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1.
利用青藏块体东北缘1993——1999年、1999——2001年和2001——2003年3个时段的GPS水平运动速度场成果,通过研究建立的弹性块体边界负位错模型反演,给出该区构造块体及其边界断裂运动与变形差异、构造应变场时空分布、高应变能积累部位以及强度的定性分析和定量描述. 在充分考虑区域构造及块体应变的前提下,研究与该区6级左右及6级以上地震地点预测相关的背景性前兆的共性特征.   相似文献   

2.
青藏高原北部地区构造变形特征及与强震关系   总被引:6,自引:0,他引:6  
通过对1993~1999、1999~2001年青藏高原北部地区GPS水平运动资料的非震负位错模型反演和形变应变场时空演化分析,结合地质构造和有资料积累以来的强震活动,研究块体及边界带的构造变形特征,以及与强震孕育的关系.结果表明:(1)5级以上,特别是6级左右及6级以上地震多发生在区域应变场剪切应变率或面膨胀率高值区、边缘或其附近,尤其是与区域主干断裂构造运动一致的剪切应变率高值区;形变差异显著的块体边界附近;沿块体边界断裂带的高应变积累的闭锁区段及其附近.(2)1999~2001年较1993~1999年大范围的水平运动速率明显减弱,但应变率的减弱幅度不大,可能揭示昆仑山口西8.1大震孕育对北东向的构造应力传递起了某种“阻隔和调制作用”及太平洋板块的西进作用加强.(3)目前应变场分布高值区、块体间差异运动显著的边界带及高应变积累闭锁段有阿尼玛卿断裂中东段与鄂拉山断裂交汇区、祁连山构造带中东段及与海原断裂西段交汇区、日月山一拉脊山断裂与西秦岭北缘断裂交汇区、庄浪河断裂与西秦岭北缘断裂交汇区、六盘山断裂附近.  相似文献   

3.
青藏块体东北缘水平应变场与构造变形分析   总被引:21,自引:0,他引:21       下载免费PDF全文
利用青藏块体东北缘地区 1993与 1999年GPS观测获得的地壳水平运动速度场结果 ,初步研究了该区的应变场与构造变形。该区应变场以近NE向的主压应变为主体 ,伴随着近NW向的张性应变。河西走廊中、东段 ,尤其是武威断块是压应变最强的区域。应变场形成的剪应变以近EW向的左旋剪切为主体 ,表明该区NWW向的块体边缘主干断裂的活动方式是左旋走滑兼挤压。剪应变高值区主要分布于青藏块体东北边界带的武威、祁连一带。甘青块体与阿拉善块体之间整体左旋扭动速率约为 6mm/a。配合非连续变形分析法 (DDA)数值模拟 ,初步分析了该区的构造应力场背景 ,认为该区相对水平运动和构造变形分布特征不仅是印度板块推挤应力场作用的结果 ,还可能与来自西侧南强北弱的向东的动力作用有关  相似文献   

4.
青藏块体东北缘和川滇GPS监测区1991(1993)、1999和2001年高精度GPS观测资料揭示:2001年11月14日昆仑Ms8.1地震前,青藏块体北、东缘构造区域水平运动变形场动态演变具有一定的关联性特征。即:在继承性运动总体背景下,临近大震发生时两区域运动强度同步减弱且变形状态发生变化。结合地质构造分析研究认为,昆仑Ms8.1地震前,青藏块体边界运动变形的关联性变化与大震孕育后期大范围应力应变快速积累所形成的扰动应力场有关;随着块体内部大震的发生、应变能的大量释放和构造应力场的调整,可能会促使块体边界地带具有较高应变积累的相关构造部位(尤其是未被历史强震破裂贯通的地带)的应力应变的进一步积累或破裂释放。  相似文献   

5.
通过对GPS观测资料的数值模拟,获取1999~2001年青藏块体东北缘地区地壳水平运动的非震反位错模型,结合本区视应变场空间分布,研究活动块体及其边界断裂运动、变形特征及应力应变积累部位和强度.结果表明:① 9个活动块体呈现东向由偏北至偏南的整体性顺时针运动. 以祁连山——海原断裂为界,两侧块体间的左旋相对运动明显,由西向东呈现走滑兼NE-NEE向挤压;② 有20条断层段(多数呈压性)不同程度地阻碍块体间的相对运动,其中祁连山断裂中东段(包括与日月山——拉脊山断裂交汇区)及与海原、庄浪河断裂交汇区更有利于应变积累,日月山——拉脊山断裂与柴达木块体北边界交汇区也可能存在一定程度的应变积累;③ 所得活动块体运动速率及边界断裂对块体相对运动的锁定量较1993~1999年相应结果有所减弱.   相似文献   

6.
强震孕育和发生与较大空间尺度和时空演变的地壳运动,尤其是活动块体及其边界带的构造变形密切相关.Matsu'ura负位错模型认为受现今地壳运动驱动下的各活动地块间的相对运动在地块边界处有可能受到部分阻碍,从而导致应力应变积聚.若视块体边界区域的地表位移为刚性块体的(平移)运动减去边界上部(由若干断层段构成,每一断层段用弹性半空间的单一矩形位错模型模拟)对块体相对运动的部分锁定在地表产生的位移.则利用地表位移观测可将区域深部的多个块体与其边界断层联系起来,其通过反演确定的块体边界断层带的相对闭锁区,对地震预报很有意义.而实际存在的地壳变形还应包含块体本身的变形.本文研究建立一种块体弹性变形及其边界负位错部分锁定的水平形变复合作用模型,即增加块体应变参量.经比较研究,此模型较原Matsu'ura负位错模型及笔者以往所作的对模型的初步改进(增加块体旋转参量)更符合地壳运动实际,拟合效果大为改善;进而求取该复合模型形变应变场的时空演化图像,并借助年均应力降(主要反映剪应力强度)与年均地震矩(反映块体边界断层段的能量积累速率)度量断层锁定能量强度,其图像表现力和时空演变定量化程度大幅提高.  相似文献   

7.
巴颜喀拉块体北东地区现今水平运动与变形   总被引:2,自引:0,他引:2  
本文利用GPS数据研究了巴颜喀拉块体北东地区现今水平运动与变形特征。 在球坐标系中解算了各应变分量, 分析了应变率场的空间分布特征, 并与地球物理学和地震地质学研究结果进行了综合对比分析。 最新的GPS速度场结果表明, 巴颜喀拉块体北东地区与高原整体运动性质一样具有顺时针向南东方向旋转的特征, 自西向东和北东方向测站水平运动速度呈现明显的衰减特征。 应变场结果显示, 研究区以北东向的主压应变为主, 伴随着近北西向的张性应变。 应变较强的区域主要分布在活动块体的边界断裂东昆仑断裂带的东段塔藏段和龙门山断裂带上。 东昆仑断裂带东段塔藏段的主压应变明显, 结合地震地质和活动构造资料, 认为东昆仑断裂带东段塔藏段的运动性质自西向东发生了改变, 水平滑动速率逐渐减小, 垂向运动逐渐增强。 研究区GPS速度场和应变场的这一变形特征表明, 青藏高原内部的块体运动特征较为明显, 变形主要集中在作为活动块体边界的活动断裂带上, 边界断裂带的运动特征在调节活动块体间的相互运动中起着重要作用。  相似文献   

8.
GPS初步结果揭示的中国大陆水平应变场与构造变形   总被引:56,自引:14,他引:56       下载免费PDF全文
根据中国大陆不同来源的多个GPS区域监测网1991~1999年间的观测资料和“中国地壳运动观测网络”基本网1998~2000年的观测资料,联合处理得到中国大陆地壳水平运动速度场结果,通过最小二乘配置法建立中国大陆水平运动速度场模型,获得了基于连续介质假设的中国大陆水平应变场(或称为视应变场)初步结果. 分析了水平运动、应变场空间分布特征及其与强震的关系,并简要分析了2001年11月14日昆仑山口西8.1级大地震的区域构造变形背景. 结果表明:中国大陆中西部构造变形强烈,应变速率值高,又以青藏块体及其边缘和新疆西部最为显著. 除川滇、新疆西部外,大部分地区的近东西向断裂存在左旋剪切变形,近南北向的断裂存在右旋剪切变形. 而东部地区构造变形相对较弱. 强震通常发生在剪切应变率的高值区及其边缘,尤其是与构造变形背景相一致的剪应变率高值区. 昆仑山口西8.1级地震发生在最显著的东西向左旋剪切应变率高值区,从该区域的应变状态分析,具备近东西向断裂产生巨型走滑破裂错动的构造变形背景.  相似文献   

9.
青藏块体东北缘及其周围地区现今时空运动变形科特征   总被引:3,自引:0,他引:3  
依据非连续变形分析(DDA)方法,考虑特定块体边界不同程度的适度侵入,利用3期GPS观测资料(1991、1999、2001年),建立了青藏块体东北缘及其周围地区的一级块体运动模型和划分较细的、反映较小区域运动变形的较理想块体运动模型.模拟得到了研究区内北西西向大断裂间一级块体的运动变化特征、研究区主应变率场的分布特征及青藏块体北边界断裂的分段非均匀时空运动特征.  相似文献   

10.
青藏块体东北缘及其周围地区现今时空运动变形特征   总被引:1,自引:0,他引:1  
依据非连续变形分析(DDA)方法,考虑特定块体边界不同程度的适度侵入,利用3期GPS观测资料(1991、1999、2001年),建立了青藏块体东北缘及其周围地区的一级块体运动模型和划分较细的、反映较小区域运动变形的较理想块体运动模型。模拟得到了研究区内北西西向大断裂间一级块体的运动变化特征、研究区主应变率场的分布特征及青藏块体北边界断裂的分段非均匀时空运动特征。  相似文献   

11.
川滇地区现今块体水平运动变形特征分析   总被引:2,自引:0,他引:2  
依据川滇地区1991,1999和2001年GPS测量数据,利用DDA正分析基本原理,结合现有的地质资料,对该地区近年来的水平构造运动特征进行了模拟分析,认为川滇地区水平运动整体速率在1999~2001年期间明显减弱;川滇决体主压应变以顺时针旋转为主,方向为SE—SEE;其南部是运动变形相对剧烈、易于积累能量的区域;未来一两年内,该地区地震活动水平不会太高。  相似文献   

12.
Introduction According to the negative dislocation model (Matsu′ura et al, 1986), the relative motion be-tween active blocks under contemporary crustal movement is likely to be partially blocked on the boundaries. Suppose the lower ductile zone of boundary could slip freely, while due to the fric-tional resistance, etc., the upper brittle zone would restrict such kind of relative motion, so as to give rise to stress and strain accumulation. Namely, the surface displacement in the block bound-…  相似文献   

13.
利用2009—2017年GPS水平速度场和1990—2018年跨断层短水准资料, 分析西昌地区现今三维地壳活动及主要断裂的活动性。 结果表明: 在西昌地区, GPS水平运动场及应变场的大小和方向发生变化。 E向运动速率由北部的平均约8 mm/a减小到南部的平均约4 mm/a; S向运动以安宁河—则木河断裂为界, 西侧点位的运动速率明显大于东侧的点位。 相对华南地块的水平形变场也显示西昌地区水平运动的差异性。 主应变场在西昌地区以SW—NE向拉张和NW—SE向挤压为主。 大凉山次级块体东侧的张应变和压应变均大于西侧; 最大剪应变率在此次级块体以条带形式展布, 条带上的最大剪应变率大于东、 西两侧; GPS水平运动速率和变形宽度相比1999—2007年资料得到的结果大, 表明安宁河—则木河断裂带处于剪切应变积累阶段, 闭锁程度有所提高。 跨断层水准资料显示, 该断裂存在新的活动迹象, 应力持续积累。 综合分析两种资料结果, 推测区域地震危险性将进一步增强。  相似文献   

14.
Introduction So small is the hypocenter area of strong earthquake, but its formation is controlled by time-space evolution of present-day crustal movement in wider-range area, and related to motion and deformation of active blocks and their boundary faults. Aseismic negative dislocation model presented by Matsuura, et al (1986) is that, the relative motion between blocks driven by present-day crustal movement may be partly locked at the block …  相似文献   

15.
青藏块体东北缘近期水平运动与变形   总被引:61,自引:2,他引:61       下载免费PDF全文
利用青藏块体东北缘地区13、1年GPS观测资料,给出了本区地壳水平运动速度场及视应变场分布图,提出了由位移观测值直接求解块体旋转和变形参数的方法,初步研究了本区构造块体运动与变形特征.结果表明:①本区存在整体性向东-东南方的运动(速率约mm/a);②南部的甘肃-青海块体的运动较快,而北部的阿拉善块体的运动较慢,二者运动速率相差近6mm/a,祁连-海原断裂带左旋走滑运动显著.③自西向东存在北北东-北东东向压性运动;④阿拉善块体、甘肃-青海块体内部存在北西西向张性变形,阿拉善块体的整体张性变形更显著,鄂尔多斯块体西侧的块体交接地带为压性运动.  相似文献   

16.
On the basis of Discontinuous Deformation Analysis (DDA), and considering the moderate intrusion of specific block boundaries to different extents, the first-order block motion model is established for the northeastern margin of Qinghai-Xizang(Tibet) block and the kinematical model for depicting deformation of small regions as well by using GPS observations of three periods (1991, 1999 and 2001). By simulating, we obtained the motion features of the firstorder blocks between the large WWN faults on the sides of the studied region, the distribution features of the principal strain rate field and the inhomogeneous motion features with spacetime of the faults in the northern boundary of the Qinghai-Xizang (Tibet) block.  相似文献   

17.
Based on the GPS velocity field data of 1999-2007 and 2011-2013,we used the least squares configuration method and GPS velocity profile results to synthetically analyze the dynamic evolution characteristics of crustal deformation in the Yunnan area before and after the Wenchuan earthquake. The dynamic evolution of GPS velocity field shows that the direction is gradually changed from the south in the southern part of the Sichuan-Yunnan block to the south-west in the southern Yunnan block and there is a clear relative motion characteristic near the block boundary fault zone. Compared with the GPS velocity of 1999-2007, the results of 2011-2013 also reflect segmental deformation characteristics of the block boundary fault zone. Southeast movement shows a significant increase, which may be related to crustal deformation adjustment after the Wenchuan earthquake. The dynamic evolution of strain parameters shows a pattern of "extension in the middle and compression at both ends" in the whole area and the distribution of deformation (shear, extension or compression) is closely related to the background motion and deformation characteristics of the main fault zone. Compared with the results of the period of 1999-2007, the extensional deformation zone of 2011-2013 is expanded eastward and southward. The compressional deformation of the eastern boundary (the Xiaojiang fault zone) of the Sichuan-Yunnan block is no longer significant, which is mainly concentrated in the northern section of the Xiaojiang fault zone and may be related to the post-seismic deformation adjustment of the Wenchuan earthquake. The GPS velocity profile results show that the left-lateral slip velocity of the Xiaojiang fault zone reduced gradually from north to south (10mm/a-5mm/a), and the width of the northern section is wider. The right-lateral slip rate of the Honghe fault zone is about 4mm/a, and the deformation width is wider. The dynamic results show that the Wenchuan earthquake has little effect on the deformation modes of these two fault zones.  相似文献   

18.
Through numerical simulation for GPS data, aseism/c negative dislocation model for crustal horizontal movement during 1999-2001 in the northeast margin of Qinghai-Xizang block is presented, combined with the spatial distri-bution of apparent strain field in this area, the characteristics of motion and deformation of active blocks and their boundary faults, together with the place and intensity of strain accumulation are analyzed. It is shown that: a) 9 active blocks appeared totally clockwise motion from eastward by north to eastward by south. Obvious sinistral strike-slip and NE-NEE relative compressive motion between the blocks separated by Qilianshan-Haiyuan fault zone was discovered; b) 20 fault segments (most of them showed compression) locked the relative motion between blocks to varying degrees, among the total, the mid-east segment of Qilianshan fault (containing the place where it meets Riyueshan-Lajishan fault) and the place where it meets Haiyuan fault and Zhuanglanghe fault, more favored accumulation of strain. Moreover, the region where Riyueshan-Lajishan fault meets north boundary of Qaidam block may have strain accumulation to some degree, c) Obtained magnitude of block velocities and locking of their boundaries were less than relevant results for observation in the period of 1993-1999.  相似文献   

19.
Chinese scientists proposed that large earthquakes that occurred in mainland China are controlled by the movement and deformation of active tectonic blocks. This scientific hypothesis explains zoned phenomenon of seismicity in space. The active tectonic blocks are intense active terranes formed in late Cenozoic and late Quaternary, and the tectonic activity of block boundaries is the intensest. Global Navigation Satellite System(GNSS)has advantages of high spatio-temporal resolution, broad coverage, and high accuracy, and is utilized to monitor contemporary crustal deformation. High accuracy and resolution of GNSS velocity field within mainland China and vicinities provided by previous studies clearly demonstrate that different active tectonic blocks behave as different patterns of movement and deformation, and block interaction boundaries have intense tectonic deformation. The paper firstly introduces the GPS networks operated by the Crustal Movement Observation Network of China(CMONOC)since 1999, and GNSS data processing methods, including GAMIT, BERNESE and GIPSY/OASIS, and discusses the advantages of using South China block as a regional reference frame for GNSS velocity field, then proposes three strategies of block division, F-test, quasi-accurate detection(QUAD), and clustering analysis. Furthermore, we introduce rigid and non-rigid block motions. Rigid block motion can be denoted by translation and rotation, while non-rigid block motion can be described by rigid motion and internal strain deformation. Internal strain deformation can be divided into uniform and linear strains. We also review the usage of F-test to distinguish whether the block acts as rigid deformation or not. In addition, combining with recent GNSS velocity results, we elaborate the characteristics of present movement of rigid block, such as the South China, Tarim, Ordos, Alashan, and Northeast China, and that of non-rigid block, such as the Tibetan plateau, Tian Shan, and North China plain. Especially, the Tibetan plateau and Tian Shan seem to deform continuously with significant internal deformation. In order to enrich and perfect the active tectonic block hypothesis, we should carefully design dense GNSS networks in inner blocks and block boundaries, optimize utilizing other space geodesy technologies such as InSAR, and strengthen combining study of geodesy, seismogeology and geophysics. Through systematic summary, this paper is very useful to employing GNSS to investigate characteristics of block movement and dynamics of large earthquakes happening in block interaction boundaries.  相似文献   

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