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1.
针对2015年4月25日尼泊尔Mw7.8地震的孕震特征,本文首先对覆盖尼泊尔及周边地区的5套GPS水平速度场结果进行了融合,得到了近似统一参考框架下的速度场结果;在此基础上通过对此次地震震源区及周边地区的速度场、应变率场、基线时间序列分析,识别了震前变形特征.GPS应变率场结果显示,喜马拉雅主边界断裂存在大范围挤压应变积累,震源区处于近南北向应变积累高值过渡区.跨喜马拉雅构造带的GPS基线时间序列结果表现为持续缩短现象,表明印度板块与欧亚板块之间的持续挤压变形特征,2012年以来的缩短增强现象反映了印度板块对青藏块体的推挤增强作用明显.距离震中较近的西藏南部GPS同震位移结果以南向运动为主且指向震中,反映了青藏高原存在逆冲应变释放现象.综合此次尼泊尔地震前变形和同震应变释放特征,认为此次地震的孕震区域和同震应变释放区域均较大,将会对青藏高原的地壳变形与强震孕育产生深远影响.  相似文献   

2.
喜马拉雅构造带及其临近区域是印度板块与欧亚大陆板块挤压碰撞的前缘地带.本文利用GPS实测速度场与震源机制解数据分别计算了研究区域现今地壳岩石圈表面的GPS应变场及岩石圈内部的主应力分布,研究了印度板块持续挤压作用下板块边界带地壳岩石圈现今地壳形变的空间分布特征.结果显示,南北向的剧烈挤压变形与东西向的拉伸变形是现今青藏高原南缘地壳岩石圈的主要变形特征.其中南北向的地壳挤压变形主要集中在主前缘冲断带与雅鲁藏布江缝合带之间.东西方向上,南北走向的亚东—谷露断裂是区域地壳东西向伸展变形的重要分界断裂.75°E是研究区域地壳形变的另一条显著不连续边界,其西侧地壳主压应变强度低、方向弥散且最大主压应力方向一致性较差,而东侧地壳主压应变方向与主压应力方向以及地壳水平运动速度场方向均具有较好的一致性.布格重力异常的小波多尺度辨析结果显示该分界带与循喜马拉雅西构造结楔入欧亚大陆的印度板块密切相关.  相似文献   

3.
GPS监测的中国及其周边现时地壳形变   总被引:66,自引:7,他引:66       下载免费PDF全文
利用多个全国性的GPS监测网、中国地壳运动主要活动带的区域性GPS监测网以及亚太地区大地测量计划(APRGP)的GPS监测网自1991年以来近10年的GPS资料,通过旋转变换将不同方法得出的各个子网的速度解进行统一,给出一个自恰的、完整的ITR一7框架下的速度场综合解.为了研究中国现时地壳运动在欧亚板块内形变的特征,基于一个现时板块运动模型ITRF97VEL,给出了3类网共260多个站的形变速度场.结果表明中国地壳运动有明显的不均匀性,以南北地震带为界,西强东弱;中国西部受印度板块强烈的冲挤,地壳运动由南向北逐渐减慢,呈现南北向缩短,东西向伸展,有明显的块体特征;喜马拉雅和天山西部分别提供了约15mm/a和9-13mm/a的汇聚速率;拉萨块体有(20.2±1.2)mm/a的伸长;喀喇昆仑一嘉黎断裂的右旋走滑速率和阿尔金断裂的左旋走滑速率分别为2-3mm/a和4-6mm/a,穿过龙门山断裂带的缩短速率小于7mm/a,这些都支持地壳增厚学说;沿阿尔金断裂带到喜马拉雅存在一个NNE弥散带,它是形变速度有东和西分量的分界线,是一个有特殊意义的动力学带.中国东部以走滑为主,东北块体是中国最稳定的地区,华北块体具有较大走滑性,是东部较易变形区.  相似文献   

4.
基于传统跨断层测量监测断层活动的计算公式、主成分分析法以及GPS跨断层剖面方法分别计算了张渤带及其邻区主要断裂的运动特征。结果显示跨断层资料反映的断层近场变形特征沿张渤带各次级断裂以压性运动为主,与张渤带斜交的NE走向断裂以张性运动为主,部分测线不同时段会出现相反的运动性质。GPS观测资料表明NW走向的张渤带次级断裂以左旋走滑兼挤压运动特征为主,与张渤带斜交的NE走向的断裂以正断张性运动为主。各断层反映的张/压性质与利用震源机制解获得的区域构造应力场的主压/张应力方向较为一致。GPS资料结果显示:张渤带各次级断裂的平行断层的滑动速率介于0.5~1.5mm/a之间,垂直断层走向的挤压速率,除廊坊-武清断裂和蓟运河断裂外,其它次级断裂的速率0.8 mm/a;基于跨断层资料利用主成分分析获取张渤带及其邻区断裂运动综合运动指标表明区内断裂垂直运动速率1.5 mm/a,与跨断层资料逐条断裂分析的结果基本一致。总体来看,整个张渤带及其邻区断层活动水平较低。  相似文献   

5.
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   

6.
中国大陆地壳水平运动速度场与应变场   总被引:1,自引:0,他引:1  
收集了中国大陆及周边地区GPS网的有关数据,提出了GPS网速度场的不同融合方法;经过融合建立了中国大陆及周边地区统一的地壳运动速度场,该速度场使用的有效GPS站共423个,其覆盖面积为1200万km^2;初步总结出中国大陆及周边地区地壳水平运动空间分布的基本特征;建立了板内块体的刚性弹塑性运动应变模型,对其进行了块体应变参数唯一性与速度残差中误差最小检验;根据中国大陆及周边地区的速度场,估计了8个块体的应变参数,分析了这些块体的应变状态,估计出的各个块体的应变状态与地质学、地球物理学方法估计的结果具有很好的一致性。用喜马拉雅块体主压应变方向估计的印度板块向欧亚板块碰撞力的主方向为北东7.1度。  相似文献   

7.
本文利用华北地区1999-2001年,2001-2004年,2004-2007年及2007-2009年四期GPS速度场资料,基于块体的整体旋转与均匀应变模型,分析了郯庐断裂带中南段的运动及变形特征。结果显示:潍坊—郯城段主要为右旋走滑的变形特征,而郯城—庐江段则为左旋滑动的变形特征,两段垂直断层方向上的变形表现为“张压交替”的特征。基于刚体运动模型,计算了扣除环渤海湾区域整体刚性运动的华北地区GPS速度场,并分析了环渤海湾区域块体的变形状态,结果显示环渤海区虽然各期的变形特征不同,特别是郯庐带附近,各期的运动特征差异较大,但基本可反映燕山—渤海地震带是运动特征差异的分界线,且每期郯庐带各站点的一致性运动明显。  相似文献   

8.
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   

9.
利用GPS资料研究郯庐带现今运动及变形状态   总被引:2,自引:0,他引:2  
刘晓霞  江在森  武艳强 《地震》2012,32(4):1-10
本文利用华北地区1999—2001年, 2001—2004年, 2004—2007年及2007—2009年四期GPS速度场资料, 基于块体的整体旋转与均匀应变模型, 分析了郯庐断裂带中南段的运动及变形特征。 结果显示: 潍坊—郯城段主要为右旋走滑的变形特征, 而郯城—庐江段则为左旋滑动的变形特征, 两段垂直断层方向上的变形表现为“张压交替”的特征。 基于刚体运动模型, 计算了扣除环渤海湾区域整体刚性运动的华北地区GPS速度场, 并分析了环渤海湾区域块体的变形状态, 结果显示环渤海区虽然各期的变形特征不同, 特别是郯庐带附近, 各期的运动特征差异较大, 但基本可反映燕山—渤海地震带是运动特征差异的分界线, 且每期郯庐带各站点的一致性运动明显。  相似文献   

10.
基于2009—2014年渭河盆地及邻区GPS资料,利用Shen提出的连续形变场与应变场计算方法,获得渭河盆地及邻区的水平形变场及应变率场,结合构造地质、地震目录等资料对渭河盆地及邻区的现今地壳形变及构造特征进行研究,并得到如下结论:(1)鄂尔多斯地块南缘西段和东段GPS形变场变化差异明显,六盘山—陇县—宝鸡断裂带形变场以挤压变形为主,渭河盆地中部西安—咸阳地区的形变场呈现EW向挤压、SN向拉张特征;(2)主应变率、剪应变率、面应变率变化明显的区域位于鄂尔多斯地块西南缘的六盘山—陇县—宝鸡断裂带、渭河盆地中部的长安—临潼断裂与渭南塬前断裂以及韩城断裂与双泉—临猗断裂附近;(3)未来需要警惕六盘山—陇县—宝鸡断裂带、长安—临潼断裂与渭南塬前断裂以及韩城断裂与双泉—临猗断裂附近的地震危险性。  相似文献   

11.
We have collected GPS data in the period of 1999-2007 from the Crustal Motion Observation Network of China along the Zhangjiakou-Bohai fault and its adjacent regions to study the characteristics of present-day crustal horizontal motion velocities in the research zone.Strain rate components are computed in the spheric coordinate system by the least square collocation method.According to the spatial distribution of the principal strain rate,dilation rate and maximum shear strain rate derived from GPS measurements,this paper analyses the deformation of the subordinary faults of the Zhangjiakou-Bohai fault.The principal compression strain rates are apparently greater than the principal extension strain rates.The larger shear strain rate is mainly in and around the Xianghe,Wenan and Tangshan areas in Hebei Province.According to the profiles across different segments of the Zhangjiakou-Bohai fault,the three segments glong the Zhangjiakou-Bohai fault show an obviously left-lateal strike-slip and compression characteristics.By analysis of the motion characteristics of the blocks,e.g.the Yanshan block,North China Plain block,Ordos block,and Ludong-Huanghai block in and around the North China region,this paper speculates that the dynamics of the motion styles of Zhangjiakou-Bohai fault may directly come from the relative movement between the Yanshan block and the North China plain block,and the ultimate dynamics may be the results of the collison between Indian plate and Eurasian plate,and the persistent northeastward extrusion of the Indian plate.  相似文献   

12.
The northwestern section of the Zhangjiakou-Bohai fault zone starts in the west of Zhangjiakou, extending southeast through Huailai, Shunyi and Tianjin and entering into the Bohai Sea, with a width up to several tens of kilometers, narrow in the west and wide in the east. The Neogene-Quaternary has extended in the northwest and southeast direction, forming a large regional active structure. There are many earthquakes of magnitude 7 or above in the history on the Zhangjiakou-Bohai fault zone and it is also a strong earthquake activity zone in eastern China. Therefore, the modern tectonic activities of this fault zone have an important impact on regional seismic hazard, and are of great significance for earthquake prediction and disaster reduction. In this paper, using the mobile GPS station observation data of 1999, 2007, 2009, 2011, 2013 and 2015, and with the rigid-linear elastic block motion model equation proposed by LI Yan-xing, the horizontal deformation rate and strain rate of the Zhangjiakou-Bohai fault zone of the five adjacent periods of 1999-2007, 2007-2009, 2009-2011, 2011-2013 and 2013-2015 were calculated, the tectonic activity characteristics and evolution of the fault zone were studied. The results show that in the five periods, the average deformation rate of the Zhangjiakou-Bohai fault zone is 1. 74mm/a, the left-lateral strike-slip rate is 1.59mm/a, and the compression rate is -0.59mm/a. The Zhangjiakou-Bohai fault zone is characterized by left-lateral strike-slip and compression on the whole, and the left-lateral strike-slip rate is greater than the compression rate at each period. The strike-slip rate is significantly greater than the compression rate, indicating that the activity of Zhangjiakou-Bohai fault zone is dominated by left-lateral strike-slip faulting with compression. The minimum principal strain rate of the Zhangjiakou-Bohai fault zone in the five periods varies from -12.06×10-9/a to -4.62×10-9/a, and the average minimum principal strain axis direction is N63.9°E, with little change in direction. The maximum principal strain rate varies from 1.55×10-9/a to 5.99×10-9/a, and the average maximum principal strain axis direction is N333.9°W, the direction does not change much. The strike of the Zhangjiakou-Bohai fault zone is NWW(the overall strike is calculated by N300°W), and the normal strain rate of the fault zone is -5.87×10-9/a(being compressional), and the shear strain rate is 12.70×10-9/a. The shear strain rate on the fault zone is about twice the value of the normal strain rate, and the shear strain rate of the fault zone is greater than the normal strain rate, which indicates the shear stress of the 5 periods of 1999-2007, 2007-2009, 2009-2011, 2011-2013 and 2013-2015 is relatively significant, suggesting that the fault plain is dominated by left-lateral shear stress. This suggests that the Japan 3·11 earthquake has little effect on the deformation strain of the Zhangjiakou-Bohai fault zone, and it does not change the nature of activity of the fault zone. The tectonic activity is still inheriting. Since the tectonic activity of the Zhangjiakou-Bohai fault zone has gradually decreased after the Japan 3·11 earthquake, the deformation strain evolution trend has gradually returned to a unified consistent state. Therefore, the deformation strain state of the Zhangjiakou-Bohai fault zone does not have the condition for strong earthquakes.  相似文献   

13.
Based on high-precision data obtained in the past decade from GPS re-measurement in the North China Network, the Crustal Movement Observation Network of China (CMONOC) and GPS measurement along the Shanxi graben zone, the status and evolution of horizontal crustal movement in the North China region are analyzed. The results show that (1) the Yanshan tectonic zone (Zhangjiakou-Bohai Sea zone)is an active one with the largest horizontal strain in the North China region; The largest tendency differential movement of adjacent blocks is seen between the Yanshan block and the North China plain block; about 2mm/a (left lateral) ; (2)The significant horizontal differential movement along the boundaries of the North China region is characterized by right-lateral strike-slip movement at the middle-north segment on its west boundary (composed of Yinchuan and other active tectonic zones) and compressive movement at the south segment; while the Yinshan rift zone located along the west segment on its north boundary is dominated by tensile movement. Other boundaries and zones have no obvious differential movement; (3) On the whole, measurements of each period differ from one another, which might result from the nonlinear movement component as well as from the error effect. In the paper, results of the relative movement and strain in different periods are given for different blocks and boundary zones.  相似文献   

14.
张家口—渤海断裂带分段活动性研究   总被引:5,自引:0,他引:5  
方颖  张晶 《地震》2009,29(3):136-140
利用GPS资料,用地壳运动强度和大空间尺度变形分析了张家口—渤海断裂带的活动性。 结果表明,燕山地块与华北平原的地壳运动强度以张—渤带为明显的分界线,张-渤带以左旋走滑为主。 通过最小二乘配置对GPS资料进行了空间去噪声处理,并建立球面位错模型,反演了张—渤带的11条断层,结果表明: NW向断层以左旋走滑为主; NE向断层中,活动性最强的是以倾滑为主的沧东断裂。 2001—2004年时段与1999—2001年时段相比,张—渤带中西段、西段断层的走滑量略有减小,而其中东段、东段的走滑量有较大程度增大。 这种现象可能与该区域构造应力场有关。  相似文献   

15.
华北地区近期地壳水平运动与应力应变场特征   总被引:49,自引:7,他引:42  
利用华北GPS监测网 1 992年、1 995年、1 996年的观测资料 ,应用最小二乘配置给出了华北地区相对水平位移场、应变场的分布图像 .经初步研究表明 :华北地区 1 992-1 995年间的水平位移和应变场表现为整体性不均匀的压性运动 ,1 995- 1 996年测区东部仍以水平压性运动为主 ,但测区西部则主要表现为张性运动 .水平运动 (方向、大小 )发生显著变化和应变高值区的地带主要位于块体边界带和主要断裂带附近 .燕山断块南边界的北东向断裂存在着较显著的左旋运动 .区内最大剪应变、面膨胀的高值区在天津、北京、唐山一带 .结合非连续变形数值分析方法 (DDA)初步分析认为 ,1 992- 1 995年GPS观测结果显示的华北地区存在东、西部构造应力作用的明显差别 ,华北东部以东西向压应力作用为主 ,而西部的南北向构造应力作用又明显大于东部 .  相似文献   

16.
利用2016—2018年3期华北地区流动地磁矢量原始测量资料, 经数据计算获得2期华北地区和张家口—渤海地震活动带及邻区岩石圈磁场时空变化模型。 研究结果显示: 张家口—渤海地震带岩石圈磁场变化空间分布不均匀, 具有明显的分区特征, 在张家口段(西段)与北京段(中西段)分界处和北京段(中西段)与唐山段(中东段)分界处岩石圈磁场各要素具有明显的异常变化, 如水平矢量存在转向和幅值变化, 磁偏角与磁倾角具有正负异常高梯度带的特征, 这与张家口—渤海地震带构造分段性特征密切相关。 张家口—渤海地震带位于燕山块体与华北平原块体之间, 两者运动的平动速率之差是张家口—渤海地震带左旋走滑的直接动力来源, 而各断裂带左旋走滑速率之差很可能是岩石圈磁场空间变化分段性分布的主要原因。  相似文献   

17.
Movement and strain conditions of active blocks in the Chinese mainland   总被引:2,自引:0,他引:2  
The definition of active block is given from the angles of crustal deformation and strain. The movement and strain parameters of active blocks are estimated according to the unified velocity field composed of the velocities at 1598 GPS stations obtained from GPS measurements carried out in the past years in the Chinese mainland and the surrounding areas. The movement and strain conditions of the blocks are analyzed. The active blocks in the Chinese mainland have a consistent E-trending movement component, but its N and S components are not consistent. The blocks in the western part have a consistent N-trending movement and the blocks in the eastern part have a consistent S-trending movement. In the area to the east of 90°E, that is the area from Himalayas block towards NE, the movement direction of the blocks rotates clockwisely and the movement rates of the blocks are different. Generally, the movement rate is large in the west and south and small in the east and north with a difference of 3 to 4 times between the rates in the west and east. The distributions of principal compressive strain directions of the blocks are also different. The principal strain of the blocks located to the west of 90oE is basically in the SN direction, the principal compressive strain of the blocks in the northeastern part of Qingzang plateau is roughly in the NE direction and the direction of principal compressive strain of the blocks in the southeastern part of Qingzang plateau rounds clockwisely the east end of Himalayas structure. In addition, the principal strain and shear strain rates of the blocks are also different. The Himalayas and Tianshan blocks have the largest principal compressive strain and the maximum shear strain rate. Then, Lhasa, Qiangtang, Southwest Yunnan (SW Yunnan), Qilian and Sichuan-Yunan (Chuan-Dian) blocks followed. The strain rate of the blocks in the eastern part is smaller. The estimation based on the stain condition indicates that Himalayas block is still the area with the most intensive tectonic activity and it shortens in the NS direction at the rate of 15.2±1.5 mm/a. Tianshan block ranks the second and it shortens in the NS direction at the rate of 10.1±0.9 mm/a. At present, the two blocks are still uprising. It can be seen from superficial strain that the Chinese mainland is predominated by superficial expansion. Almost the total area in the eastern part of the Chinese mainland is expanded, while in the western part, the superficial compression and expansion are alternatively distributed from the south to the north. In the Chinese mainland, most EW-trending or proximate EW-trending faults have the left-lateral or left-lateral strike-slip relative movements along both sides, and most NS-trending faults have the right-lateral or right-lateral strike-slip relative movements along both sides. According to the data from GPS measurements the left-lateral strike-slip rate is 4.8±1.3 mm/a in the central part of Altun fault and 9.8±2.2 mm/a on Xianshuihe fault. The movement of the fault along the block boundary has provided the condition for block movement, so the movements of the block and its boundary are consistent, but the movement levels of the blocks are different. The statistic results indicate that the relative movement between most blocks is quite significant, which proves that active blocks exist. Himalayas, Tianshan, Qiangtang and SW Yunnan blocks have the most intensive movement; China-Mongolia, China-Korea (China-Korea), Alxa and South China blocks are rather stable. The mutual action of India, Pacific and Philippine Sea plates versus Eurasia plate is the principal driving force to the block movement in the Chinese mainland. Under the NNE-trending intensive press from India plate, the crustal matter of Qingzang plateau moves to the NNE and NE directions, then is hindered by the blocks located in the northern, northeastern and eastern parts. The crustal matter moves towards the Indian Ocean by the southeastern part of the plateau.  相似文献   

18.
方颖  江在森  顾国华 《地震研究》2007,30(2):152-156
介绍了用GPS连续观测资料反演断层运动的方法——网络滤波方法。用此方法探讨了华北地块边界带运动特征,并与发生在边界带附近和地块内部的地震活动及周边强震进行了比较,得出以下初步结论:郯庐大断裂和山西断陷盆地带的滑动量为1mm左右,整体活动水平有减弱的趋势;张家口—渤海断裂带滑动量为0.5mm左右,活动性逐渐增强;秦岭—大别山断裂内滑动量为0.5mm左右,活动性逐渐减弱。在2002年底至2003年底一年左右的时间内,华北地块边界带的滑动速率发生较大幅度的变化,同时,各边界带(秦岭—大别山断裂除外)的地震活动水平在2003年底达到高峰,说明边界带滑动速率急剧变化的结果导致边界带附近地震活动水平的加剧。另外,边界带滑动的特点表明了华北地块构造运动的整体性,推断华北地块的地壳运动可能与来自地球深部的地幔对流有关。  相似文献   

19.
INTRODUCTIONThe Zhangjiakou-Penglai fault zone has drawnextensive attentionfromseismologists and geologistssince it was determinedinthe1980’s(Zheng Binghua,et al.,1981).Ma Xingyuan,et al.(1989)consideredit asthe north boundaryof North China sub-block.Int…  相似文献   

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