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1.
南海东北部首次成功实施海陆联合深地震探测,填补了海陆过渡带深地震探测的空白. 利用该次海陆联测地震数据,通过数据处理、震相分析、射线追踪、走时模拟等方法,获得了滨海断裂带附近的纵波地壳速度结构,探明了海陆联测剖面中滨海断裂带可能位置. 地壳速度结构为陆壳结构,地壳厚度由陆地向海区逐步变薄;在上地壳下部普遍存在一层速度为5.5~5.9km·s-1、厚度为2.5~4.0km的低速层,并向海区方向减薄,该区未发现明显的高速层. 滨海断裂带为一纵向低速带,位于南澳台东南35km处,对应于重、磁异常带,断裂带断至莫霍面,是华南陆区正常型陆壳与海区减薄型陆壳的分界地壳断裂.  相似文献   

2.
滨海断裂带为华南亚板块与南海亚板块的分界断裂,是南海北部陆缘的重要控震构造和发震构造。为了探明南海北部海陆过渡带特别是滨海断裂带两侧的深部地壳结构变化特征,在南海北部进行了一系列的海陆地震联测的实验,根据海陆联合深地震探测的结果,南海北部以滨海断裂带为界,断裂带西北部为华南亚板块的典型陆壳,地壳厚30km,上地壳下部存在一层速度为5.5~5.9km.s-1、厚度为3.0~4.0km的低速层,埋深约10~18km;断裂带东南部为南海亚板块减薄型陆壳,厚25~28km,上地壳下部的低速层逐渐减薄并最后尖灭。滨海断裂带为一个上下连续倾向SE的低速破碎带,宽度6~10km。滨海断裂带与上地壳下部的低速层的交接构造部位形成南海北部的重要应力集中带和应变能积聚带,是地震孕育、发生的深部动力学条件。滨海断裂带的发震构造属NEE向与NW向相交切的断裂构造型式,以NEE向的滨海断裂带为主,NW向断裂带为辅。  相似文献   

3.
珠江口海域滨海断裂带的地震学特征   总被引:8,自引:4,他引:4       下载免费PDF全文
利用2010年珠江口外海陆地震联测数据,探测到滨海断裂带在担杆岛外12 km处发育,断裂带主体倾向东南、宽约20 km,沉积层在断裂带内迅速增厚引起陆上固定地震台站的Pg震相在对应断裂带位置的走时明显滞后.通过震相分析和走时正演拟合,获得了滨海断裂带两侧由浅至深的纵波速度结构模型,断裂带内部沉积层速度为1.8~3.5 km/s,上地壳速度5.2~6.1 km/s,下地壳速度为6.3~6.6 km/s,莫霍面的埋深由滨海断裂带陆侧的29 km抬升至其海侧的27 km.滨海断裂带两侧的地壳结构特征明显不同,证实了该断裂带是华南陆区正常型陆壳与南海减薄型陆壳分界断裂的性质.在华南沿海和海陆过渡带的下地壳顶部探测到厚约3 km、层速度为5.5~5.9 km/s的低速层,往海域逐渐减薄尖灭.壳内低速层是地壳中的力学软弱带,与近似正交的NEE向滨海断裂带和NW向断裂带共同组构成了该区地震活动的孕震构造.  相似文献   

4.
基于2012年实施的漳浦—下洋—武平人工地震爆破探测数据以及2015年实施的陆海联测HX07的数据,用射线追踪和正演走时拟合方法,获得了福建南部—台湾海峡的初步二维纵波速度模型。剖面显示:滨海断裂带表现为宽约20km的切穿地壳的破碎低速带,与其两侧的地壳结构存在较大的横向差异,莫霍面在滨海断裂带处发生较大的突变,其深度由左侧的30km左右抬升至右侧的28.8km左右,上下地壳厚度比亦由靠陆一侧的1:1降至向海一侧的0.5:1;上述特征表明滨海断裂带是华南地块正常型陆壳与海区减薄型陆壳的分界断裂。地壳速度在海陆过渡带偏高,康拉德面和莫霍面在此处也有显著抬升,推测其可能是在地壳的伸展拉张及太平洋板块与菲律宾海板块向欧亚大陆板块的俯冲的共同作用下,深部软流圈物质沿着长乐—诏安深大断裂上侵形成的。  相似文献   

5.
台湾海峡大容量气枪震源海陆联测初探   总被引:2,自引:0,他引:2       下载免费PDF全文
本文利用在我国台湾海峡采用大容量气枪震源开展海陆联测获得的广角地震测线HX9, 采用二维射线追踪法反演得到了HX9剖面的地壳二维速度结构和地壳界面形态, 初步探明了福建—台湾海峡海陆过渡带的深部构造. 结果表明: HX9剖面的地壳内存在两个速度间断面, 即C界面和莫霍面, 其中: C界面为上、 下地壳的分界面, 是一个小的速度不连续面, 速度变化值达0.08—0.16 km/s; 而地壳底部的莫霍面则有较大的速度反差, 变化值达1.02—1.29 km/s, 莫霍面上、 下的速度分别为6.75—6.97 km/s和8.00—8.07 km/s. 沿剖面的地壳界面形态总体起伏不大, 陆域上、 下地壳的厚度和界面变化趋势均相似, 从陆域到海域呈微倾斜变化趋势, 表现为减薄陆壳的特征. 莫霍面陆域埋深约为31.6 km, 向福建东南沿海逐渐减薄至27.4 km左右.   相似文献   

6.
香港地区海陆地震联测及深部地壳结构研究   总被引:7,自引:0,他引:7       下载免费PDF全文
为了探明南海北部海陆过渡带的深部地壳结构,我们在香港外海域进行了一次海陆地震联洲的实验,利用固定地震台网远距离接收海上气枪信号,接收距离远达200多km,并利用此次实验的测线1剖面模拟得到了海陆过渡带的深部地壳速度结构.速度结构模型表明:研究区海陆过渡带的地壳结构非均匀性较明显,由陆至海沉积层有一个突然增厚的特点;莫霍面深度约为26~29 km,上地壳P波速度约为5.5~6.4 km/s,下地壳P波速度为6.5~6.9 km/s.在担杆列岛往海方向有一个低速破碎带,其上地壳P波速度为5.2~6.1 km/s,下地壳P波速度为6.2~6.4 km/s,结合野外地质调查的结果,推测它可能为滨海断裂带.在担杆列岛往陆方向香港和深圳之间的研究区域,莫霍面有较大起伏,可能与此处发育的海丰断裂有关.  相似文献   

7.
1999~2000年从青海玛沁到陕西榆林,横跨青藏高原东北缘和鄂尔多斯布设了一条由47台宽频带数字地震仪组成的长约1000km的流动地震台阵观测剖面.利用记录到的远震体波波形资料和接收函数方法获得了剖面下0~100km深度的地壳和上地幔S波速度结构.结果表明,沿观测剖面地壳结构显示了明显的分块特征; 地壳厚度自东向西由40km增加到64km左右;在海原地震带下方和西秦岭断裂以西到日月山断裂之间的区域Moho间断面结构复杂;在1920年海原震区及其西侧,上地壳存在明显的低速层,在该地区的绝大部分地震分布在该低速层东边界偏向高速区一侧;祁连山东缘Moho面有约4km的深度间断,壳内向西逐渐减薄的低速层内有大量微震发生,沿祁连山的逆冲加走滑的构造运动在深度上已经穿透了Moho面;在玛沁断裂和日月山断裂之间,上地壳存在厚度很大的低速层,同时该区域下地壳也明显加厚.研究结果表明,青藏高原东北缘与鄂尔多斯地块之间的过渡带地壳变形强烈,地壳结构较为破碎,这与该地区地震频发相一致.  相似文献   

8.
宁化—大田—惠安地壳构造与速度结构特征   总被引:5,自引:3,他引:2       下载免费PDF全文
福建地处欧亚大陆东南缘,新构造活动强烈,区内北东向断裂带异常发育,是华南震区中、强地震活动的频发区.为深入认识我国东南沿海地壳上地幔速度结构特征及其深部构造背景,福建省地震局联合中国地震局地球物理勘探中心于2010年至2012年在福建陆域实施由18次人工爆破、四条北西向原生纵测线和四条北东向集成纵测线构成的三维人工地震测深实验.本文对该实验中以北西-南东走向近似垂直穿过政和—海丰断裂的宁化—大田—惠安深地震测深测线数据进行处理解释,采用地震射线走时正演构建了该剖面二维地壳速度模型.结果显示,沿剖面地壳厚度由西向东逐渐减薄,其西北侧地壳厚约31.8km,东南侧地壳厚达28.4km.剖面上地壳P波速度从5.90km·s~(-1)逐渐增加至6.20km·s~(-1),上地壳厚度横向变化不大,厚度在16~17km左右,但是下地壳厚度由西向东减薄较为明显.地壳以政和—海丰断裂为界,东西两段具有明显不同的速度结构,呈西段速度偏低、东段速度较高的特性,且西段在上下地壳分界面下方存在一个低速层.研究表明,剖面不同区段呈现出的速度结构差异与该区大地构造单元的划分基本吻合,剖面解释结果和以往远震接收函数研究结果均印证了作为闽西南坳陷带和闽东火山断陷带分界线的政和—海丰断裂是一条切割至下地壳底部的深大断裂.  相似文献   

9.
西沙地块地壳结构及其构造属性   总被引:4,自引:3,他引:1       下载免费PDF全文
西沙地块作为在南海形成演化过程中形成的微陆块,记录了南海演化历史的重要信息,其地壳结构、物质组成及构造属性是探讨南海形成演化的关键.基于采集到的OBS2013-3测线海底地震仪数据,用射线追踪和正演走时拟合方法,获得了西沙地块的二维纵波速度模型.模型显示沉积层速度为2.2~3.2km·s-1,厚度为0.8~3.0km,局部基底面起伏较大,上地壳顶部速度为5.0~5.5km·s-1,下地壳底部速度为6.9km·s-1,上地幔顶部速度为8.0km·s-1.西沙地块的地壳厚度平均为23km,上地壳厚度约为9km,下地壳厚度约为14km,莫霍面埋深为23~27km.从穿过西沙地块的纵、横两条大剖面推算,块体大小约为9.2×105 km3,与华南陆缘相比,表现为整体减薄的陆壳特征.西沙地块与南沙地块垂直于西南次海盆扩张脊分布,根据二者地壳结构的特征对比,二者互为共轭关系.  相似文献   

10.
基于已有的地壳三维速度结构,结合福建—台湾地区的地貌和构造特征,分析了地壳三维速度结构与该区域构造的关系。结果显示:(1)浅层的速度结构与该区的地貌、地形及地质特征有较好的对应关系,福建主要的地热区漳州盆地和福州盆地都呈现明显的低速异常,尤其是漳州盆地的低速异常一直延伸到较深的深度;(2)福建地区的地壳运动、断裂活动和地震活动存在明显的南北差异,与地壳速度结构分布对应关系较好,南部的中上地壳呈现低速而北部中上地壳呈现高速;(3)在一些大型活动断裂带的两侧存在明显的速度结构差异,如在福建构造活动最为强烈的滨海断裂带两侧在15 km深度的速度结构剖面上显现明显的差异,这也解释了福建地区地震活动的震源深度大多位于15 km之上的现象;(4)台湾地区的大多数强震一般发生在板块碰撞或俯冲的高速带上,并形成明显的贝里奥夫带,台湾地区的强震活动与该地区的复杂的板块结构及其运动密切相关。  相似文献   

11.
中国大陆东南缘地震接收函数与地壳和上地幔结构   总被引:7,自引:4,他引:3       下载免费PDF全文
从2008-2011年,分别在中国大陆东南缘沿海和内陆两条NE向剖面上进行了宽频地震观测,利用记录到的远震波形资料提取得到1446个远震P波接收函数,用H-κ叠加扫描和CCP偏移叠加方法研究了中国大陆东南缘地壳及上地幔过渡带的结构及其变化特征.结合固定台网25个台站的H-κ结果,获得中国大陆东南缘(福建地区)地壳厚度从内陆到沿海逐渐减薄的图像:地壳从闽西北山区的33 km减薄到厦门沿海一带的29 km以下,平均地壳厚度为31.3 km,具有陆地向洋壳过渡的特征;地壳泊松比从内陆到沿海显示出分带特征,闽中西部内陆地区小于0.26,沿海地带高于0.26,且在断裂带的交汇区域表现为相对异常高值.地壳上地幔顶部(0~200 km)的CCP偏移叠加成像结果显示闽江断裂等NW向断裂深切Moho界面,在断裂两侧Moho面急剧抬升或下沉,产状改变,这些特征向内陆地区逐渐变得不明显.闽江等NW向断裂对研究区地壳厚度、地震等有明显控制作用.上地幔尺度(300~700 km)的CCP偏移叠加成像,未见410 km和660 km速度间断面突变和起伏异常,其绝对深度略大于IASP91模型的,上地幔转换带厚度正常(250±5 km),表明中国大陆东南缘上地幔转换带未受欧亚与菲律宾板块碰撞的明显影响,推断中国大陆东南缘及台湾海峡下方不存在俯冲板块,或俯冲前缘未扰动到410 km的深度.  相似文献   

12.
The crust and upper mantle structure beneath southeastern China   总被引:1,自引:0,他引:1  
We analyzed teleseismic waveforms recorded by 44 stations in the Fujian and Taiwan provinces of China and obtained 5344 high quality receiver functions. The crustal thickness (H) and average crustal VP/VS ratio (k) beneath every station were estimated using the Hk stacking method. Crustal thicknesses near the Fujian Province range from 28.3 to 32.8 km with an average of 31.1 km, and the corresponding VP/VS ratios vary from 1.70 to 1.84 with a mean of 1.76. From inland to offshore of the Fujian Province, the crustal thicknesses decrease and Poisson's ratios increase. These may indicate decreasing SiO2 and increasing calc-alkaline contents in the crust. The discontinuity structures such as the Moho, subducting slab, the 410- and 660-km discontinuities (hereafter we call them the 410 and the 660) are also studied using common converted point (CCP) stacking of receiver functions. Along two NW–SE lines of central and northern Taiwan, the CCP stacking results show a western dipping structure at depths above 50 km, suggesting that the Philippine Sea plate is probably subducting beneath the Eurasian continent plate near the central and northern Taiwan. The CCP stacking results show sharp and flat 410- and 660-km discontinuities, and the transition zone thickness (TZT) is the same as that of ambient mantle beneath Fujian and Taiwan Strait, but thickens in the east of Taiwan. These results suggest that (1) the subducting Eurasian continent plate is confined to the depths above 410 km beneath Fujian and Taiwan Strait; and (2) the South China Sea slab may reach the transition zone beneath the east of Taiwan.  相似文献   

13.
南海地球物理场特征及基底断裂体系研究   总被引:7,自引:3,他引:7  
南海海域主体可划分为南海北缘、中西沙、南沙南海海盆四块,各块具有明显不同的重磁场特征。反演得到的莫霍面总体趋势由陆向洋抬升,反映陆壳、拉伸陆壳、过渡壳、洋壳的分布。东沙高磁异常含一定的高频成份,与新生代玄武岩及中生代岩浆岩有关,而其低频成份可能反映了发育的下地壳高速层,南海海域断裂极为发育,可分为北东向断裂组、东西向断裂组、北西向断裂组和南北向断裂组,南海北缘、南缘均以北东向张性断裂与北西向张剪性、剪性断裂为主要格架,形成了、南北分带、东西分块”构造格局。  相似文献   

14.
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   

15.
Based on the first arrival P and S data of 4 625 regional earthquakes recorded at 174 stations dispersed in the Yunnan and Sichuan Provinces, the 3-D velocity structure of crust and upper mantle in the region is determined, incorporating with previous deep geophysical data. In the upper crust, a positive anomaly velocity zone exists in the Sichuan basin, whereas a negative anomaly velocity zone exists in the western Sichuan plateau. The boundary between the positive and negative anomaly zones is the Longmenshan fault zone. The images of lower crust and upper mantle in the Longmenshan fault, Xianshuihe fault, Honghe fault and others show the characteristic of tectonic boundary, indicating that the faults likely penetrate the Moho discontinuity. The negative velocity anomalies at the depth of 50 km in the Tengchong volcanic area and the Panxi tectonic zone appear to be associated with the temperature and composition variations in the upper mantle. The overall features of the crustal and the upper mantle structures in the Sichuan-Yunnan region are the lower average velocity in both crust and uppermost mantle, the large crustal thickness variations, and the existence of high conductivity layer in the crust or/and upper mantle, and higher geothermal value. All these features are closely related to the collision between the India and the Asia plates. The crustal velocity in the Sichuan-Yunnan rhombic block generally shows normal value or positive anomaly, while the negative anomaly exists in the area along the large strike-slip faults as the block boundary. It is conducive to the crustal block side-pressing out along the faults. In the major seismic zones, the seismicity is relative to the negative anomaly velocity. Most strong earthquakes occurred in the upper-mid crust with positive anomaly or normal velocity, where the negative anomaly zone generally exists below. Foundation item: National Scientific and Technological Development Program (95-973-02-02), the Climb Program (95-S-05-01) of National Scientific and Technological Ministry of China, and the State Natural Sciences Foundation of China (49874021). Contribution No. 02FE2004, Institute of Geophysics, China Seismological Bureau.  相似文献   

16.
闽粤海外历史地震与台湾海峡现今强震活动图像   总被引:2,自引:1,他引:1  
丁学仁 《中国地震》1998,14(3):51-59
闽粤两省强烈地震多发生在沿海地区,且福建南日岛至广东南澳一线的泉州-汕头地震带地震活动尤为突出。历史上东南沿海地震带曾发生过4次7级以上大地震,而其中3次都发生在泉-汕段海域,继华南地区本世纪著名的1918年广东南澳7.3级地震后,1994年9月16日台湾海峡南部又发生7.3级强震,这在经济发达,人口稠密的闽粤沿海地区引起了极大关注。本文通过历史强震活动资料,分析闽粤沿海与台湾海峡强震在时间进程,  相似文献   

17.
川滇地区地壳上地幔三维速度结构研究   总被引:95,自引:22,他引:95  
根据云南和四川地震台网174个台站记录的4625个区域地震初至P波和S波走时资料,并结合其它深部地球物理资料,确定了川滇地区地壳上地幔三维速度结构.在上地壳速度异常分布中,四川盆地为正异常,川西高原为负异常,龙门山断裂带为正、负异常的边界.龙门山断裂、鲜水河断裂以及红河断裂等,在下地壳和上地幔的速度异常中仍显示出构造分界特征,说明它们可能穿透了莫霍界面.腾冲火山区和攀西构造带在50km深度上呈现负速度异常,与上地幔温度和物质组成的差异相联系.川滇地区地壳结构的总体特征是:地壳和上地幔的低平均速度,地壳厚度变化剧烈,地壳和(或)上地幔存在高导层、高热流值.这些同印度板块与欧亚板块碰撞的构造背景有关.川滇菱形块体在地壳内总体上为正常或正异常速度,而其边界的深大走滑断裂存在负速度异常,它有助于地壳块体沿断裂的侧向挤出.在主要的地震带上,中下地壳的负速度异常与地震活动性相关.多数强烈地震发生在具有正速度异常或正常速度分布的上中地壳深度上,而其下方则通常是负速度异常带.   相似文献   

18.
基于华北地区(37°N—42°N,113.5°E—118.5°E)133个固定地震台站收集到的P波和S波震相数据,利用双差层析成像法反演了该地区地壳三维速度结构并对所用地震进行了重定位。结果显示:地震走时残差均方根的平均值由重定位前的0.265 s下降至0.008 s;重定位后的震源主要分布于6—16 km深度范围内;重定位后的地震在地质构造上主要呈条带状分布于断裂上,在速度结构上主要分布于高低速过渡带上且偏于高速区一侧,其中唐山、邢台震源区中下地壳内低速体的存在可能与深部流体、地幔热物质上涌有关;研究区内上地壳与中下地壳的高、低速分布特征有较大的差异,上地壳的速度主要受大地构造的控制,而中下地壳的速度与壳幔间作用、莫霍面隆升以及软流圈物质上涌等紧密相关。根据华北地区构造格局、演化过程、前人成果以及本文的地壳速度结构模型,本文推测华北克拉通破坏后,岩石圈大幅度减薄,软流圈物质上涌,这使得深部流体和高温岩浆沿着深部断裂和裂隙上涌侵入中下地壳,导致中下地壳发震层的部分熔融与弱化,从而为地震的孕育和发生创造了条件.   相似文献   

19.
Many evidences indicate that the collision of two plates deformed strongly the crust of the SYR, and the deformation has been continued up to the present. In addition, the SYR is in the south segment of the South-North Seismic Zone of China, which is one of the regions in the Chinese mainland, where the seismic activity is very high, and the strong earthquakes frequently occurred. Since the 1970s, a series of large earthquakes with magnitude M>7.0 occurred in SYR, such as the 1970 Tongha…  相似文献   

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