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1.
2022年1月8日青海省海北州门源县发生Ms 6.9地震,震中位于青藏高原东北缘祁连-海原断裂中段,属历史地震空区,基于多源合成孔径雷达(synthetic aperture radar,SAR)遥感数据研究该地震的破裂模式对理解青藏高原东北缘构造变形机制、应变释放过程以及地震危险性评估具有重要意义。首先利用Sentinel-1数据和合成孔径雷达差分干涉测量(differential interferometry synthetic aperture radar,D-InSAR)技术获取了门源地震的同震形变场,视线(line of sight,LOS)向形变场显示此次地震造成了约20 km长的地表破裂,最大形变约0.75 m;然后基于Sentinel-2卫星数据,利用光学影像配准和相关技术获取了本次地震的东西向同震形变场,最大同震位移达2.5 m;最后基于均匀弹性半无限位错模型,以LOS向形变场为约束反演了断层的滑动分布模型。结果显示,门源地震是一次典型的左旋走滑型地震,地震破裂主要集中在0~10 km深度范围,最大滑动量3.25 m,滑动角10.44°,对应深度4.89 km;反演给出的矩震量为1.07×1019 N·m,对应矩震级Mw 6.6。结合野外考察和地质资料,初步判定发震断裂为冷龙岭断裂,并引起托莱山断裂发生同震滑动。同震库仑应力结果显示,冷龙岭断裂东段和托莱山断裂西段应力状态为加载,未来具有发生强震的风险。  相似文献   

2.
利用哨兵(Sentinel)-1A卫星升、降轨影像,在地震位错模型约束下获取了2017年九寨沟Mw 6.5地震的高质量三维形变场。首先,利用合成孔径雷达干涉测量技术(interferometric synthetic aperture radar,InSAR)提取九寨沟地震升、降轨同震形变场;然后,通过“两步法”反演获取该地震发震断层的几何参数和分布式滑动模型,以此为约束,采用方差分量估计算法联合解算九寨沟地震三维形变场。结果表明,九寨沟地震同震三维形变场以水平位移为主,垂向形变较弱;南北向形变呈拉张趋势,断层上盘向南、下盘向北滑动,最大位移分别为-19.81 cm和14.38 cm;东西向形变不对称性明显,断层上盘西北部向东水平运动,最大位移为18.37 cm,下盘东南部向西运动,最大位移不足8 cm。将南北、东西向形变与6个全球导航卫星系统(global navigation satellite system,GNSS)台站观测数据进行比较,两者一致性较好且均方根误差较小,分别为1.44 cm和1.77 cm,表明联合升、降轨InSAR观测和地震位错模型约束构建同震三维形变场方法具有较高可行性,显著降低了大地测量数据不足、InSAR观测对南北向形变不敏感等问题的影响。  相似文献   

3.
青海玉树地震差分干涉雷达同震形变测量   总被引:1,自引:0,他引:1  
2010-04-14青海玉树发生7.1级地震后,作者利用震前和震后获取的日本ALOS卫星PALSAR遥感数据,开展了差分干涉雷达(D-InSAR)地震同震形变测量与分析。结果表明:玉树地震引起较大范围地表变形,地震变形沿玉树—甘孜断裂带向南东东方向扩展,在N33.7°,E96.81°附近达到最大形变量,D-InSAR监测到雷达视向上的最大形变量为35cm。地表形变特征对于评价玉树地震破坏程度、推断断层性质、研究地震形变和地震孕育特征具有重要的参考价值。  相似文献   

4.
中国青海省门源县于2016年和2022年分别发生了Mw 5.9和Mw 6.7地震,相距不足40 km。利用欧洲空间局Sentinel-1A升降轨雷达影像,采用合成孔径雷达干涉测量(interferometric synthetic aperture radar, InSAR)技术分别获取两次地震的同震地表形变场,进而利用弹性半空间的位错模型确定上述事件的震源参数,基于分布式滑动模型反演确定两次地震断层面上的滑动分布,并探讨2016年门源地震对2022年门源地震的发震影响及触发机制。结果表明,2016年门源地震为逆冲型地震,并未破裂到地表,升、降轨同震形变场沿视线向的最大形变量分别为6.7 cm和7.0 cm,断层的最大滑动量为0.53 m,主要集中在地下4~12 km区域滑动。2022年门源地震同震形变场沿NWW-SEE向破裂,降轨影像最大视线向地表形变量为78 cm,断层的最大滑动值达到3.5 m,处于地下4 km左右,断层滑动分布模型揭示此次地震为左旋走滑型地震;结合冷龙岭断裂的运动性质和几何特征,可初步判定发震断层主要为冷龙岭断裂的西段、且极有可能破裂到了其西北端西侧的托莱山断裂。静态库仑应力触发关系显示,2016年门源地震对2022年门源地震的发生有一定的促进作用。  相似文献   

5.
光学影像已经广泛地应用于地表形变监测研究。哨兵-2号光学影像作为一种新的对地观测数据,具有重访周期短、空间分辨率高、影像覆盖范围大以及数据免费等优点,因此该数据在地表形变监测上有广泛的应用潜力。本文以COSI-Corr软件包为数据处理平台,基于亚像素的频率域相关性匹配技术,处理多时相的哨兵-2号数据获取地表形变。本文选取2016年Mw7.8新西兰凯库拉(Kaikoura)地震覆盖区域为例,对哨兵-2号影像地表形变中存在的各种系统误差源进行了系统分析和改正,并提出了改进的均值相减法去除形变场中的卫星姿态角误差。另外,还对哨兵-2号4个10 m空间分辨率的波段(Band 2/3/4/8)中可用于地表形变监测的最佳波段进行了分析,统计结果显示Band8的地表形变监测效果最好。最后,利用哨兵-2号光学影像获取了2016年11月14日Mw7.8新西兰凯库拉地震的同震形变场;分析了沿地震主要断层的滑移分布,结果表明最大水平滑移量达10 m;并与同期Landsat8全色影像的同震形变监测结果进行对比分析,结果表明哨兵-2号结果精度更高。本文的研究成果可以为哨兵-2号光学影像的应用提供参考。  相似文献   

6.
Interferometric Synthetic Aperture Radar (InSAR), nowadays, is a precise technique for monitoring and detecting ground deformation at a millimetric level over large areas using multi-temporal SAR images. Persistent Scatterer Interferometric SAR (PSInSAR), an advanced version of InSAR, is an effective tool for measuring ground deformation using temporally stable reference points or persistent scatterers. We have applied both PSInSAR and Small Baseline Subset (SBAS) methods, based on the spatial correlation of interferometric phase, to estimate the ground deformation and time-series analysis. In this study, we select Las Vegas, Nevada, USA as our test area to detect the ground deformation along satellite line-of-sight (LOS) during November 1992–September 2000 using 44 C-band SAR images of the European Remote Sensing (ERS-1 and ERS-2) satellites. We observe the ground displacement rate of Las Vegas is in the range of ?19 to 8 mm/year in the same period. We also cross-compare PSInSAR and SBAS using mean LOS velocity and time-series. The comparison shows a correlation coefficient of 0.9467 in the case of mean LOS velocity. Along this study, we validate the ground deformation results from the satellite with the ground water depth of Las Vegas using time-series analysis, and the InSAR measurements show similar patterns with ground water data.  相似文献   

7.
2008-11-10青海大柴旦地区发生了Mw6.3级地震,其发震断层位于青藏高原东北缘的大柴旦一宗务隆山断裂带。利用欧空局Envisat/ASAR卫星雷达影像数据,采用二通差分干涉技术获得了地震的同震地表形变场,基于1D协方差函数估计InSAR同震形变场的中误差为0.52cm,方差一协方差衰减距离为5.9km。在此基础上,采用弹性半空间矩形位错模型进行断层几何参数反演,并利用断层自动剖分技术确定了地震的最佳同震滑动分布模型。结果表明,该地震的震源机制解为走向107.19°,倾角56.57°,以逆冲为主兼具少量右旋走滑分量;滑动分布主要发生在10-20km深度范围内,最大滑动量为0.51m,释放的能量为4.3×10^18Nm。  相似文献   

8.
2016年8月24日,意大利中部阿马特里切(Amatrice)地区发生Mw 6.2地震。采用ALOS-2条带模式和SENTINEL-1A宽幅模式的合成孔径雷达(synthetic aperture radar,SAR)数据分别进行SAR差分干涉测量处理,获取了该地震的同震形变场。结果显示,本次地震造成意大利中部地区发生明显的地壳形变,在雷达视线向最大沉降量达19.6 cm。基于合成孔径雷达干涉测量(interferometry synthetic aperture radar,InSAR)和GPS同震形变场数据对此次地震的发震断层进行联合反演,通过改进倾角和平滑系数获取方法,得到了最优滑动分布模型。通过使用单断层模型和双断层模型进行反演可知,双断层模型反演结果优于单断层反演结果,两种模型下反演模型相关系数分别为0.85和0.89,发震断层走向分别为160°和158°,倾角分别为44°和46°,倾滑分布主要位于地下5~7 km,平均倾滑角为-80°,最大倾滑量0.9 m位于地壳深度5 km处,该发震断层是亚平宁冲断带的一部分,为NW-SE向延伸的正断层,断层长约20 km。综合使用地震同震形变场和GPS数据对震源机制进行反演、模拟和分析,获取了高精度的震源参数,可以为分析地震危险性和断层破裂参数等提供数据支持。  相似文献   

9.
2022-09-05,青藏高原东缘的鲜水河断裂上发生了泸定Mw 6.6地震,该地震是鲜水河断裂上40年来发生的最大地震,研究该地震的运动学和同震破裂模式对理解青藏高原东缘构造形变机制和评估鲜水河断裂以及安宁河断裂的地震危险性具有重要意义。利用Sentinel-1和ALOS-2卫星雷达影像,采用合成孔径雷达干涉技术获取了泸定地震的同震形变场,进而基于弹性半空间的位错模型,确定了本次地震发震断层的几何参数和滑动分布。结果表明,泸定地震是一次典型的左旋走滑事件,发震断层西倾,倾角约为72°,走向沿NNW-SSE方向,约为167°;断层破裂主要集中在0~10 km深度,最大滑动发生在约5.8 km深度,约为2.23 m;同震释放的地震矩约为8.74×1018 N·m,相当于矩震级Mw 6.59。通过对震后光学影像解译,发现此次地震诱发的滑坡多集中分布在发震断层西侧,该现象与余震主要集中在断层西侧的结果相一致,可认为是地震上盘效应的体现。  相似文献   

10.
利用合成孔径雷达干涉测量的短基线技术对汶川震前的地表形变进行面状监测。获取的是日本卫星L波段的ALOS PALSAR传感器拍摄的卫星数据。在Gamma软件处理下,将2007年6月至2008年5月的时隔320 d的6景数据,利用stacking技术得到汶川震中地区在震前一年内的变形速率。变形特征表明,沿着汶茂断裂带呈“凸”字形分布特征,断裂带处最大隆升值达24 cm,断层两侧出现下降的趋势,在绵虒镇附近达到最大沉降值22 cm。与前人用D-InSAR所做出的研究结果相比,二者具有很好的一致性。  相似文献   

11.
刘学武  胡波  莫玉娟  白蓉 《测绘工程》2011,20(6):38-39,44
近二十年来,合成孔径雷达干涉测量技术(DInSAR)作为一种监测地表形变的有效技术得到广泛应用,其视线向精度可达厘米级甚至毫米级。该技术尤其是对监测快速、激烈的地表形变更为有效,如地震、火山等。利用DInSAR技术,选用日本ALOS卫星PALSAR数据,获取了2010—04—14玉树Mw6.9地震的同震形变场。结果表明:地表至少发生过3次地表破裂,沿断层走向的形变分布范围远远大于垂直断层分布范围,形变分布特征以左旋走滑为主。  相似文献   

12.
利用3种不同视线向LOS(Line Of Sight)的ENVISAT ASAR数据进行干涉处理,提取多视线向(Multi-LOS)的同震形变场;结合同震形变场特征与震源机制解,构建了改则地震双断层破裂模型;利用四叉树采样后的多视线向同震形变场进行约束,通过梯度下降法(Steepest Descent Method,SDM)与Crust2.0地壳分层模型反演了改则地震的同震滑动分布特征。结果表明:反演的形变残差得到有效控制,基本介于0±10 cm之间;主震断层的滑动量主要位于断层面2—16 km深部,最大滑动量可达1.34 m,位于断层面6.4 km深处;余震断层滑动量主要位于断层面2—6 km深部,最大滑动量可达0.90 m,位于断层面3.52 km深处;主震断层与余震断层均以正断为主,但主震断层还具有一定的左旋走滑分量,而余震断层的左旋走滑不明显;当剪切模量μ取3.2×1010Pa时,反演获得的主震与余震地震矩M0分别为6.34×1018N·M与1.20×1018N·M,分别相当于矩震级MW6.47与MW5.98。  相似文献   

13.
We describe and test a procedure to accurately co-register and correlate multi-temporal aerial images. We show that this procedure can be used to measure surface deformation, and explore the performance and limitations of the technique. The algorithms were implemented in a software package, COSI-Corr (available from the Caltech Tectonics Observatory website). The technique is validated on several case examples of co-seismic deformation. First, we measure co-seismic ground deformation due to the 1992, Mw 7.3, Landers, California, earthquake from 1 m resolution aerial photography of the National Aerial Photography Program (United States Geological Survey). The fault ruptures are clearly detected, including small kilometric segments with fault slip as small as a few tens of centimeters. We also obtained similar performance from images of the fault ruptures produced by the 1999 Mw 7.1 Hector Mine, California, earthquake. The measurements are shown to be biased due to the inaccuracy of the Digital Elevation Model, film distortions, scanning artifacts, and ignorance of ground displacements at the location of the tie points used to co-register the multi-temporal images. We show that some of these artifacts can be identified and corrected.  相似文献   

14.
Differential interferometric synthetic aperture radar (D-InSAR) measures ground deformation only along the line-of-sight (LOS) of the radar, which limits the capability of D-InSAR in investigating the surface damages and the focus mechanisms of earthquakes. We do a three-dimensional (3D) decomposition of the coseismic displacement of the Darfield, New Zealand earthquake that occurred on 3 September 2010 by exploiting the Multi-Aperture InSAR (MAI) and D-InSAR measurements from both ascending and descending L-band PALSAR data. Due to the dispersive nature of the ionosphere and the slight Doppler shift between the forward- and backward-looking interferograms, the ionospheric effects can be more serious in MAI measurements than in D-InSAR. We propose mitigating the ionospheric effects in the MAI processing with the directional filtering and interpolation procedure that has been applied in Offset-tracking. The rupture revealed by the 3D surface displacement fits closely to the Greendale fault, which is believed to be responsible for the earthquake. The horizontal ground motions, mostly eastwards in the hanging wall and westwards in the footwall, reached up to 2.5 m and are anti-symmetric with respect to the Greendale fault. Up to 2.5 m subsidence occurred in the hanging wall, while uplift is found in the footwall with an extreme case of 1.6 m in the far left of the fault. This makes us conclude that the Greendale fault is a normal and dextral strike-slip. It is seen that the MAI measurements are very helpful in the derivation of 3D coseismic displacement fields as it provides more accurate displacement estimation in the north–south direction.  相似文献   

15.
The Ms8.0 Wenchuan earthquake (in China) occurred on 12 May 2008 as a result of slip on the northeastern-striking Longmen Shan (LMS) faults beneath the rugged margin between the Qinghai-Tibet Plateau and Sichuan Basin. The catastrophic event caused significant surface ruptures and permanent ground displacement in a wide area. This paper concentrates on mapping surface deformation caused by the main shock with the interferometric synthetic aperture radar (InSAR) technology. The coseismic interferogram covering an area of over 83,000 km2 is computed with use of 46 SAR images that were collected along 6 adjacent ascending orbits by the L-band SAR sensor onboard the Japanese Advanced Land Observing Satellite (ALOS). The displacements measured at 16 GPS sites are used to check the accuracy of the InSAR deformation measurements. The radar coherence is computed and analyzed in relation to the topography and the normalized difference vegetation index (NDVI) estimated from the Landsat-7 imagery. The results show that the coseismic surface deformation can be mapped up to a centimeter-accuracy level even over the highly mountainous and heavily vegetated area with the L-band interferometer. It is also demonstrated that the L-band interferograms with time interval of months to years can still maintain acceptable radar coherence for deformation extraction over the area under the extreme conditions. The extracted InSAR deformation measurements show that the lands in the Sichuan Basin had moved 0.1–1.3 m toward the satellite along the radar line of sight (LOS) direction with an azimuth of 349.8° and an elevation angle of 51.3°, while the lands in the LMS area had moved 1.4 m at most away from the satellite.  相似文献   

16.
The monitoring of slope instability requires detailed observations of mass movements, which generally cannot be obtained by geodetic methods or global positioning systems (GPS). Differential synthetic aperture radar (SAR) interferometry has proven to be an effective way of measuring land deformation with millimeter accuracy over wide areas. Using data from the newly launched L-band ALOS PALSAR interferometer and the multi-baseline differential SAR interferometry technique, slope instability in Hong Kong was analyzed by means of measured surface displacement along look vectors. Owing to its enhanced vegetation penetration, less temporal decorrelation enabled the L-band data to improve spaceborne radar sensor land-surface deformation measurements. The results were validated by ENVISAT ASAR-derived outcomes and other ground survey data.  相似文献   

17.
利用Sentinel-1A卫星升轨、降轨合成孔径雷达影像数据,提取了2016年门源Mw5.9级地震的高精度合成孔径雷达干涉同震形变场,利用单纯形法和非负最小二乘法反演确定了地震断层几何和滑动分布,并构建了区域断裂带的深部几何形态模型。结果表明,门源Mw5.9级地震同震形变以地表抬升为主,沿升轨、降轨视线向的最大值分别为5.3 cm、7.1 cm;地震断层走向、倾角分别为133°、43°;地震滑动以逆冲为主,主要发生在地下6.14~12.28 km处,最大滑动量约0.5 m,平均滑动角为66.85°,地震矩为1.0×1018 N·m(Mw5.94);形变观测拟合残差均方根为0.36 cm;区域断裂带的深部几何形态以花状构造为特征,整体倾向南西,门源地震发震断裂为花状构造中未出露地表的盲断层。相关成果能够为研究区域地壳运动与变形、活动断裂与地震孕育发生等提供参考。  相似文献   

18.
Vertical deformation estimation can be a significant tool in preventing geological hazards and managing environment impacts of underground mining. Common ground surface vertical deformation calculations are challenged by difficult data collection and dependence on prior knowledge. SVD (singular value decomposition) method was applied to estimate ground surface vertical deformation from single pair SAR (synthetic aperture radar) data in a mining region. During the study, LOS (line of sight) and azimuth displacement was obtained using two pass D-InSAR (differential interferometry synthetic aperture radar) and MAI (multi-aperture radar interferometry) technology, respectively. Two adjustment equations were composed using the imaging geometry of D-InSAR and MAI. The singular value decomposition theorem was used to acquire M-P (Moore-Penrose) generalized inverse of the rank deficiency coefficient matrix. From this, the optimal approximation solution of unknown parameters was calculated using weighted least squares. A working panel in the Datong mining area, Shanxi province, China, was selected to verify the SVD approach using the two ascending Sentinel-1A data. The accuracy of vertical deformation estimated by SVD approach is reliable. The RMSE (root mean square error) of vertical deformation is 2.64 mm (along upright profile) and 4.95 mm (along horizontal profile). These results suggest that the SVD approach will complement widely used vertical ground surface deformation calculations. Further study is needed to validate the method from other deformation scenarios from landslides, groundwater loss, earthquakes, underground mining, and glacier movement.  相似文献   

19.
采用欧空局ERS—1卫星雷达数据获取了1993年Mw 6.2级西藏拉孜地震同震形变场,并采用弹性位错模型反演了该地震的断层参数。结果显示该地震产生的最大地表位移约为12 cm,断层倾角为42°,不支持该断层为低角度正断层的论断。  相似文献   

20.
基于PALSAR数据的青藏高原冻土形变检测方法研究   总被引:1,自引:0,他引:1  
季节性冻胀和融沉导致的地面形变是青藏高原冻土区建设施工与维护的主要问题。对冻融造成的形变进行有效监测是青藏铁 路建设与维护的前提。差分干涉测量技术是地表形变监测的重要手段之一,PALSAR(L波段的合成孔径雷达)数据在非城市区域具 有较高的相关性,适合青藏高原冻土区的地表形变监测。本文选用4景覆盖研究区域的PALSAR数据,研究利用该数据进行冻土形变 检测的方法,并对其检测结果进行了分析。结果表明,该方法与水准测量方法有较好的一致性。  相似文献   

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