首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 206 毫秒
1.
利用陕西及邻区测震台网和中国地震科学台阵探测项目共257个宽频带台站记录的连续波形与远震数据,采用基于射线追踪的面波频散直接反演方法获得了渭河盆地及邻区地壳上地幔顶部S波速度结构,成像结果显示:1)渭河盆地顶部形成于新生代的沉积层造成其浅部显著的低速异常,盆地中、上地壳为低速结构,低速带延深至约25km深处,莫霍面相对两侧突变上隆,上地幔高速体侵入下地壳,可能与中—新生代上地幔基性-超基性铁镁质物质底侵有关。2)南鄂尔多斯块体地壳浅层东薄西厚的低速结构可能与块体遭受的整体掀斜、差异性抬升和强烈而不均匀的剥蚀有关。壳内不存在明显的低速异常,说明壳内低速体并没有贯穿整个鄂尔多斯地块,鄂尔多斯南段仍保留着稳定克拉通属性,至今还未遭受明显改造。3)秦岭造山带东、西深部结构存在差异,具有分段特征。造山带下地壳底部的低速异常,可能与造山带受青藏高原东北缘隆升和向外扩展等构造活动的影响有关,分析认为秦岭造山带存在青藏高原物质E流的下地壳流通道的可能性不大。  相似文献   

2.
根据东秦岭商丹构造带两侧晚古生代~早中古生代碰撞型花岗岩类Pb,Nd和Sr同位素地球化学特征,对岩浆源区进行了分析,论证了北秦岭碰撞型花岗岩类的岩浆源区并不主要来自于原北秦岭的基底岩层,而其源区物质主要来自于商丹构造带南侧的南秦岭中、下地壳,这为东秦岭造山带在陆-陆相互作用阶段.南秦岭地壳滑脱俯冲于北秦岭陆块之下提供了直接的证据.  相似文献   

3.
岩石圈流变结构是控制大陆碰撞造山的重要因素.哈山冲断带的构造变形、地表地形与青藏高原周缘冲断带差异较大,指示需要开展地壳流变学研究.本研究采用二维数值模拟,设计了盆山上地壳强度横向差异的单因素实验,模拟结果分析表明:若上地壳强度“山弱盆强”,构造变形集中于造山带,断块垂向叠置造成造山带隆升,使地表地形的构造高点位于造山带;若上地壳强度“山强盆弱”,构造变形集中于冲断带和盆地,盆山相互作用造成地表地形的构造高点位于冲断带,而非后陆.本文基于此单因素实验,模拟了哈山冲断带构造演化,发现哈山冲断带晚二叠世发育推覆构造后,构造变形逐渐减弱,扩展方式由前展式变为后展式,基底倾向由向后陆变为向前陆.结合哈山及龙门山的多学科观测资料,本文认为哈山和龙门山冲断带的构造变形、地表地形分别符合地壳强度“山强盆弱”模式和“山弱盆强”模式.研究成果可以为中西部冲断带的地球动力学模型和实验模型的搭建提供一定启示,同时对研究区内构造控藏分析和油气勘探具有指导意义.  相似文献   

4.
应用不可压缩非牛顿粘性流体的本构关系,对造山带同挤压期下地壳流变及其与上地壳构造伸展的动力学关系进行了二维有限元数值模拟. 结果表明,在板块侧向挤压下,当造山带山根下陷和地表隆起达一定程度后,地壳不同层圈岩石将发生复杂的粘性流变. 流变的运动学方式和分布范围不仅与时间有关、同时还受地壳厚度转变带形态的制约. 在构造挤压和山体荷载达到弹性平衡状态后,地壳流变首先发生在造山带下地壳山根,但经一定的Maxwell时间后,流变将不断局限于造山带前缘的厚度转变带. 这一流变方式的变化是导致造山带浅部地壳动力学转变的主要原因. 它造成造山带内上地壳最小主应力从近水平挤压不断转化为近水平拉张,由此使造山带前陆发生挤压冲断的同时,山体的核部发生上地壳的拉张伸展. 最后,应用这一结果讨论了青藏高原南缘南北向地壳伸展的动力学性质.  相似文献   

5.
秦岭─大别造山带及其南北缘地震层析成像   总被引:27,自引:8,他引:27       下载免费PDF全文
利用秦岭─大别造山带及其毗邻地区310个地震台站记录到的区域地震23600条P波到时数据,重建了该区地壳和上地幔三维速度图像。结果表明:1.秦岭─大别造山带及其毗邻地区地壳和上地幔存在显著的横向不均匀性,直至110km深度处依然明显。2.地壳上部的速度图像与地表地质构造密切相关:造山带隆起区显著高速;盆地及坳陷区明显低速。由速度鲜明对比勾勒出的秦岭─大别造山带南界基本上位于扬子北缘主边断裂带上。3.中地壳的速度图像表明,造山带内部的一些低速区对应于一些大型推覆构造。4.40+0km深度处的速度图像反映了该区莫霍界面深度的起伏。大致以107°E为界,以东地区地壳厚度小于40km,以西地区大于40km,且呈现出往西地壳逐渐加厚的趋势。5.位于滦川、商县、丹凤的北秦岭构造带,上地幔顶部出现低速异常,异常速度值约为7.39-7.55km/s。结合地球物理测深的结果,可能是由下地壳、上地幔顶部的热过程所致。  相似文献   

6.
秦岭─大别造山带及其南北缘地震层析成像   总被引:4,自引:1,他引:4       下载免费PDF全文
利用秦岭─大别造山带及其毗邻地区310个地震台站记录到的区域地震23600条P波到时数据,重建了该区地壳和上地幔三维速度图像。结果表明:1.秦岭─大别造山带及其毗邻地区地壳和上地幔存在显著的横向不均匀性,直至110km深度处依然明显。2.地壳上部的速度图像与地表地质构造密切相关:造山带隆起区显著高速;盆地及坳陷区明显低速。由速度鲜明对比勾勒出的秦岭─大别造山带南界基本上位于扬子北缘主边断裂带上。3.中地壳的速度图像表明,造山带内部的一些低速区对应于一些大型推覆构造。4.40+0km深度处的速度图像反映了该区莫霍界面深度的起伏。大致以107°E为界,以东地区地壳厚度小于40km,以西地区大于40km,且呈现出往西地壳逐渐加厚的趋势。5.位于滦川、商县、丹凤的北秦岭构造带,上地幔顶部出现低速异常,异常速度值约为7.39—7.55km/s。结合地球物理测深的结果,可能是由下地壳、上地幔顶部的热过程所致。  相似文献   

7.
秦岭造山带上地幔各向异性及相关的壳幔耦合型式   总被引:1,自引:0,他引:1  
秦岭是具有复杂地壳结构、经历长期构造演化的复合型大陆造山带.本文通过地震资料精细反演上地幔各向异性,探索秦岭造山带构造演化及成因动力.采用最小切向能量法、最小特征值法和“叠加”分析法求得覆盖秦岭造山带及周边地区41个地震台站的SKS横波分裂结果:快波偏振方向(φ)和快、慢波的时间延迟(δt),据此绘制了秦岭造山带上地幔各向异性图.将已发表的地表GPS观测结果与上地幔各向异性相结合作上地幔变形因素分析,发现秦岭造山带自西向东的上地幔变形因素不是单一垂直连贯变形或地幔流动,而是共存的.同时,其上地幔变形的主控因素有区域性变化.研究表明秦岭造山带西、中部上地幔变形以壳幔垂直连贯变形为主,属壳幔强耦合,东部壳、幔耦合变弱,上地幔变形以简单地幔流动为主控因素.同时,SKS快波偏振方向(φ)于秦岭造山带显示出南缘略向北凸、北缘略向南凸的弧形展布,反映了造山带两侧刚性较强的扬子地块与鄂尔多斯地块旋转与秦岭造山带南北缘弧形流动有关.  相似文献   

8.
论秦岭造山带及其立交桥式构造的流变学与动力学   总被引:4,自引:0,他引:4       下载免费PDF全文
当前受国内外地学界广泛关注的秦岭印支造山带,其前身是地球自转速度缓慢变化过程中派生的纬向剪切力和重力共同作用下,于惯性力最大的上地壳所产生的受东西向走滑正断层控制的盆\|山系,而不是洋壳俯冲形成的沟\|弧\|盆系;其造山机制是南秦岭断陷盆地上地壳底部刚硬的结晶基底,对北秦岭断隆山软弱的中地壳塑性层俯冲所造成的壳内冲叠造山带,而不是整个岩石圈对软流层俯冲导生的板块碰撞造山带;其动力是212 Ma前发生于加拿大安大略省直径100 km撞击坑的陨击事件,促使地球自转速度急剧变慢所派生的由南向北的强烈挤压作用,而不是地幔对流带动板块漂移碰撞;其超高压变质带是壳内俯冲动力作用所致,而不是陆壳俯冲到100 km以深温压环境的产物;其立交桥式构造,是异常地幔响应了地壳上部新产生的不同方向的中\|新生代断陷盆地引起的重力失衡作用的结果,而不是地幔柱主动隆升造成与原来东西向造山带的非耦合关系.  相似文献   

9.
综合滇川西部特提斯带现今地表构造格局、地壳和上地幔三维速度图像再解释,提出造山带各圈层间,上地壳、中下地壳、岩石层地幔、软流层地幔的构造是一种多向层架构造,上地壳与中下地壳间是一个区域性构造滑脱面.岩石层地幔是一个不易变形的刚性体,常保留老的构造框架.软流层表现为易变层,是变形启动区,反映 “新”构造.研究区陆内新生代岩浆活动的空间分布,主要受扬子地块西缘存在的近南北向-北北东向软流层上涌体及其热熔体上侵地壳底部所形成的壳幔混合层和区域性构造(包括断裂)交叉转折(转换)部位的制约.  相似文献   

10.
东秦岭陆壳反射地震剖面   总被引:52,自引:8,他引:52       下载免费PDF全文
河南省叶县一邓州的反射地震剖面给出了秦岭地壳构造模型.东秦岭深部构造可分为3个区域:华北克拉通、扬子克拉通和秦岭碰撞缝合带.华北克拉通是稳定的地壳;扬子地壳要比稳定的华北地壳更具流变性质,有多层滑脱,至少可分辨出4个滑脱面:陡岭滑脱面、武当滑脱面、扬子滑脱面和地壳底部滑脱面;秦岭碰撞缝合带宽约100km,向南倾,倾角约15°,地壳结构呈菱形块体样式.秦岭地区的上部地壳为巨型推覆构造,可分为北秦岭和南秦岭两个推覆体,各由主推覆体和前缘叠瓦扇组成.前印支期,秦岭地壳向南俯冲,秦岭古生代海盆闭合.在碰撞的后期,秦岭下部地壳向扬子作A型俯冲,而上部地壳则发生大规模由北向南的推覆。  相似文献   

11.
从2013年3月至2014年11月,我们布设了一条延川—涪陵的流动宽频带地震台阵,剖面由70个流动台站组成,全长约900km,穿越华北克拉通、秦岭—大巴造山带和扬子克拉通东北缘陆内三大构造单元.利用记录到的远震波形资料,提取得到5638个远震P波接收函数,使用H-κ叠加扫描和CCP偏移叠加方法刻划了秦岭造山带与南北相邻地带的地壳厚度、泊松比以及构造界带.研究结果显示,(1)关于地壳厚度:地壳最厚的区域出现在大巴山,地壳厚度集中在47~51km之间,秦岭的地壳厚度相对大巴山较薄,且呈向北减薄趋势,集中在37~46km之间,渭河盆地地壳厚度为本区域最薄地带,在34°N左右处达到最薄为35km,剖面北侧的南鄂尔多斯盆地的地壳厚度变化缓慢,多为44km左右,南侧的四川盆地东北缘的地壳厚度向南缓慢减薄,集中在42~48km之间;(2)关于泊松比:使用接收函数H-κ叠加扫描法得到了沿剖面各台站下方地壳的平均纵、横波速度比VP/VS(κ),进一步计算得到泊松比σ,泊松比具有明显的横向分块特征,秦岭造山带的泊松比明显低于南北两侧区域,其小于0.26的泊松比表征着该区域地壳物质组分主要为酸性岩石,亦即其酸性长英质组分上地壳相对于基性铁镁质组分下地壳较厚,该区域没有高泊松比分布则表明不存在广泛的部分熔融.(3)关于构造界带:秦岭—大巴造山带与扬子克拉通的边界并非在勉略构造带,应向南移至四川盆地的东北缘,华北克拉通和扬子克拉通分踞秦岭—大巴造山带南、北两侧,且分别以较陡倾角向南和相对较缓的倾角向北俯冲于秦岭—大巴造山带之下,使得秦岭—大巴造山带呈不对称状扇形向外扩展与向上抬升的空间几何模型.秦岭和大巴山之间33°N附近存在分界面,两区域地壳厚度与泊松比特征各异.  相似文献   

12.
本文利用中国地震科学探测台阵2013-2015年在南北地震带北段及其周缘架设的673个台站所记录到的远震波形所提取到的接收函数并应用H-κ扫描方法获取了南北地震带北段及其周缘的地壳厚度和泊松比,结果显示研究区地壳厚度从青藏高原东北缘向鄂尔多斯块体逐渐减小,从65 km逐渐减薄至40 km,不同块体之间地壳厚度存在明显差异.祁连造山带西部地壳厚度超过60 km,而东部地壳厚度仅为约50 km左右,表明祁连造山带东、西部地壳增厚变形存在着明显差异.西秦岭造山带地壳厚度从60 km减薄到40 km,其东部具有较薄的地壳厚度可能经历了拆沉.阿拉善块体作为华北克拉通西部块体的一部分,西部地壳厚度约50 km,而东部约45 km,表明阿拉善块体西部由于印度一欧亚板块碰撞也受到了活化改造,其克拉通性质只在其中东部残留.研究区泊松比变化范围为0.20~0.31,平均泊松比约0.25,表明地壳主要由长英质矿物组成,较高的泊松比主要分布在六盘山断裂带和银川一河套地堑.研究结果显示地壳厚度与高程之间具有较好的相关性,表明地壳整体上处于相对均衡的状态,而西秦岭造山带和祁连造山带东部的部分区域地壳可能处于不均衡状态.  相似文献   

13.
西秦岭造山带(中段)及其两侧地块深部电性结构特征   总被引:15,自引:5,他引:10       下载免费PDF全文
本文对跨过西秦岭造山带(中段)的阿坝—若尔盖—临潭—兰州大地电磁剖面(WQL-L1)所采集到的数据进行了精细化处理分析和二维反演研究,结合跨过2013年岷县漳县地震区的WQL-L6剖面大地电磁探测结果和以往的地质与地球物理资料,对西秦岭造山带(中段)的深部电性结构、主要断裂带延伸状况以及与南北两侧地块的接触关系等进行了分析研究,结果表明:东昆仑断裂带塔藏段、迭部—白龙江断裂和光盖山—迭山断裂带共同组成了东昆仑断裂系统,分隔了松潘—甘孜地块和西秦岭造山带(中段);西秦岭北缘断裂带为主要的高角度南倾大型电性边界带,延伸深度穿过莫霍面;临潭—宕昌断裂带具有电性边界带特征,其延伸情况具有东、西差异.西秦岭造山带(中段)自地表到深度约20km范围表现为东北和西南浅、中部深的倒"梯形"高阻层,在高阻层之下广泛发育低阻层,低阻层与高阻层相互契合,呈现相互挤压堆积的式样,其西南侧的松潘—甘孜地块中下地壳存在西南深、东北浅低阻层,其东北侧的陇西盆地具有稳定的成层性结构,显示出西秦岭造山带(中段)正处于松潘—甘孜地块向北挤压和陇西盆地向南的阻挡挤压作用中.松潘—甘孜地块从西南向东北推挤、东北侧陇西盆地相对阻挡的相互作用是2013年岷县漳县6.6级地震发生的外部动力学机制,同时地震震源区特殊介质属性是该次地震发生的内部因素.西秦岭造山带(中段)中上地壳倒"梯形"高阻体埋深西薄、东厚的分段差异与该段内部中强地震分布差异有关.东昆仑断裂玛沁段和塔藏段内部的深部电性结构差异和延伸状况与东昆仑断裂自西向东走滑速率减小有内在联系.  相似文献   

14.
The Weihe Basin is the main component of the extrusion and escape shear zone between the ancient North China craton block in Ordos and the ancient Yangtze platform in Sichuan Basin, and carries the dynamic transmission from the main power source of the Qinghai-Tibet Block in the west to the North China and South China regions in the east. The basin itself plays multi roles in the east-west and north-south tectonic movement, and is an excellent site for studying the structural interlacing, dynamic transformation and transmission. At the same time, Weihe Basin is also a famous strong earthquake zone in China. Historically, there was a strong earthquake of magnitude 8 1/4 occurring in Huaxian County in 1556, causing huge casualties and property losses. In view of the special geological structures and the characteristics of modern seismicity activities in the Weihe fault-depression zone, it is necessary to carry out fine three-dimensional velocity structure detection in the deep part of Weihe Basin and its adjacent areas, so as to study the relationship between velocity structure and geological structural units and their evolution process, as well as the deep medium environment where earth ̄quakes develop and occur. We investigate the S-wave velocity structure beneath Weihe Basin and its adjacent regions based on continuous background noise data and teleseismic data recorded by 257 broadband stations in Shaanxi Province and its adjacent regions and China Seismological Science Array Exploration Project, and by adopting seismic surface wave inter-station method and background noise cross-correlation method, a total of 10 049 fundamental-mode Rayleigh surface wave phase velocity dispersion curves in the periods of 5~70s are obtained. Firstly, using the average dispersion curve in this study area, we obtain the one-dimensional average S-wave velocity structure model of the study area, and then we apply the ray-tracing surface-wave-dispersion direct inversion method to obtain the S-wave velocity structure of the crust and uppermost mantle (3~80km) beneath Weihe Basin and its adjacent regions. The test results of a 1°×1° grid checker board show that the recovery is good, except for the areas east of 111° and south of 32° of the study area, where there is almost no resolution. The imaging results show that the velocity structure beneath each tectonic unit in the study area has a certain distribution rule, and there is a good correlation between surface geological structure and deep velocity structure. Based on the analysis of velocity slices at different depths and S-wave velocity structures of three profiles, and combined with existing geological structures, geophysics and other deep exploration research results, we obtain the following knowledge and conclusions:1)The thick sedimentary layer covering the top of Weihe Basin is the cause of low velocity anomaly in its shallow crust, the middle and upper crust of the basin are of low velocity structure, and the low-velocity zone extends about 25km, the Moho interface uplifts abruptly relative to both the Ordos Block and the Qinling orogenic belt on opposite sides, and high-speed materials from the upper mantle intrude into the lower crust, which may be related to the underplating of mafic-ultramafic materials from the upper mantle in Mesozoic-Cenozoic period; 2)The south Ordos Block is not a homogeneous whole, the low-velocity structure of the shallow crust in southern Ordos Block is thin in east and thick in west, which may be related to the overall tilting of the Ordos Basin since the Phanerozoic, as well as the differential uplift and strong and uneven denudation of the Ordos Block since the Late Cretaceous. The crustal structure of the south Ordos Block is relatively simple and homogeneous. There is no significant low-velocity structure in the curst of the block, which shows that the low-velocity structure in the crust does not penetrate the whole Ordos block. We speculate that the southern Ordos Block still maintains the stable craton property, and has not been reformed significantly so far; 3)The variation characteristics of deep structure of the Qinling orogenic belt reflect the deep crustal structure and tectonic deformation characteristics of the orogenic belt which are strongly reformed by land-land collision and suture between North China plate and Yangtze plate, intracontinental orogeny, uplift of Qinghai-Tibet Plateau and its northeastern expansion since the Late Hercynian-Indosinian period. The deep structure beneath the eastern and western Qinling orogenic belt is different and has the characteristics of segmentation. The low-velocity anomaly at the bottom of the lower crust of the orogenic belt may be affected by tectonic activities such as uplift and outward extension of the NE Tibetan plateau, and the analysis considers that there is little possibility of the existence of lower crustal circulation channel for the eastward flowing of Tibetan plateau materials in the Qinling orogenic belt. However, since the maximum depth from the inversion of this paper is 80km, which is located at the top of the upper mantle, our results cannot prove that there exists a mantle flow channel for the eastward flow of Tibetan plateau material beneath the Qinling orogenic belt.  相似文献   

15.
The Qinling–Dabie–Sulu orogenic belt in east-central China is the largest high and ultrahigh pressure (HP and UHP) metamorphic zone in the world. The Dabie Mountains are the central segment of this orogenic belt between the North China and Yangtze cratons. This work studies the nature of the crustal structure beneath the Dabie orogenic belt to better understand the orogeny. To do that, we apply ambient noise tomography to the Dabie orogenic belt using ambient noise data from 40 stations of the China National Seismic Network (CNSN) between January 2008 and December 2009. We retrieve high signal noise ratio (SNR) Rayleigh waves by cross-correlating ambient noise data between most of the station pairs and then extract phase velocity dispersion measurements from those cross-correlations using a spectral method. Taking those dispersion measurements, we obtain high-resolution phase velocity maps at 8–35 second periods. By inverting Rayleigh wave phase velocity maps, we construct a high-resolution 3D shear velocity model of the crust in the Dabie orogenic belt.The resulting 3D model reveals interesting crustal features related to the orogeny. High shear wave velocities are imaged beneath the HP/UHP metaphoric zones at depths shallower than 9 km, suggesting that HP/UHP metaphoric rocks are primarily concentrated in the upper crust. Underlying the high velocity HP/UHP metamorphic zones, low shear velocities are observed in the middle crust, probably representing ductile shear zones and/or brittle fracture zones developed during the exhumation of the HP/UHP metamorphic rocks. Strong high velocities are present beneath the Northern Dabie complex unit in the middle crust, possibly related to cooling and crystallization of intrusive igneous rocks in the middle crust resulting from the post-collisional lithosphere delamination and subsequent magmatism. A north-dipping Moho is revealed in the eastern Dabie with the deepest Moho appearing beneath the Northern Dabie complex unit, consistent with the model of Triassic northward subduction of the Yangtze Craton beneath the North China Craton.  相似文献   

16.
郭慧丽  丁志峰 《地震学报》2018,40(5):547-562
收集和拾取了“中国地震科学台阵”探测项目在南北地震带北段布设的680个流动地震台站和中国地震台网217个固定台站所记录的地震事件的P波和S波初至到时,通过层析成像研究获得了南北地震带北段水平网格间距为0.33°×0.33°的地壳P波和S波速度分布。结果显示:在30 km深度上青藏高原东北部表现为显著的整体性低速异常,低速异常区向南延伸至龙门山断裂,以106°E为界线将秦岭造山带分为西侧的低速异常和东侧的高速异常,并沿银川—河套地堑向东北展布,向北穿过河西走廊,在阿拉善地块表现为低速异常,这可能暗示了青藏高原向东的扩展被较为坚固的四川盆地和秦岭造山带阻挡,而向北的扩展可能影响到了河西走廊至阿拉善地块,并沿银川—河套地堑影响到鄂尔多斯西北缘;在50 km深度上,阿拉善地块、祁连造山带东段显示高速异常,有可能是阿拉善地块向祁连东段下方俯冲所致。研究区内大部分地震分布在P波和S波高低速异常相间及速度剧烈变化的地区,M≥6.0强震几乎全部投影在30 km深度的低速异常区域内,说明强震发生的背景可能与地震源区下方的低速区有关。   相似文献   

17.
秦岭造山带与其南北两侧华北克拉通和扬子克拉通属三大构造单元,不论其各构造单元体还是其界带构造均甚为复杂,并受到多期次构造运动的制约,形成了大陆内部特异的造山过程.尽管在这一地域曾做过大量的地表地质工作和一些相关的地球物理工作,但对其壳、幔精细结构、深层动力过程,特别是同步穿越华北克拉通、秦岭-大巴造山带和扬子克拉通系统的耦合研究甚少.为了研究和探索该地域的壳、幔精细速度结构和其形成的深层过程,专门布置了一条北起榆林,向南经咸阳、宁陕直抵涪陵长达1000 km的高精度地震宽角反射、折射波场探测剖面.通过剖面辖区高分辨率的数据采集,数据处理、反演和壳、幔层、块精细速度结构,发现剖面辖区深部壳、幔结构存在特异的速度和结构变化,并厘定了一系列的新认识.研究结果表明:(1)秦岭—大巴造山带具有同一基底,其形成乃为结晶基底隆升所致,即它的形成仅涉及到上地壳的受力变形和空间状态.造山带与其南、北两侧的前陆盆地为陆内造山过程中同一深层过程的产物,但其沉积速率和形态却不相同.华北克拉通与秦岭造山带之间前陆盆地Bfc拉张为该区Moho界面的局部隆升所致.(2)首次提出了沿1000 km长剖面连续的沉积建造、结晶基底、上地壳、下地壳和上地幔顶部的层、块速度结构和各界面的起伏变化与空间状态.基于地震波边界场响应厘定了华北克拉通、秦岭—大巴造山带和扬子克拉通的分区界带.论述了三大构造单元各自的内部结构和其相邻界域的速度变化特征.(3)该区大陆内部速度结构和不同类型断裂分布及层序在华北克拉通、秦岭—大巴造山带、扬子克拉通三大块体地域存在显著差异.不同规模、层次与产状的断裂分布反映出它们在变形行为和机制上及所受构造运动的制约上均存在明显的差异.  相似文献   

18.
Swarms of mafic-intermediate volcaniclastic bodies occur in the Minggang region of Henan Province, a tectonic boundary between the North Qinling and the North China Block, and emplaced at (178.31±3.77) Ma. These volcanic rocks are subalkaline basaltic andesites and contain abundance of lower crust and mantle xenoliths. Thus this area is an ideal place to reveal the lithospheric composition and structure beneath the northern margin of the Qinling orogenic belt. Geochemical data indicate that these mafic granulites, eclogites and metagabbros have trace elemental and Pb isotopic characteristics very similar to those rocks from the South Qinling Block, representing the lower part of lower crust of the South Qinling which subducted beneath the North China Block. Talcic peridotites represent the overlying mantle wedge materials of the North China Block, which underwent the metasomatism of the acidic melt/fluid released from the underlying lower crust of the South Qinling Block. Deep tectonic model proposed i  相似文献   

19.
Swarms of mafic-intermediate volcaniclastic bodies occur in the Minggang region of Henan Province, a tectonic boundary between the North Qinling and the North China Block, and emplaced at (178.31±3.77) Ma. These volcanic rocks are subalkaline basaltic andesites and contain abundance of lower crust and mantle xenoliths. Thus this area is an ideal place to reveal the lithospheric composition and structure beneath the northern margin of the Qinling orogenic belt. Geochemical data indicate that these mafic granulites, eclogites and metagabbros have trace elemental and Pb isotopic characteristics very similar to those rocks from the South Qinling Block, representing the lower part of lower crust of the South Qinling which subducted beneath the North China Block. Talcic peridotites represent the overlying mantle wedge materials of the North China Block, which underwent the metasomatism of the acidic melt/fluid released from the underlying lower crust of the South Qinling Block. Deep tectonic model proposed in this paper is that after the Late Paleozoic South Qinling lithosphere subducted northward and decoupled, the upper part of the lithosphere emplaced under the North Qinling and the lower part continuously subducted northward under the North China Block. In Early Mesozoic, the North Qinling Block obducted northward and the North China Block inserted into the Qinling orogenic belt in a crocodile-mouth shape.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号