有关;川滇菱形块体内部存在的下地壳低速层,有利于块体向南滑动,而中上地壳没有明显低速结构,可能表明川滇菱形块体向南滑动的解耦深度至少在下地壳. 根据不同路径的反演结果,给出了云南中部地区地壳内部的平均速度结构.  相似文献   

17.
Many evidences indicate that the collision of two plates deformed strongly the crust of the SYR, and the deformation has been continued up to the present. In addition, the SYR is in the south segment of the South-North Seismic Zone of China, which is one of the regions in the Chinese mainland, where the seismic activity is very high, and the strong earthquakes frequently occurred. Since the 1970s, a series of large earthquakes with magnitude M>7.0 occurred in SYR, such as the 1970 Tongha…  相似文献   

18.
川滇地区地壳上地幔三维速度结构研究   总被引:95,自引:22,他引:95  
根据云南和四川地震台网174个台站记录的4625个区域地震初至P波和S波走时资料,并结合其它深部地球物理资料,确定了川滇地区地壳上地幔三维速度结构.在上地壳速度异常分布中,四川盆地为正异常,川西高原为负异常,龙门山断裂带为正、负异常的边界.龙门山断裂、鲜水河断裂以及红河断裂等,在下地壳和上地幔的速度异常中仍显示出构造分界特征,说明它们可能穿透了莫霍界面.腾冲火山区和攀西构造带在50km深度上呈现负速度异常,与上地幔温度和物质组成的差异相联系.川滇地区地壳结构的总体特征是:地壳和上地幔的低平均速度,地壳厚度变化剧烈,地壳和(或)上地幔存在高导层、高热流值.这些同印度板块与欧亚板块碰撞的构造背景有关.川滇菱形块体在地壳内总体上为正常或正异常速度,而其边界的深大走滑断裂存在负速度异常,它有助于地壳块体沿断裂的侧向挤出.在主要的地震带上,中下地壳的负速度异常与地震活动性相关.多数强烈地震发生在具有正速度异常或正常速度分布的上中地壳深度上,而其下方则通常是负速度异常带.   相似文献   

19.
北京地区地壳和上地幔的三维P波速度结构   总被引:24,自引:6,他引:24       下载免费PDF全文
用分布在北京地区各方位上,震中距在20°-100°范围内的120次远震在本区15个地震台上的P波到时,研究北京地区地壳和上地幔的三维速度结构。 在正演时,远震的震源参数(λ、φ、h、o)采用BISC的数据,以J-B模型作为标准地球模型。 在反演中,采用奇异值分解的方法直接解大型超定方程组Gm=t,而不借助于正规方程组GTGm=GTt。 结果表明:北京地区地壳和上地幔的P波速度存在明显的横向差异。就1972年-1975年的资料所得的结果来看,存在东南的相对低速区(地壳中P波速度低10-14%,在上地幔中低8-9%),西北部的相对高速区(在地壳中P波速度高9%左右,进入上地幔后差异逐渐消失),中部是正常区。 在地表,速度差异带的分布与覆盖层的分布大体一致。而在深部,这种差异带的分布与地震活动性分布相当符合。而且,本区的几次强震:三河-平谷地震(1679年,M=8)、沙城地震(1730年,M=6 3/4)和唐山地震(1976年,M=7.8)的震源正好在这些速度差异带的边界附近。  相似文献   

20.
The mantle convection model with phase transitions, non-Newtonian viscosity, and internal heat sources is calculated for two-dimensional (2D) Cartesian geometry. The temperature dependence of viscosity is described by the Arrhenius law with a viscosity step of 50 at the boundary between the upper and lower mantle. The viscosity in the model ranges within 4.5 orders of magnitude. The use of the non-Newtonian rheology enabled us to model the processes of softening in the zone of bending and subduction of the oceanic plates. The yield stress in the model is assumed to be 50 MPa. Based on the obtained model, the structure of the mantle flows and the spatial fields of the stresses σxz and σxx in the Earth’s mantle are studied. The model demonstrates a stepwise migration of the subduction zones and reveals the sharp changes in the stress fields depending on the stage of the slab detachment. In contrast to the previous model (Bobrov and Baranov, 2014), the self-consistent appearance of the rigid moving lithospheric plates on the surface is observed. Here, the intense flows in the upper mantle cause the drift and bending of the top segments of the slabs and the displacement of the plumes. It is established that when the upwelling plume intersects the boundary between the lower and upper mantle, it assumes a characteristic two-level structure: in the upper mantle, the ascending jet of the mantle material gets thinner, whereas its velocity increases. This effect is caused by the jump in the viscosity at the boundary and is enhanced by the effect of the endothermic phase boundary which impedes the penetration of the plume material from the lower mantle to the upper mantle. The values and distribution of the shear stresses σxz and superlithostatic horizontal stresses σxx are calculated. In the model area of the subducting slabs the stresses are 60–80 MPa, which is by about an order of magnitude higher than in the other mantle regions. The character of the stress fields in the transition region of the phase boundaries and viscosity step by the plumes and slabs is analyzed. It is established that the viscosity step and endothermic phase boundary at a depth of 660 km induce heterogeneities in the stress fields at the upper/lower mantle boundary. With the assumed model parameters, the exothermic phase transition at 410 km barely affects the stress fields. The slab regions manifest themselves in the stress fields much stronger than the plume regions. This numerically demonstrates that it is the slabs, not the plumes that are the main drivers of the convection. The plumes partly drive the convection and are partly passively involved into the convection stirred by the sinking slabs.  相似文献   

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