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1.
界面和速度的两步反演-唐山震区三维细结构研究a   总被引:6,自引:0,他引:6       下载免费PDF全文
赖晓玲  张先康 《地震学报》1998,20(6):590-597
研究区域界面和速度的两步反演计算方法.三维界面采用分段非完全多项式描述,三维速度的重建采用泛函空间的最小二乘原理.计算采用两步进行:第1步反演三维界面形态;第2步将剩余走时残差按加权分配的方式进行三维速度反演.处理了唐山滦县震区地震测深资料,获得了唐山震区深部三维构造形态及唐山、滦县震区三维地壳速度分布.结果表明:唐山震区深部三维构造总体为北东走向,北东向的丰台——野鸡坨断裂与北东向的唐山断裂所夹的构造为莫霍界面隆起区. 该区中下地壳三维速度结构沿北东向的唐山断裂存在明显低速异常带,其位置与唐山地震活动带的位置相一致.沙河驿附近较大的低速异常块体对应于较密集的地震分布.该区域存在一条北西向的高速异常带,可能是一条隐伏深断裂.唐山7.8级地震震中区下地壳为北东向的低速异常带与北西向的高速异常带相交处.这两组构造对控制唐山7.8级地震的孕育和发生起了重要作用.   相似文献   

2.
Pg回折波的上地壳三维层析成像   总被引:7,自引:1,他引:7  
提出利用人工地震Pg回折波走时重建区域上地壳三维速度分布的方法。正问题利用经典最小二乘迭代求解垂向速度梯度模型的参数值及相应走时残差。反问题采用泛函空间的最小二乘准则来实现。对速度不需要预先进行参数化处理,可以计算反演区内任意点的速度值。  相似文献   

3.
安阳及邻区三维地壳速度结构研究   总被引:2,自引:1,他引:1  
应用区域地震台网1985~2008年的地震到时资料,对安阳及邻区地壳三维速度结构和震源参数进行了联合反演,获得了该区地壳的三维速度结构图像.成像结果表明:研究区浅部地形速度分布特征为:凹陷盆地速度较低,山脉位于速度的过渡区,隆起区多位于高速区,速度横向分布差异较大;上、中地壳速度横向分布存在非均匀性,与区域构造分布特征...  相似文献   

4.
华雨淋  吕彦 《地球物理学报》2019,62(8):2982-2990
利用云南腾冲火山地区15个固定台站记录到的7923次地震的P波到时资料,采用双差层析成像方法,反演得到腾冲火山及周边地区地壳及上地幔顶部三维P波速度结构和地震重定位结果.研究发现,腾冲火山区域地壳内存在明显的地震波低速区,P波速度低于整个区域地壳速度平均值超过15%,上地幔顶部存在规模较大的低速异常区.推测腾冲火山地区存在较大规模的地幔热物质上涌以及向地壳的侵入,热物质在地壳内以岩浆囊形式存储,并且壳内岩浆囊之间可能存在岩浆通道.通过联合反演获得的地震重定位结果显示,丛集地震位置更加集中,其展布特征与断裂构造具有显著的对应关系,表明研究区域断裂构造比较活跃.获得的高分辨率三维P波层析成像结果,为进一步认识火山地区岩浆存储特征以及地震分布与区域构造之间的关系提供了新的地震学依据.  相似文献   

5.
Pg回折波的上地壳三维层析成象   总被引:1,自引:0,他引:1  
提出利用人工地震Pg回折波走时重建区域上地壳三维速度分布的方法。正问题利用经典最小二乘迭代求解垂向速度梯度模型的参数值及相应走时残差。反问题采用泛函空间的最小二乘准则来实现。对速度不需要预先进行参数化处理,可以计算反演区内任意点的速度值。数值计算结果表明了该方法的可靠性。处理了滦县地震区人工地震Pg走时资料,获得了该区上地壳顶部的三维速度分布。  相似文献   

6.
迅速发展并得到广泛应用的空间深地震测深技术通过采用三维数据采集的观测系统,利用三维层析技术,以求获得区域地壳三维分层结构和三维速度分布图像。它与传统的二维宽角反射-折射剖面技术相结合,可以有效地研究区域性地壳结构,特别是壳内深断裂和低速层的空间展布特征。Kanasewich等(1985)给出了利用空间深地震测深资料重建地壳三维界面的方法,我们在其方法的基础之上,进一步提出地壳三维界面和速度分布联合反演的方法。正问题的计算是在Chander(1977)关于三维平界面的快速两点追踪算法上的改进,在获得界面三维反演结果的基础之上,利用剩余走时残差,采用模型不分块反演技术(Tarantola,Nercession 1986)重建地壳三维速度图像。 1998年国家地震局地球物理勘探中心在长白山火山区实施了三维深地震测深观测,目的是研究天池火山的岩浆系统。利用本次实验所获得的780余个PmP波走时数据,采用上述的方法重建了研究区莫霍界面和地壳三维速度分布图像。研究结果表明,本区莫霍界面由北东方向向南逐渐加深,在天池火山口下达最深,并且被一些可能存在的地壳厚度陡变带(或深断裂)所切割。在东西方向莫霍面由西向东缓缓加深,其变化较南北方向缓和。特别值得注意的是,存在着一条近北东方向的莫霍面深度陡变带(或深断裂带)从天池火山口西部穿过,相应位置与马鞍山—三道白河地堑型断裂相一致,该断裂带可能对天山火山喷发时岩浆的运移起到重要作用。深度为15km和25km的P波速度图像表明,在天池火山口下分布着近南北走向明显的低P波速度分布,其南北方向延伸的范围约为80-90公里左右。比较这两个深度上的低P波速度体的分布特点,可以看出这个低P波速度体尺度随深度逐渐变小,但在25km深度处仍清晰可见,这表明该区岩浆自上地幔侵入地壳的“痕迹”,这也意味着,长白山天池火山的岩浆系统极有可能延伸到上地幔或更深一些。  相似文献   

7.
赖晓玲  张先康 《地震学报》1997,19(5):506-516
研究利用反射波的走时反演三维弯曲界面和介质层速度的计算方法.各层界面利用分段非完全三次多项式描述.正问题采用一种快速的三维射线追踪方法.反演过程采用变阻尼最小二乘法.数值模拟结果表明,解很快收敛到真模型.处理了通过唐山震区的实测资料,重建了该震区莫霍界面三维构造形态,并揭示了该区域构造与地震活动的关系.   相似文献   

8.
利用DE算法反演地壳速度模型和地震定位   总被引:8,自引:3,他引:8       下载免费PDF全文
利用差异演化(Differential Evolution)非线性全局优化算法,设计了一种反演地壳速度模型和进行地震定位的方法,并给出了反演结果的具体分析.利用有限差分算法计算速度模型的走时场,可以节省大量的计算量,加快计算过程.反演得到的地壳速度模型和地震的震源参数可以直接用于地震层析成像研究,还可以利用地震层析成像得到的三维速度结构对地震重新定位,从而得到较为精确的震源参数.地壳速度模型的反演方法也可以用于三维速度结构的反演.  相似文献   

9.
利用在青藏高原东部及其邻近地区记录到的1万余条近震到时资料,反演该地区的地壳上地幔三维速度结构。采用网格点模型描述三维速度结构,模型维数为22226,网格点间距水平向为100km,垂直向为20km,网格点之间的速度值通过线性插值给出。采用改进了的快速三维射线追踪方法,确定三维非均匀介质中的地震射线路径和理论走时。反演结果显示,青藏高原南部的上地壳中(30km左右的深度)存在一低速区,这和面波反演的结果一致,羌塘块体下地壳有明显的低速异常带,青藏公路沿线的垂直速度剖面显示出岩石层受挤压增厚的构造特征。  相似文献   

10.
中国北部及其邻区地壳上地幔三维速度结构   总被引:6,自引:4,他引:6       下载免费PDF全文
本文利用中周期和长周期瑞利面波资料分别反演得到中国北部及其邻区的三维S波带度结构。结果表明,地壳中横向非均匀性非常明显,许多地区显示出构造活动的特征;上地幔速度结构的横向变化相对减小。研究区的地壳厚度从东向西逐渐增大,地壳平均速度分布的格局与地壳厚度分布大体一致。地壳厚度与地壳平均速度的空变带处与布格重力异常梯级带基本一致。从数据上看,地壳厚度远比地壳平均速度与布格重力异常的一致性程度高,因此可以  相似文献   

11.
IntroductionTrial-and-error forward modeling of wide-angle seismic reflection/refraction traveltimes for 2-D velocity structure is extremely time-consuming, even for experienced data interpreters. For wide-angle seismic reflection/refraction experiments that consist of numerous shots along a single line, it is quite difficult through repeated trial-and-error forward modeling to construct a 2-D model that fits the data within acceptable limits (Cerveny, et al, 1977; ZHANG, et al, 200 . In ad…  相似文献   

12.
IntroductionGeologistsfirstlyfoundcoesite-bearingecologitesattheendof1980'sandthenthemicrodiamond(Xu,elal,1992)inDabieshanarea.Theultra-highpressure(UHP)metamorphismandthegeodynamicprocessesofDabieorogenhaveattractedmanygeoscientists(Wang,etal,1989,O...  相似文献   

13.
用地震走时反演长白山天池火山地区的二维地壳结构   总被引:7,自引:2,他引:7  
应用一种同时获得地壳上地幔二维速度结构和界面形态的地震走时反演算法,对在长白山天池火山区L1剖面获得的人工地震折射和宽角反射走时数据进行反演,得到了该剖面的地壳上地幔二维速度结构和构造.结果表明:长白山天池火山口下方中下地壳存在一倒三角状的低速体,壳内反射界面和莫霍面一致呈下凹形态,幅度2~6km不等,形成一个地壳根,推测是长白山天池火山系统.最后将所得结果与SEIS83正演试错模拟结果进行了比较.   相似文献   

14.
Introduction3-Dseismictomographyhasbeenappliedtovariousgeophysicalproblems.AkiandLee(1976)andHawleyetal.(1981)inverted3-Dmode...  相似文献   

15.
华北莫霍面构造形态-深地震测深数据的三维反演   总被引:5,自引:0,他引:5       下载免费PDF全文
给出了利用反射波走时重建地壳三维界面的方法 ,并处理了华北地区人工地震测深测线网中的PmP走时资料 ,获得了研究区莫霍界面的三维构造形态 ,确定了壳内深断裂的展布。结果表明 ,研究区莫霍界面埋深整体上由东南向西北加深 ,并在这一背景之上呈现波浪起伏 ,断陷盆地对应上地幔的隆起 ;区内存在数条延伸至莫霍面的地壳深断裂 ,其中大致沿北东走向展布的地壳厚度陡变带和沿北西西向的地壳厚度变异带是区内两条主要的深部构造带。将研究结果与本区中、强地震空间分布特征相结合 ,揭示了地震活动的深部构造背景  相似文献   

16.
青藏高原东北缘地壳三维速度结构   总被引:12,自引:6,他引:12       下载免费PDF全文
本文用1980—2000年M≥1.5的2 032个天然地震事件的38 052个〖AKP-〗、〖AKS-〗、Pm、Sm、Pn和Sn震相到时及人工地震测深给出的Moho面形态资料,利用地震层析技术反演了32°~40°N, 100°~108°E区域内地壳地震波速度结构.从层析成像图象中可以得到,本区的地壳可分成4个层位.第1层(埋深约在0~3 km)为沉积层, 速度梯度约为0.2 s-1;第2层(埋深约在3~17 km)为上地壳, 其顶部速度梯度约为0.1 s-1, 下部速度横向变化较大且存在低速块体;第3层(埋深约在17~36 km)为中地壳, 速度梯度约为0.03 s-1;第4层(埋深约在36 km—Moho)为下地壳, 是一个契形层,总的趋势是西厚东薄,青藏高原较厚逐渐向鄂尔多斯地块和扬子准地台方向变薄,各处的地震波速度梯度不尽相同.  相似文献   

17.
IntroductionBetween January and April of 1997, 7 earthquakes with M(6.0 occurred successively in Jiashi, Xinjiang. The continual occurrence of strong earthquakes within such a small area and in such a short period of time is exceptional for intraplate earthquakes. The Jiashi earthquake swarm took place on the northeast side of the Pamirs, where the Tarim basin, South Tianshan and West Karakoram meet (HU, et al, 1989). This is also a place where a number of active faults develop, so it is…  相似文献   

18.
It is important to detect the fine velocity structures of the crust and uppermost mantle to understand the regional tectonic evolution, earthquake generation processes, and to conduct earthquake risk assessment. The inversion of uppermost mantle velocity and Moho depth are strongly influenced by crustal velocity heterogeneity. In this study, we collected first arrivals of Pg and Pn and secondary arrivals of Pg wave from the seismograms recorded at Fujian provincial seismic network stations. New 3-D P-wave velocities were inverted by multi-phase joint inversion method in Fujian Province. Our results show that the fault zones in Fujian Province have various velocity patterns. The shallow crust is characterized by high velocity that represents mountains, while the mid-lower crust shows low velocities. The anomalous velocities are correlated closely with tectonic faults in Fujian Province. Velocity anomalies mainly show NE-trending distribution, especially in the mid-lower crust and uppermost mantle, which is consistent with the NE-trending of the regional main fault zones. Meanwhile, a part of velocity patterns show NW trending, which is related to the secondary NW-oriented faults. Such velocity distribution also shows a geological structural pattern of "zoning in east-west direction and blocking in north-south direction" in Fujian area. In the crust, a low velocity zone is found along Zhenghe-Dapu fault zone as mentioned by previous study, however our result shows the low velocity exists at depth of 20~30km in mid-lower crust. Compared with previous study, this low velocity zone is larger and deeper both in range and depth. The crustal thickness of 28~35km from our joint inversion is similar to the results from the receiver functions of previous studies. The thinnest crust(28km)is observed at offshore in the north of Quanzhou; while the thickest crust(35km)is located west of Zhangzhou near the Zhenghe-Dapu fault zone. Generally, thinner crustal thickness is found in offshore of Fujian Province, and thicker crustal thickness is in the mainland. However, we also found that crustal thickness becomes thinner along the east side of Yongan-Jinjiang Fault. The values of Pn velocities in the region vary from 7.71 to 8.26km/s. The velocity distribution of the uppermost mantle presents a large inhomogeneity, which is correlated with the distribution of the fault zone. High Pn velocity anomalies are found mainly along the west side of the Zhenghe-Dapu fault zone(F2), and the east side of the Shaowu-Heyuan fault zone(F1), which is strip-shaped throughout the central part of Fujian. Low Pn velocity anomalies are observed along the coast and Taiwan Straits, including the Changle-Zhaoan fault zone, the coastal fault zone, and the Fuzhou Basin. We also found a low Pn velocity anomaly zone, which extends to the coast, in the Shaowu-Heyuan fault zone at the junction of the Fujian, Guangdong and Jiangxi Provinces. In the west of Taiwan Straits, both high and low Pn velocity anomalies are observed. Our results show that the historical strong earthquakes(larger than magnitude 6.0) are mainly distributed between positive and negative anomaly zones at different depth profiles of the crust, and similar anomalies distribution also exists at the uppermost mantle, suggesting that the occurrence of strong earthquakes in the region is not only related to the anomalous crustal velocity structure, but also affected by the velocity anomaly structure from the uppermost mantle.  相似文献   

19.
This paper studies the computation method of two-step inversion of interface and velocity in a region. The 3-D interface is described by a segmented incomplete polynomial; while the reconstruction of 3-D velocity is accomplished by the principle of least squares in functional space. The computation is carried out in two steps. The first step is to inverse the shape of 3-D interface; while the second step is to do 3-D velocity inversion by distributing the remaining residual errors of travel time in accordance with their weights. The data of seismic sounding in the Tangshan-Luanxian seismic region are processed, from which the 3-D structural form in depth of the Tangshan seismic region and the 3-D velocity distribution in the crust below the Tangshan-Luanxian seismic region are obtained. The result shows that the deep 3-D structure in the Tangshan seismic region trends NE on the whole and the structure sandwiched between the NE-trending Fengtai-Yejituo fault and the NE-trending Tangshan fault is an uplifted zone of the Moho. In the 3-D velocity structure of middle-lower crust below that region, there is an obvious belt of low-velocity anomaly to exist along the NE-trending Tangshan fault, the position of which tallies with that of the Tangshan seismicity belt. The larger block of low-velocity anomaly near Shaheyi corresponds to a denser earthquake distribution. In that region, there is an NW-trending belt of high-velocity anomaly, probably a buried fault zone. The lower crust below the epicentral region of the Tangshan M S=7.8 earthquake is a place where the NE-trending belt of low-velocity anomaly meets the NW-trending belt of high-velocity anomaly. The two sets of structures had played an important role in controlling the preparation and occurrence of the M S=7.8 Tangshan earthquake. Contribution RCEG97006, Research Center of Exploration Geophysics, China Seismological Bureau, China. This project is supported by the Chinese Joint Seismological Science Foundation.  相似文献   

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