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1.
川西地区壳幔结构与汶川Ms8.0级地震的孕震背景   总被引:2,自引:0,他引:2       下载免费PDF全文
收集了四川数字地震台网记录的57个远震事件,并从宽频带数字化三分量地震记录中计算出了马尔康(MEK)、都江堰(YZP)、中江(JJS)、江油(ZJG)、广元(YTS)、康定(GDS)、汉源(XJP)、雅安(MDS)、峨眉山(EMS)、沐川(WMP)、仁寿(YGD)、荣县(HMS)等12个台站下方的远震P波径向接收甬数.另外,引入地震勘探中的动校正技术,将各台的接收函数校正到67°的参考震中距处,然后对接收函数进行叠加以增强信号,并把叠加接收函数作为台站下方的平均接收函数.最后,利用台站下的平均接收函数反演得到s波速度结构.反演结果表明:以锦屏山-龙门山断裂为界,其西侧地壳厚达70 km,而东侧仅为50 km左右,Moho面在断裂下方形成了一个陡坎;川西地区的地壳速度结构与川中地区差异较大,主要表现在川西地区的中地壳存在厚度为8~22 km的低速层.在都江堰、雅安一带,低速层的厚度最大,其厚度在20~22 km之间,其上地壳为一个坚硬固体,在区域构造应力场作用下,形成了孕育大地震的构造环境.  相似文献   

2.
收集整理2007年以来延边地震台记录的113个远震数字波形资料,采用远震接收函数反演延边地震台下方地壳结构,运用H-Kappa叠加方法,计算得到台站下方地壳厚度和泊松比.采用全球平均地壳模型作为初始模型,反演台站下方0-100 km的S波速结构.反演结果表明,延边地震台下方地壳厚度为30.8 km,波速比为1.84,泊松比较高,为0.29.在台站下方15-20 km及25-30 km处存在低速层.  相似文献   

3.
选取重庆地震台2010年至2012年记录的60个远震宽频带数字地震记录,采用频率域反褶积法获得台站的接收函数,采用H-Kappa叠加方法反演台站下方的地壳厚度和泊松比,作为台站下方波速反演的约束条件,以减少反演的非唯一性.计算结果显示,重庆地震台下方地壳厚度为42 km,与中国大陆中西部地区Moho面深度在38-45 km保持一致.该研究对增强该区的深部地质构造特征、分析孕震机制等具有积极意义.  相似文献   

4.
本文选取黔江地震台2007年至2011年记录到的60个远震宽频带数字地震记录,采用频率域反褶积法获得台站的接收函数,并用H-Kappa叠加法来反演台站下方的地壳厚度和泊松比,最终得到了黔江地震台下方的地壳速度结构。同时,通过H-Kappa法反演得到的台站下方的地壳厚度作为波速反演的约束条件,以减少反演的非唯一性。计算结果显示,黔江地震台下方的地壳厚度为44km,这与广泛认同的中国大陆中西部地区莫霍深度在38—45km基本一致。本文对增强该地区深部地质构造特征研究和孕震机制分析具有积极的意义。  相似文献   

5.
收集福建省“九五”数字地震遥测台网中8个宽频带台站的远震波形资料,应用接收函数的研究方法计算各个台站下方的接收函数。采用非线性的反演方法获得这些台站下方的S波速度结构.确定这些台站下方莫霍界面深度的分布情况。分析得到的反演结果,福建地区莫霍面的起伏不大.平均的地壳厚度约为32km。在0~2km之间均存在一层低速层,这与地表覆盖着一层松散的沉积层是相对应的。内陆地区台站附近莫霍界面深度较沿海地区略高,沿海台站的莫霍界面深度北部略高于南部。  相似文献   

6.
P波接收函数通过分离间断面上产生的P-to-S转换波来测量间断面的深度,由于地壳多次相的干扰,导致这一方法用于测岩石圈—软流圈界面(LAB)受到了很大的限制.不过,S波接收函数可以克服这一问题,因为它分离S-to-P转换相,而这一转换相比入射S波提前到达台站,于是避开了迟到的地壳S波振荡相.然而,由于S波的频率比P波低,这将导致S波接收函数的分辨率较P波接收函数的低.为了作对比分析,本文利用云南地区13个固定台站记录的远震三分量资料,分离出台站下方的P、S波接收函数,而且这些接收函数被校正到67°的参考震中距处,以便进行叠加增强信噪比.最后将时间域的叠加信号转换到深度域,分别获取台站下方的地壳和岩石圈的厚度.结果表明:P波接收函数得到的地壳厚度在32~56 km之间,S波接收函数得到的地壳厚度在41~54 km之间,S波接收函数得到地壳厚度系统地偏大8~9 km;P波接收函数得到的LAB深度在65~110 km之间,S波接收函数得到的LAB深度在66~135 km之间,S波接收函数得到的LAB深度偏大15~20 km,最大偏差达到了25 km.  相似文献   

7.
华北克拉通中西部地区地壳厚度与波速比研究   总被引:8,自引:3,他引:5       下载免费PDF全文
本文使用华北科学台阵和中国国家地震台网164个地震台站记录的远震波形资料,用最大反褶积方法提取接收函数,采用接收函数H-k叠加方法得到了各台站下方的地壳厚度和波速比.研究结果表明,华北克拉通中西部地区的地壳厚度由东向西加深,其中东部的华北平原地区地壳厚度介于30~33 km,中部的燕山—太行地区地壳厚度介于33~40 ...  相似文献   

8.
用远震接收函数反演上海及其邻区地壳速度结构   总被引:1,自引:0,他引:1  
通过提取江苏、浙江及上海数字地震台网台站远震记录的接收函数,反演了这些台站下方地壳的S波速度结构,同时计算出了地壳的厚度及泊松比。初步分析发现,该地区莫霍面起伏不大,江苏地区地壳厚度大约是30km,地壳中存在4~5km厚的低速夹层,位于地面以下15~22km之间。浙江地区地壳内部不存在低速区,并且莫霍面深度自北向南逐渐加深。  相似文献   

9.
青藏高原东南缘的龙门山断裂两侧具有陡峭的地形特征,在约50~100 km的水平距离内,地形高程从2000 m增加到4000 m,该区强烈的壳幔变形特征及地球动力学模式一直是研究的热点问题.本文从四川地区49个固定台站记录的远震资料提取了P波接收函数,获得了四川盆地及周边的地壳厚度和泊松比,并以此构建反演的初始模型.在线性反演的基础上,引入了分别拟合低频和高频接收函数的两步反演技术,用以反演台站下方的地壳S波速度结构.数字试验表明,该方法可以有效抑制接收函数反演的不唯一性,为了得到最优解,最后用Bootstrap重采样技术估计解的不确定性.结果表明,四川盆地的地壳厚度在40~46 km,松潘-甘孜块体北部的地壳厚度为46~52 km,而南部增厚到50~60 km.从四川盆地向西跨过龙门山断裂,地壳厚度增加了10~15 km.在四川盆地及周边地区,地壳泊松比在0.26~0.32之间,呈块体分布特征,高泊松比(0.28~0.32)主要沿龙门山断裂以及安宁河-小江断裂分布.地壳S波速度结构表明,来自青藏高原中部的中下地壳低速层可能受到了坚硬的四川盆地阻挡,改变原来的运动方向并沿龙门山断裂展布,由于低速层的囤积导致该区地形陡峭和下地壳增厚.  相似文献   

10.
普洱、西双版纳地区的速度结构研究   总被引:2,自引:0,他引:2  
利用接收函数方法对2008年普洱、西双版纳区域内6个台站接收到的远震数据进行反演,得到该研究区域内台站下方的速度结构.结果表明:景谷、思茅台下方的莫霍面深度在36km左右,区域南部的孟连、澜沧、勐腊台下方的地壳厚度有轻微变薄现象,为32km,景洪台下方地壳厚度最薄,仅为30km.  相似文献   

11.
接收函数方法估计Moho倾斜地区的地壳速度比   总被引:5,自引:3,他引:2       下载免费PDF全文
造山带地区的复合力系作用往往使Moho界面发生变形,局部表现为倾斜状态.为了得到这些区域精确地壳速度比结构,本文基于H-κ方法发展了H-κ-θ方法.该方法不仅考虑了倾斜Moho层的响应,同时利用径向和切向接收函数信息,增加了对扫描的约束.利用该方法对青藏高原东南缘地壳厚度和速度比结构进行研究,结果表明:研究区内地壳明显存在不均匀性,松潘—甘孜地体平均地壳厚度约为60 km,四川盆地西缘约为47 km,扬子地台约为43 km,三江块体和扬子地台东南缘已接近正常地壳厚度;松潘—甘孜地体与扬子地台相邻部位地壳平均地震波速度比(Vp/Vs)普遍偏高,且四川盆地西侧发现一绕盆地边缘的弧形高Vp/Vs异常区(>1.88),我们推测该异常可能由青藏高原向东逃逸的地壳流体受到高强度的四川盆地阻挡,在其西侧堆积所致.  相似文献   

12.
We determined crustal structure along the latitude 30°N through the eastern Tibetan Plateau using a teleseismic receiver function analysis. The data came mostly from seismic stations deployed in eastern Tibet and western Sichuan region from 2004 to 2006. Crustal thickness and Vp/Vs ratio at each station were estimated by the Hk stacking method. On the profile, the mean crustal thickness and Vp/Vs ratio were found to be 62.3 km and 1.74 in the Lhasa block, 71.2 km and 1.79 near the Bangong–Nujiang suture, 66.3 km and 1.80 in the Qiangtang block, 59.8 km and 1.81 in the Songpan–Garze block, and 42.9 km and 1.76 in the Yangtze block, respectively. The estimated crustal thicknesses are consistent with predictions based on the topography and the Airy isostasy, except near the Bangong–Nujiang suture and in the Qiangtang block where the crust is 5–10 km thicker than predicted, indicating that the crust may be denser, possibly due to mafic underplating. We also inverted receiver functions for crustal velocity structure along the profile, which reveals a low S-wave velocity zone in the lower crust beneath the eastern Tibetan Plateau, although the extent of the low-velocity zone varies considerably. The low-velocity zone, together with previous results, suggests limited partial melting and localized crustal flow in the lower crust of the eastern Tibetan Plateau.  相似文献   

13.
2008年5月12日我国四川省汶川地区发生了震惊世界的MS8.0地震.历史上,同类地震在大陆内部极为罕见.该地震深部构造背景的研究对理解其成因极为重要.本文利用中国地震局地质研究所地震动力学国家重点实验室在川西地区布设的大规模密集流动宽频带地震台阵记录的远震P波波形数据和接收函数非线性反演方法,得到了沿北纬31°线的19个台站下方120 km深度范围内的S波速度结构及台站下方地壳的平均泊松比.该观测剖面穿越了主震区,总长度约为420 km. 我们的结果揭示了川滇地块、松潘-甘孜地块和四川盆地三个不同地块构造差异.上述三个地块的地壳结构特征可以概括为:(1)四川盆地前陆壳幔界面向西侧倾斜并有较为明显的横向变形,地壳厚度存在46~52 km的横向变化,中下地壳S波速度存在横向变化,地壳平均泊松比值较高(0.28~0.31),但在龙门山断裂带附近,显示了坚硬地壳的特征,地壳平均泊松比仅为0.2;(2)松潘-甘孜地块地壳厚度由西侧靠近鲜水河断裂的60 km,向东减薄为52 km,在14~50 km深度范围内存在S波速度2.75~3.15 km/s的楔状低速区,其厚度由西侧的~30 km向东逐渐减薄为~15 km,相应区域的地壳平均泊松比高达0.29~0.31; (3)鲜水河断裂西侧,川滇地块地壳结构相对简单,地壳厚度为58 km,并在26 km深度存在约10 km厚度的高速层,地壳内平均泊松比约为0.25;(4)汶川大震区在12~23 km深度上具有近乎4.0 km/s的S波高速结构,而其下方的地壳为低速结构,地壳平均泊松比0.31~0.32,汶川大震的余震序列主要分布在高速介质区域内. 本文的结果表明松潘-甘孜地块的地壳相对软弱;而且并不存在四川盆地向西侧的俯冲.我们认为在青藏高原东向挤压的长期作用下,四川盆地强硬地壳的阻挡作用可导致松潘-甘孜地块内部蓄积很大的应变能量以及上、下地壳在壳内低速层顶部边界的解耦,在龙门山断裂带附近形成上地壳的铲形逆冲推覆.汶川大地震及其邻近区域所具有的坚硬上地壳和四川盆地的阻挡作用为低应变率下的高强度应力积累创造了必要条件,而松潘-甘孜地块长期变形积累的高应变能构成了孕育汶川大地震的动力来源.  相似文献   

14.
The Yellowstone volcano is one of the largest active volcanoes in the world, and its potential hazards demand detailed seismological and geodetic studies. Previous studies with travel time tomography and receiver functions have revealed a low-velocity layer in the crust beneath the Yellowstone volcano, suggesting the presence of a magma chamber at depth. We use ambient seismic noise from regional seismic stations to retrieve short-period surface waves and then study the shallow shear velocity structure of the Yellowstone region by surface wave dispersion analysis. We first obtained a crustal model of the area outside of the Yellowstone volcano and then constructed an absolute shear wave velocity structure in combination with receiver function results for the crust beneath the Yellowstone volcano. The velocity model shows a low-velocity layer with shear velocity at around 1.3 km/s, suggesting that a large-scale magma chamber exists at shallow levels within the crust of the Yellowstone volcanic region.  相似文献   

15.
As part of a joint Sino-U.S. research project to study the deep structure of the Tibetan Plateau, 11 broadband digital seismic recorders were deployed on the Plateau for one year of passive seismic recording. In this report we use teleseimic P waveforms to study the seismic velocity structure of crust and upper mantle under three stations by receiver function inversion. The receiver function is obtained by first rotating two horizontal components of seismic records into radial and tangential components and then deconvolving the vertical component from them. The receiver function depends only on the structure near the station because the source and path effects have been removed by the deconvolution. To suppress noise, receiver functions calculated from events clustered in a small range of back-azimuths and epicentral distances are stacked. Using a matrix formalism describing the propagation of elastic waves in laterally homogeneous stratified medium, a synthetic receiver function and differential receiver functions for the parameters in each layer can be calculated to establish a linearized inversion for one-dimensional velocity structure. Preliminary results of three stations, Wen-quan, Golmud and Xigatze (Coded as WNDO, TUNL and XIGA), located in central, northern and southern Plateau are given in this paper. The receiver functions of all three stations show clear P-S converted phases. The time delays of these converted phases relative to direct P arrivals are: WNDO 7.9s (for NE direction) and 8.3s (for SE direction), TUNL 8.2s, XIGA 9.0s. Such long time delays indicate the great thickness of crust under the Plateau. The differences between receiver function of these three station shows the tectonic difference between southern and north-central Plateau. The waveforms of the receiver functions for WNDO and TUNL are very simple, while the receiver function of XIGA has an additional midcrustal converted phase. The S wave velocity structures at these three stations are estimated from inversions of the receiver function. The crustal shear wave velocities at WNDO and TUNL are vertically homogeneous, with value between 3.5–3.6 km/s down to Moho. This value in the lower crust is lower than the normal value for the lower crust of continents, which is consistent with the observed strong Sn attenuation in this region. The velocity structure at XIGA shows a velocity discontinuity at depth of 20 km and high velocity value of 4.0 km/s in the midcrust between 20–30 km depth. Similar results are obtained from a DSS profile in southern Tibet. The velocity under XIGA decreases below a depth of 30 km, reaching the lowest value of 3.2 km/s between 50–55 km. depth. This may imply that the Indian crust underthrusts the low part of Tibetan crust in the southern Plateau, forming a “double crust”. The crustal thickness at each of these sites is: WNDO, 68 km; TUNL, 70 km; XI-GA, 80 km. The Chinese version of this paper appeared in the Chinese edition ofActa Seismologica Sinica,14, Supp., 581–592, 1992.  相似文献   

16.
2006年底,我们沿“张渤地震带”布设了一条从唐海—北京—商都的宽频带地震台阵剖面.本文利用台阵记录的远震波形资料,通过接收函数和面波联合反演对剖面下方100 km深度范围内地壳上地幔S波速度结构进行了研究.结果表明剖面东段莫霍面深度约30~34 km,西段深度约38~42 km,平原与山区的过渡地带地壳厚度变化较快.地壳内部10~20 km深度范围内存在多个低速体.在唐山7.8级地震震区附近Moho面出现小幅度隆起,中地壳存在明显的S波低速体.张家口以西,剖面下方10~20 km范围内存在两个S波低速体,张北6.2级地震发生在这两个低速体之间狭小的高速区. 在观测剖面附近,历史上发生的4个大震都与壳内低速体的分布有关. 张家口以东,上地幔普遍存在低速层,顶部埋深在60~80 km之间,并表现出明显的东部浅西部深的特点.  相似文献   

17.
Teleseismic P-wave receiver functions at 20 broadband seismic stations in the Longmenshan fault zone (LMFZ) and its vicinity were extracted, and the crustal thickness and the P- and S-wave velocity ratio were calculated by use of the H-k stacking algorithm. With the results as constraints, the S-wave velocity structures beneath each station were determined by the inversion of receiver functions. The crustal structure of the Rear-range zone is similar to that of the Songpan-Garze Block, whereas the velocity structure of the Fore-range zone resembles that of Sichuan Basin, implying that the Central Principal Fault of LMFZ is the boundary between the eastern Tibetan Plateau and the Yangtze Block. Lower velocity zone exists in lower crust of the Songpan-Garze Block and the central-southern segment of the Rear-range zone, which facilitates the detachment of the material in upper and middle crust. Joint analysis of the receiver functions and the Bouguer gravity anomalies supports the thesis on the detachment-thrust mode of the LMFZ. A double-detachment pattern is suggested to the tectonic setting in the Songpan-Garze Block. The upper detachment occurs at the depth of 10-15 km, and represents a high-temperature ductile shear zone. There is a lower detachment at the depth of about 30 km, below which the lower crust flow exists in the eastern Tibetan Plateau. Interpretation of the Bouguer gravity anomalies indicates that the Sichuan Basin is of higher density in upper and middle crust in comparison with that of the Songpan-Garze Block. The LMFZ with higher density is the result from the thrusting of the Songpan-Garze Block over the Sichuan Basin. In the lower crust, higher P velocity and higher density in the Sichuan Basin are related to more rigid material, while lower S velocity and lower density in the Songpan-Garze Block are related to the softened and weakened material. The higher density block beneath the Sichuan Basin obstructs the eastward flow of lower crustal material from the Tibetan Plateau, which is driven by the compression of northward movement of Indian Plate. The eastward movement of upper and middle crustal material is also obstructed by the rigid Yangtze Block, resulting in the stress concentrated and accumulated along the LMFZ. When the stress releases sharply, the Wenchuan M s8.0 earthquake occurs. Supported by the National Natural Science Foundation of China (Grant Nos. 40334041, 40774037) and Joint Foundation of Earthquake Science (Grant No. 1040062)  相似文献   

18.
利用接收函数方法研究四川地区地壳结构   总被引:3,自引:0,他引:3  
范军  朱介寿  江晓涛  吴朋 《地震》2015,35(1):65-76
采用接收函数反演和共转换点(CCP)偏移叠加成像方法, 利用四川数字地震台网宽频带的52个区域固定地震台站和布设的两条52个宽频带流动地震观测台站的远震地震波形数据资料, 对四川地区地壳结构进行研究。 结果表明, 四川地区的Moho面深度在青藏高原和四川盆地差异明显, 在川西高原地区地壳厚度为52~68 km, 在川滇地块地壳厚度为50~60 km, 在中地壳内存在不连续的低速层分布; 而在四川盆地地壳厚度为38~45 km, 地壳内没有低速层存在。 Moho面深度从川西高原的60多公里至四川盆地的约40 km, 在二者的交界处龙门山断裂带下面, 存在厚度约30 km左右宽的下降过渡带, 说明其下的Moho面可能受断层影响, 结构比较复杂; 在高原地区的上地壳界面和下地壳上界面比四川盆地的相应界面深; 高原地区在中地壳的上部有不连续的低速层分布, 在松潘—甘孜地块的上地壳下部存在向南东运动的脆性推覆体, 在羌塘—理塘地块的上地壳下部存在向南东和南运动的脆性物质流动。  相似文献   

19.
基于贝叶斯理论的接收函数与环境噪声联合反演   总被引:11,自引:5,他引:6       下载免费PDF全文
基于Bayes反演理论(Tarantola,1987,2005),在接收函数非线性复谱比反演方法基础上(刘启元等,1996),本文讨论了接收函数与地震环境噪声Rayleigh波相速度频散的联合反演.本文采用修正后的快速广义反射/透射系数方法(Pei et al., 2008,2009) 计算Rayleigh波相速度频散, 并引入地壳泊松比的全局性搜索.数值检验表明:(1)接收函数与环境噪声的联合反演能够有效地解决反演结果对初始模型依赖的问题,即使对地壳速度结构仅有非常粗略的初始估计(例如,垂向均匀模型),本文方法仍能给出模型参数的可靠估计;(2)由于环境噪声与接收函数在频带上的适配性明显优于地震面波,接收函数与环境噪声的非线性联合反演能更好地约束台站下方近地表的速度结构;对于周期范围为2~40s的环境噪声相速度频散,利用本文方法能够可靠推测台站下方0~80 km深度范围的S波速度结构, 其浅表速度结构的分辨率可达到1 km; (3)本文方法能够可靠地估计地壳泊松比,泊松比的全局性搜索有助于合理解释接收函数和环境噪声的面波频散数据.利用本文方法对川西台阵KWC05台站观测的接收函数与环境噪声的联合反演表明,该台站下方地壳厚度为44 km,上地壳具有明显的高速结构,24~42 km范围的中下地壳具有低速结构.该台站下方地壳的平均泊松比为0.262,壳内低速带的泊松比为0.27.  相似文献   

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