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1.
PS-InSAR技术能够有效降低常规差分干涉雷达受时间失相干、空间失相干和大气效应的影响,在常规D-InSAR不能形成干涉条纹的情况下,可利用时间序列的雷达影像和相位稳定的永久散射体目标点获取离散的PS像素点形变速率。以福建省泉州地区的断裂带为研究对象,对1996-1999年的22景ERS SAR数据进行PS-InSAR处理,得出研究区主要断裂的视线向位移速率为3~5mm/a,表明该区断裂仍有一定的活动性,具有潜在的地震危险。  相似文献   

2.
基于单像对的常规D-InSAR技术在形变量较大的地震同震形变场探测中已取得成功应用,但由于其受时间、空间失相干和大气影响的严重制约,难以应用于长期缓慢微小地壳形变的观测研究中.近几年发展起来的PS-InSAR(Permanent scatterer InSAR)技术是对常规D-InSAR的创新性发展,它通过将干涉处理对象集中在SAR图象中散射特性稳定的高相干点集上(人工建筑物或巨石、山峰等自然地物),避开非相干象元可能带来的各种复杂问题,从而间接克服了相位失相关和大气延迟的局限性,极大地提高了干涉测量的精度和可靠性,使基于InSAR技术的mm级微小地壳形变的遥感观测得以实现.  相似文献   

3.
本文结合CR-InSAR、PS-InSAR技术,将CR、PS点联合构网,采用LAMBDA方法进行相位解缠,研究西秦岭北缘断裂带中断的微小形变,结果得出断裂带表现出左旋走滑运动特征,断裂带南盘平均形变速率为2.3mm·a~(-1),北盘平均形变速率为-1.5mm·a~(-1),南北两盘平均形变速率差异为3.8mm·a~(-1),与其他学者GPS、地质测年研究成果相近.对研究区内的角反射器(CR点)安装、影像特征分析及形变解算进行了较为详细的论述,并对比分析了CR、PS点联合构网和PS点单独构网解算结果,得出对地质环境复杂的断裂带做永久散射体形变研究时,CR、PS点联合构网解算结果好、研究结果可靠.说明CR、PS点联合构网中,CR点由于其自身的高稳定特性,对整个解算网络起到了很好的整体控制作用,保证了解算结果正确.  相似文献   

4.
断裂带气体地球化学特征与形变特征之间的相关关系是建立具有物理预报思路断层气流动观测网络布设的重要课题。选择有大量温泉出露点且形变较剧烈的西秦岭北缘断裂带为研究对象,对跨断层形变测量场地进行断层土壤气剖面重合布设及现场测量,重点研究断层气分段性特征与断层形变、地震活动性特征耦合关系,探讨利用多种方法开展断裂带强震危险性分析的可能性。结果表明:断裂带土壤气地球化学特征和断层水准形变特征的分布具有良好相关关系,二者对比结果同时显示出西秦岭北缘断裂带中东段——武山段断层活动性相对活跃,渭源—漳县段次之,天水段断层相对闭锁的特征;且武山和甘谷走滑拉分区因流体活动的影响以中小地震活动为主,天水段和漳县段西部及与武山段交汇的盘古川地区,流体活动较弱,应变速率较小,存在孕育强震的可能。  相似文献   

5.
南天山及帕米尔高原现代地壳水平形变   总被引:3,自引:0,他引:3  
通过对南天山及帕米尔高原GPS监测网的观测,获得了该地区的现今地壳形变速率图、基线变化图、应变图及主要地质构造带的断裂位移。结果表明,南天山及帕米尔地区地壳运动幅度较大,受印度板块的推挤作用,地壳正快速缩短变形,并且该区域的地壳形变具有自西向东、自南向北减弱的特点。另外,南天山地震断裂带以每年5~10mm的速度吸收来自帕米尔高原向北推挤的运动速率。通过研究还发现,喀什以西地区是强剪应力汇集的地区,地壳活动极其复杂、强烈。  相似文献   

6.
基于PSInSAR技术的海原断裂带地壳形变初步研究   总被引:7,自引:4,他引:3       下载免费PDF全文
常规差分干涉测量(DInSAR)受时间、空间失相干的严重制约和和大气延迟等相位误差的影响,难以实现对长期累积微小地壳形变场的有效探测.PSInSAR技术克服了常规DInSAR的局限性,能够高精度监测微小地壳形变.本文首先介绍了PSInSAR技术的算法模型和处理方法.该方法通过二维线性相位模型,对时序干涉图象上相干点目标...  相似文献   

7.
选用10景RADARSAT-2降轨宽幅雷达干涉数据,利用相干点目标PS-InSAR技术进行时间序列处理,获取了山西断裂带北部特定区域内2011—2014年地表形变场。结果表明:(1)断裂带中段的定襄县平原区域有较好的相干性,沿卫星视线向(LOS)的年形变速率最小值为-5±2 mm/a,最大值为-14±2 mm/a,显示断裂带附近以拉张正断层活动为主兼具逆时针差异运动特征;(2)地表形变特征的空间分布表明城市工业生产和生活抽取地下水是地表形变的主要诱因,最大沉降区域沿NNE向展布与研究区内断裂一致表明形变趋势受断裂带的影响明显;(3)利用已有的GPS复测资料对识别的PS点目标进行可靠性验证,结果表明两者的观测结果能够很好的吻合,证明该方法在监测面状区域形变场运动趋势的有效性。  相似文献   

8.
734年天水7级地震考证与发震构造分析   总被引:11,自引:1,他引:11  
根据历史地震资料的考证结果,734年天水地震的极震区位于秦州中都督府、麦积都尉一带,今天水市秦城区、北道区和麦积山一带,震中烈度达Ⅹ度,震级71/2级左右。其等震线长轴方向为NW向,大致与西秦岭北缘断裂带的甘谷-武山断裂段相吻合,极震区正好位于甘谷-武山断裂段的东端。综合分析认为,734年天水71/2级地震的发震构造为西秦岭北缘断裂带的甘谷-武山断裂段东端  相似文献   

9.
利用现今大地形变测量资料,可分析研究得到现今地壳形变特征.大地形变场的建立,主要以精密水准测量监测大地区域垂直形变,以地面激光测距监测大地水平形变,以短基线、短水准测量等方法对断层活动性进行定点观测研究.20世纪90年代以后比较流行用GPS监测场区现代构造运动及断裂的地壳形变.本文主要通过分析对比中、越红河断裂带及其相邻地区的现代形变监测资料,得出现今红河断裂的形变特征.  相似文献   

10.
利用“中国大陆构造环境监测网络”GNSS数据研究1998—2018年青藏高原东北缘排除同震影响等干扰后的速度场、主应变率场、最大剪切应变率场、面应变场等的变化,活动断裂滑动速率变化、跨活动断裂基线变化等。将研究区域内的二级块体再分区,获得各次级块体内部的应变率变化;获取研究区域地壳运动场的趋势性、动态特征。研究结果显示,阿尔金断裂带中东段、祁连块体和柴达木块体交界、巴颜喀拉块体与羌塘块体交界、祁连块体南边界中段、海原—六盘山断裂带和西秦岭北缘断裂带西段的逆冲运动,祁连块体北边界西段、庄浪河断裂的左旋走滑运动,祁连块体北边界东段、西秦岭北缘断裂带东段的左旋逆走滑运动,都属于造成一定程度地壳变形的持续性局部应变增强活动。阿尔金断裂带东段、东昆仑断裂带中西段、祁连块体北边界、庄浪河断裂北段、海原断裂南段、六盘山断裂北段、西秦岭北缘断裂带东段可能存在闭锁,未来十年可能发生MS6.0以上地震。  相似文献   

11.
长江三峡地区地壳形变特征及其构造意义   总被引:5,自引:1,他引:5  
李愿军 《地震地质》1991,13(3):249-257
本文讨论了三峡地区地壳形变特征,认为黄陵断块相对于周缘的差异性运动是存在的,最大年速率可达5—10毫米。跨断层的短水准结果以继承性断层活动为主,年速率在毫米级。水平形变网揭示仙女山断裂带近年来表现为左旋压扭性,天阳坪断裂带以右旋滑动为主  相似文献   

12.
对143年甘谷西7级地震史料的新见解   总被引:9,自引:0,他引:9       下载免费PDF全文
根据地震历史资料的考证分析,143年甘谷西地震可能由2次地震组成,其中陇西、汉阳(今甘谷)、武都三郡地震有感区为一次地震,称为南区;张掖、武威、北地(今吴忠)三郡地震有感区为另一次主震,称为北区。南区地震震中大致位于甘谷西,与原定震中位置大体相当,仍称为甘谷西地震,震级达714级左右,震中烈度约Ⅸ~Ⅹ度,发震构造为西秦岭北缘断裂带中段;北区的143年地震震中位于武威以东的腾格里沙漠边缘,震级达712级左右,震中烈度约Ⅹ度,推测其发震构造为祁连山-河西走廊活动断裂系东端的主干活动断裂之一。  相似文献   

13.
Influenced by the far-field effect of India-Eurasia collision, Tianshan Mountains is one of the most intensely deformed and seismically active intracontinental orogenic belts in Cenozoic. The deformation of Tianshan is not only concentrated on its south and north margins, but also on the interior of the orogen. The deformation of the interior of Tianshan is dominated by NW-trending right-lateral strike-slip faults and ENE-trending left-lateral strike-slip faults. Compared with numerous studies on the south and north margins of Tianshan, little work has been done to quantify the slip rates of faults within the Tianshan Mountains. Therefore, it is a significant approach for geologists to understand the current tectonic deformation style of Tianshan Mountains by studying the late Quaternary deformation characteristics of large fault and fold zones extending through the interior of Tianshan. In this paper, we focus on a large near EW trending fault, the Baoertu Fault (BETF) in the interior of Tianshan, which is a large fault in the eastern Tianshan area with apparent features of deformation, and a boundary fault between the central and southern Tianshan. An MS5.0 earthquake event occurred on BETF, which indicates that this fault is still active. In order to understand the kinematics and obtain the late Quaternary slip rate of BETF, we made a detailed research on its late Quaternary kinematic features based on remote sensing interpretation, drone photography, and field geological and geomorphologic survey, the results show that the BETF is of left-lateral strike-slip with thrust component in late Quaternary. In the northwestern Kumishi basin, BETF sinistrally offsets the late Pleistocene piedmont alluvial fans, forming fault scarps and generating sinistral displacement of gullies and geomorphic surfaces. In the bedrock region west of Benbutu village, BETF cuts through the bedrock and forms the trough valley. Besides, a series of drainages or rivers which cross the fault zone and date from late Pleistocene have been left-laterally offset systematically, resulting in a sinistral displacement ranging 0.93~4.53km. By constructing the digital elevation model (DEM) for the three sites of typical deformed morphologic units, we measured the heights of fault scarps and left-lateral displacements of different gullies forming in different times, and the result shows that BEFT is dominated by left-lateral strike-slip with thrust component. We realign the bended channels across the fault at BET01 site and obtain the largest displacement of 67m. And we propose that the abandon age of the deformed fan is about 120ka according to the features of the fan. Based on the offsets of channels at BET01 and the abandon age of deformed fan, we estimate the slip rate of 0.56mm/a since late Quaternary. The Tianshan Mountains is divided into several sub-blocks by large faults within the orogen. The deformation in the interior of Tianshan can be accommodated or absorbed by relative movement or rotation. The relative movement of the two sub-blocks surrounded by Boa Fault, Kaiduhe Fault and BETF is the dominant cause for the left-lateral movement of BETF. The left-lateral strike-slip with reverse component of BETF in late Quaternary not only accommodates the horizontal stain within eastern Tianshan but also absorbs some SN shortening of the crust.  相似文献   

14.
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   

15.
This paper gives a preliminarily study of the regional tectonic deformation setting before the Ms8.1 earthquake that occurred in the west of the Kunlun Mountains Pass; in the study, the data of the velocity field of crustal horizontal movement during 1991-2000 observed by GPS in and around the Qinghai-Tibet block and those of gravity reiteration in 1998 and 2000 were used. Analysis shows that the preparation and occurrence of this large earthquake are related to the horizontal movement and deformation setting in a large region and might be attributed to the block activity on a relatively large scale. Within the Qinghai-Tibet block, the region of left-lateral shear deformation is of a very large extent. This large earthquake occurred right in such a place where the left-lateral shear strain along the fault strike had the highest rate and the planar dilatation strain was tensile, which was on the margin of negative value region of abnormal gravity variation. The regional tectonic deformation setting can help the huge left-lateral strike-slip rupture to develop.  相似文献   

16.
2008年于田7.3级地震前西昆仑地形变的GPS初步研究   总被引:1,自引:0,他引:1       下载免费PDF全文
利用GPS观测资料计算并获取了2008年新疆西昆仑地区于田7.3级地震发生前的现今地壳运动速度场,通过速度场分布研究了区域内主要断层的活动速率.结果表明:震中以南的龙木错断裂呈左旋走滑性质的运动特征,走滑速率为1.2~2.5 mm/a;震中以北的阿尔金左旋走滑断裂滑动速率为5 mm/a;震中北西面的康西瓦断裂的左旋走滑平均速率约为3~7 mm/a.区域应变场分布一定程度上受断裂带分布的影响.7.3级地震就位于断裂活动交汇的部位和最大剪应变率高值区的边缘.  相似文献   

17.
As the northeast boundary of the Tibetan plateau, the Haiyuan-Liupan Shan fault zone has separated the intensely tectonic deformed Tibetan plateau from the stable blocks of Ordos and Alxa since Cenozoic era. It is an active fault with high seismic risk in the west of mainland China. Using geology and geodetic techniques, previous studies have obtained the long-term slip rate across the Haiyuan-Liupan Shan fault zone. However, the detailed locking result and slip rate deficit across this fault zone are scarce. After the 2008 Wenchuan MS8.0 earthquake, the tectonic stress field of Longmen Shan Fault and its vicinity was changed, which suggests that the crustal movement and potential seismic risk of Haiyuan-Liupan Shan fault zone should be investigated necessarily. Utilizing GPS horizontal velocities observed before and after Wenchuan earthquake(1999~2007 and 2009~2014), the spatial and temporal distributions of locking and slip rate deficit across the Haiyuan-Liupan Shan fault zone are inferred. In our model, we assume that the crustal deformation is caused by block rotation, horizontal strain rate within block and locking on block-bounding faults. The inversion results suggest that the Haiyuan fault zone has a left-lateral strike-slip rate deficit, the northern section of Liupan Shan has a thrust dip-slip rate deficit, while the southern section has a normal dip-slip rate deficit. The locking depths of Maomao Shan and west section of Laohu Shan are 25km during two periods, and the maximum left-lateral slip rate deficit is 6mm/a. The locking depths of east section of Laohu Shan and Haiyuan segment are shallow, and creep slip dominates them presently, which indicates that these sections are in the postseismic relaxation process of the 1920 Haiyuan earthquake. The Liupan Shan Fault has a locking depth of 35km with a maximum dip-slip rate deficit of 2mm/a. After the Wenchuan earthquake, the high slip rate deficit across Liupan Shan Fault migrated from its middle to northern section, and the range decreased, while its southern section had a normal-slip rate deficit. Our results show that the Maomao Shan Fault and west section of Laohu Shan Fault could accumulate strain rapidly and these sections are within the Tianzhu seismic gap. Although the Liupan Shan Fault accumulates strain slowly, a long time has been passed since last large earthquake, and it has accumulated high strain energy possibly. Therefore, the potential seismic risks of these segments are significantly high compared to other segments along the Haiyuan-Liupan Shan fault zone.  相似文献   

18.
利用基于升、降轨InSAR形变场及余震精定位结果反演得到的同震滑动模型,通过PSGRN/PSCMP程序获得同震水平形变场及应力场分布特征,结合玛多MS7.4地震周边形变同震阶变台站分布特征,探讨同震应力场变化与同震阶变台站分布间的关系。模拟得到的水平形变场结果显示,此次玛多地震为左旋走滑运动特征,水平形变量主要集中在巴颜喀拉块体内,其次是北部的柴达木块体;羌塘块体以及祁连块体同震水平位移量较小;昆仑山口-江错断裂作为一条NE倾向的走滑型断裂,断层上盘区域滑动量明显大于下盘,模拟得到的最大水平形变量达1380mm;形变同震阶变的台站主要集中分布在祁连山断裂带中东段以及西秦岭等地区,祁连山断裂带中东段位于此次玛多地震同震正应力变化正值区域,而西秦岭等地区则处于玛多地震同震剪切应力变化的正值区域,即出现同震阶变的台站与同震应力场变化的正值区域具有较好的一致性。  相似文献   

19.
阿尔金北缘断裂带东北段第四纪构造活动与地震   总被引:2,自引:0,他引:2       下载免费PDF全文
本文概述了阿尔金北缘断裂带东北段(甘肃境内)的地质背景和新构造运动,讨论了断层特性、断层几何学、形变图象及一些特殊走滑运动地貌等问题。根据第四纪后期不同时代的地貌单元被水平左旋错移的幅度,结合C~(14)年代测定,求出5个不同时代至今的平均滑动速率,并分析了断层活动的一些时空特点。文章还探讨了古地震现象,现代地震活动与断裂的关系及地震危险性,较详细地研究了新发现的芦草沟古地震形变带。  相似文献   

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