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1.
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   

2.
环青藏高原盆山体系构造与中国中西部天然气大气区   总被引:1,自引:0,他引:1  
新生代特提斯洋向北消减导致欧亚板块与印度板块碰撞,大陆会聚控制青藏高原下地壳增厚、上地壳逆冲叠置和隆升,形成高原地貌.随着青藏高原隆升和向北、向东推挤,挤压构造变形不断向外扩展,形成现今全球最大弥散型陆内构造变形域和板内变形最为活跃的巨型盆山体系,即环青藏高原盆山体系.由于不均一的小克拉通拼贴,地壳发生分异,造山带回春上升,小克拉通沉降,古板块边缘形成继承性前陆盆地群或前陆冲断带群.由这些复活的古造山带、前陆冲断带和小型克拉通盆地三个构造单元共同构成环青藏高原盆山体系.环青藏高原盆山体系是一个巨型的构造体系和特殊性质的喜马拉雅运动期构造域,是中国中西部喜马拉雅运动的主要特征,也是可以与青藏高原相提并论的巨型大地构造单元.挤压冲断构造变形带沿昆仑山.阿尔金山.祁连山.龙门山呈弧形带向北、向东扩展;随着晚新生代印藏持续碰撞,欧亚大陆强烈变形,构造变形带向外围进一步扩展,传递到阿尔泰山.阴山.吕梁山.华蓥山弧形带.冲断构造不断向环青藏高原外围扩展的同时,在盆山体系内部发生强烈陆内变形,古造山带复活,在造山带与盆地边缘形成了新的前陆盆地,冲断构造变形依次从造山带向克拉通盆地内扩展.在欧亚大陆与印度板块的碰撞及其远程效应的控制下,环青藏高原巨型盆山体系从内向外的构造变形强度、盆山耦合程度依次降低;克拉通边缘的单个盆山组合也具有从山前向克拉通方向构造变形强度依次降低,构造变形样式逐渐变得简单、构造变形时间依次变新的规律.在整个环青藏高原巨型盆山体系中,整体表现为三个构造分段:西段构造变形传播、中段高原增生.推覆、东段走滑一抬升.在环青藏高原盆山体系中,古生界克拉通盆地和中新生界前陆冲断带是具有重要天然气勘探价值的两个基本构造单元,它决定了中国中西部天然气分布主要受古生界克拉通古隆起和中新生界前陆冲断带的控制,具有多期成烃与晚期成藏的特点.  相似文献   

3.
库车-天山盆山系统新近纪变形特征   总被引:5,自引:0,他引:5  
库车-天山盆山系统的新近纪变形表现为盆山边界与盆地内部应力状态的不一致和基底与盖层变形样式的不一致. 对脆性断层产状要素的观测和应力状态恢复表明, 天山南缘带及盆山边界的脆性断层主要反映了NW或NNW向的伸展活动, 而盆地内的脆性断层却记录了NW-SE向的挤压应力状态. 对露头和地震剖面的研究以及理论计算结果表明, 盆山边界的变形以基底块断为特征, 边界正断层和边界上冲断层间的相互运动造成了盆山边界的阶梯式抬升, 并引发了盆地中盖层的重力构造, 先后形成了以三叠系黄山街组页岩和新生界下部膏盐层为滑脱层的断层滑脱褶皱.  相似文献   

4.
为揭示活动陆缘深水褶皱冲断带的特征及成因,本文利用地震和区域地质资料的综合分析,系统阐述了文莱—沙巴盆地深水褶皱冲断带的构造变形特征,并结合盆地演化动力学特点,探讨其构造变形机制及其对深水区油气成藏的影响.研究结果表明,文莱—沙巴盆地深水褶皱冲断带具有"垂向分期、平面分段"的特点,垂向上,以中中新统底界面为界可划分为下部(始新世-早中新世)和上部(中中新世-现今)两套逆冲褶皱冲断体系,其中下部逆冲褶皱冲断带的形成与古南海的俯冲作用密切相关,上部逆冲褶皱冲断带是中中新世以来三角洲前缘重力滑动与苏禄海扩张造成的区域挤压应力远程效应共同作用的结果,且苏禄海扩张造成的远程挤压效应主控平面上南北段褶皱冲断带变形的差异性,导致北段褶皱变形强度大于南段,具有背斜褶皱数量多、褶皱间距离短、逆冲断层倾角陡的特点,南段反之;且晚上新世以来北段深水区地层缩短量大于陆架区伸展量,两者之差为2~6 km,而南段两者相当,仅受三角洲前缘重力滑动影响.整个褶皱冲断带发育断弯、断展、断滑褶皱等3种断层相关褶皱以及叠瓦扇和冲起构造2种逆冲构造组合,是多期NW向挤压应力作用下形成的大型逆冲推覆构造,以前展式向盆地扩展.此外,由于中中新世以来逆冲断层的持续活动,研究区深水褶皱冲断带发育众多构造圈闭,油气成藏条件优越,且南段优于北段,靠近陆坡的近端优于远端,可作为勘探部署重点.  相似文献   

5.
西昆仑东南构造样式及其对增生弧造山作用的意义   总被引:4,自引:0,他引:4       下载免费PDF全文
西昆仑东南甜水海地区表现为由东北往西南以麻扎-康西瓦冲断系、泉水沟冲断系、甜水海冲断系和南南西边缘盲冲断系而限定数个招皱-逆冲构造带或者褶皱构造带的构造格局构造变形样式总体上以向南逆冲的褶席和逆冲叠瓦扇为特征,以由东北往西南构造变形样式依次出现复式背形堆垛和叠瓦扇组合,到侏罗山式语皱构造带的变化其中用皱样式依次出现大型紧闭平卧卜倒转招皱、中尺度尖棱招皱和具圆筒状转折端的开阔格皱,而断层变化则由断层面产状几乎水平的多重复杂冲精席系到缓倾的顶板冲断层-底板冲断层组合样式到叠瓦扇冲断层.大地构造相分析表明研究区构造变形强度自北东向南西呈递减趋势,与库地一麻扎一带的增生楔杂岩可能组成了复杂的增生楔造山作用的增生楔和前陆招皱冲断带的复杂组合因此,研究区的构造格局并非简单的“塔什库尔干一甜水海地体”,而是复杂的增生弧造山带.  相似文献   

6.
基于低温热年代学特征的构造重建(或解译)与浅部地表过程模型在诠释盆-山结构与演化过程中受到越来越广泛的重视与应用.青藏高原东缘米仓山-川北前陆盆山系统楔入冲断构造模型与浅部地貌建造(非)耦合的检验校正为米仓山造山带构造变形及其动力学模型研究提供了契机.基于稳态楔入冲断构造低温热年代学模型研究表明,米仓山-川北前陆盆-山结构带盆山地貌的建造和低温热年代学(磷灰石裂变径迹和(U-Th)/He)特征具有明显的耦合性,二者统一于(盆地向)具~4°古地貌斜坡的楔入冲断构造模型.现今米仓山地区低温热年代学不具有明显的海拔高程和年龄线性关系,但当古地貌具有~4°坡度时低温热年代学与古地貌具有明显的线性相关性,揭示晚白垩世米仓山东西段具有一致(或相似)的稳态抬升剥露特征,东西段剥露速率分别为0.05 mm/a 和0.03 mm/a.古地貌坡度与古地温梯度具有较好的相关性(R2=95%~98%),相关古地温梯度(25~35 ℃/km)符合米仓山稳态剥露地质结构特征.米仓山造山带楔入冲断构造模型的发育可能受控于多套滑脱层系(尤其是深部和浅部滑脱层系)和扬子板块能干性基底对造山带盆地向扩展变形过程的阻挡作用.  相似文献   

7.
龙门山冲断带多层次滑脱带与滑脱构造变形   总被引:9,自引:0,他引:9  
龙门山冲断带发育多层次的滑脱层,通过野外地质考察、地震剖面解释和平衡剖面分析,可以将其划分为:(ⅰ)深层次滑脱带,包括壳幔滑脱带、壳内滑脱带和前震旦系基底滑脱带,所发育的构造变形样式主要有壳幔拆离滑脱变形、基底韧性剪切变形等;(ⅱ)中层次滑脱带,包括寒武-奥陶系滑脱带、志留系滑脱带等,发育的构造变形样式主要有等厚褶皱、尖棱褶皱、构造虚脱及其构造组合等;(ⅲ)浅层次滑脱带,包括上三叠统须家河组滑脱带、侏罗系滑脱带等,发育的构造变形样式主要包括逆冲推覆构造和重力滑动构造样式、背冲断块、三角带构造和双重构造等.多套滑脱层不仅使褶皱-冲断带自深层往浅层发育了不同的构造变形样式,同时还使得局部构造发生了明显的构造作用的叠加,研究表明,多套滑脱层在龙门山冲断带的形成和演化过程中具有重要的作用.  相似文献   

8.
塔里木盆地西南前陆构造分段及其成因   总被引:13,自引:0,他引:13  
大量野外调查和地球物理资料构造解释发现, 塔里木盆地西南凹陷周边前陆盆地带具有沿前陆走向构造分段的规律性, 即在西昆仑-帕米尔和西南天山前陆发育了一系列相间分布的由山系向盆地逆冲的弧形推覆构造系统及由塔里木盆地西南凹陷向山系反冲的弧形反冲构造系统, 逆冲与反冲构造间以走滑或斜冲断层相隔; 塔西南凹陷基底的北东向隆起和凹陷与前陆构造分段具成因联系, 发现薄皮弧形推覆构造段对应基底构造上隆区(小于10 km), 塔里木盆地反冲构造段对应基底构造下凹区(大于8 km). 沿造山带走向隆升幅度和速率或变形格局的差异、前陆盆地多个沉降中心及巨厚沉积盖层、盆地基底构造中隆起带和凹陷带及前陆盆地沉积盖层中存在多层膏岩层等软弱层是塔西南盆地前陆构造分段产生的控制因素, 而晚第三纪以来西昆仑-帕米尔与西南天山再造山隆升与塔里木盆地基底构造深浅部不同耦合变形作用是塔里木盆地西南前陆构造分段的主因.  相似文献   

9.
青藏高原东缘龙门山构造隆升一直存在挤压造山模式和下地壳层流模式之争.下地壳层流模型认为,龙门山隆升与水平缩短关系不大,山前断层只是高原、盆地间差异性垂直运动的结果,高原之下无需挤压模式中的大规模水平滑脱层.本文利用近场密集的同震形变数据,约束汶川地震破裂几何特征及同震滑动分布.反演结果显示汶川地震撕裂龙门山中南段近水平滑脱层, 宽度达到60~80 km,释放能量约占总标量地震矩的12%,在16~21 km深度出现两三个滑动量高达6~7 m的破裂区.深部低角度破裂往上转为高角度逆冲,沿龙门山中央断裂以约55°倾角出露地表.汶川地震破裂的几何产状和滑移幅度表明龙门山冲断带发育大规模的近水平滑脱层,是青藏高原东缘地壳缩短增厚、龙门山挤压隆升的重要证据.  相似文献   

10.
天山南北前陆盆地新生代变形与天山造山带的波动耦合   总被引:1,自引:0,他引:1  
天山南北前陆盆地变形及与天山构造变动的关系一直备受关注.通过地震资料解释和地面地质调查,对它们的构造特点、构造样式、变形主控因素、变形时间和关系等进行了对比研究.两个前陆盆地新生代变形都表现出南北分带、东西分段和上下分层的特点.变形样式以压性为特点,既有基底卷入式变形,也有盖层滑脱式变形.这种变形的复杂性与软性地层的存在有密切关系.从变形时间上看,新生代两个盆地都经历了多期变形,且变形表现为从天山造山带向盆地内部逐渐变新.天山南北前陆盆地的变形动力学可用造山楔动力学模型代表,但其构造又明显表现出波的特点,据此提出了波动造山楔的概念,建立了天山两侧双波动楔模型.  相似文献   

11.
Based on field observations and rheology analysis, we perform one analogue experiment and remold the 3D structural frame of Tongling deposit concentrating area firstly. Then we disassemble and dialyze the 3D structures of the model using the methods of "slicing" and "stripping". A series of sliced planes vertical to the fold hinges show similar landscapes of that in the drill hole profiles. Meanwhile, layer stripping analysis indicates that the deformation features of each layer in the model are qualitatively analogical to those obtained from field observations.Through contrasting the 3D structure between the experimental model and the field phenomena,we verify the following 3D deformation features of the caprock in this area: (1) the Tongling area mainly consists of three series of NE S-typed fold groups; (2) in the uniform stress field, the incoherent folds universally develop in different positions, along different axes as well as in different strata; (3) the faults propagate upward which are mostly inter-bedded detachment faults,while the fold amplitudes decrease while going deeper; and (4) the folds and cleavages are highly developed in the Silurian System indicating that the deformation effect of the Indosinian-Yanshanian structural layer terminates at this layer, which suggests that the Silurian System is the crucial layer for the inversion between brittle and plastic deformation domains and the underlying strata are subject to the control of another deformation system with distinct properties.  相似文献   

12.
~~Experimental remolding on the caprock’s 3D strain field of the Indosinian-Yanshanian epoch in Tongling deposit concentrating area1.Chang,Y.F.,Liu,X.P.,Wu,Y.C,The Cu,Fe Metallogenic Belt in the Middle-Lower Reaches of Yangtze River(in Chinese with English abstract),Beijing:Geological Publishing House,1991,1-379. 2.Yin,H.F.,Wu,S.B.,Du,Y.S.,South China is the part of multi-islands and multi-oceans system of Tethys,Earth Sciences(in Chinese),1999,24(1):1-12. 3.Wu,G G,Zha…  相似文献   

13.
It is indicated that the salt beds have a bearingupon the hydrocarbon accumulation more than 80%discovered oil-gas reserves of the world[1]. The saltbeds can change the occurrence of overlying horizons,forming various structural traps[2,3]. The salt bed itselfis the most effective caprocks. The deposits ofhigh-saliniferous environment may have favorablepetroleum-generating conditions[4]. The salt beds withlow specific thermal conductivity may result in highergeothermal gradient of sub-salt str…  相似文献   

14.
帕米尔东北缘及塔里木盆地西北部弧形构造的扩展特征   总被引:15,自引:0,他引:15  
归纳了帕米尔东北缘弧形构造的基本特征 ,分析了塔里木盆地西北部EW向逆断裂背斜带与NNW向隐伏走滑断裂之间的关系。通过塔里木盆地与西南天山和帕米尔东北缘变形特征的对比 ,认为塔里木盆地西北部的变形样式与帕米尔东北缘的弧形构造类似 ,弧形构造具有由帕米尔东北缘向塔里木盆地扩展的特征 ,这种构造是帕米尔向北挤入运动所特有的变形样式  相似文献   

15.
The Ximalin fault is the northwest section of the Ximalin-Shuiquan fault, which is part of the north-edge fault zone of the Yanghe Basin, located in the conjunction of the Zhangjiakou-Bohai fault zone and Shanxi fault-depression basin, and its structural geometry and deformation characteristics can facilitate the research on the interaction of the two tectonic belts. In this paper, data of geological surveys and geophysical exploration are used to study this fault exhaustively, concerning its geometry, structural features and activity as well as its relationship with adjacent faults and rule in the deformation transform of the north-edge fault zone of the Yanghe Basin. The results show that the Ximalin Fault is a strike-slip feature with thrust component. Its vertical slip rates are 0.17mm/a and 0.25~0.38mm/a, and the horizontal slip rate is 0.58~0.67mm/a and 0.50mm/a during the late Middle Pleistocene and Holocene, respectively. It is formed alternately by the NW-trending main faults and secondary NE-trending faults, of which the former is characterized by high-angle reverse with sinistral strike-slip, and the latter shows normal faulting. The two sets of structures have specific structural geometry relations, and the motion manners and deformation characteristics match each other. During the active process of the north-edge fault of the Yanghe Basin, the NW trending Ximalin fault played a role similar to a transform fault in deformation change and stress transfer, and its sinistral strike slip activity accommodated the NE trending normal faulting at the both ends.  相似文献   

16.
The Helan Mountains and Yinchuan Basin(HM-YB) are located at the northern end of the North-South tectonic belt,and form an intraplate tectonic deformation zone in the western margin of the North China Craton(NCC).The HM-YB has a complicated history of formation and evolution,and is tectonically active at the present day.It has played a dominant role in the complex geological structure and modern earthquake activities of the region.A 135-km-long deep seismic reflection profile across the HM-YB was acquired in early 2014,which provides detailed information of the lithospheric structure and faulting characteristics from near-surface to various depths in the region.The results show that the Moho gradually deepens from east to west in the depth range of 40-48 km along the profile.Significant differences are present in the crustal structure of different tectonic units,including in the distribution of seismic velocities,depths of intra-crustal discontinuities and undulation pattern of the Moho.The deep seismic reflection profile further reveals distinct structural characteristics on the opposite sides of the Helan Mountains.To the east,The Yellow River fault,the eastern piedmont fault of the Helan Mountains,as well as multiple buried faults within the Yinchuan Basin are all normal faults and still active since the Quaternary.These faults have controlled the Cenozoic sedimentation of the basin,and display a "negative-flower" structure in the profile.To the west,the Bayanhaote fault and the western piedmont fault of the Helan Mountains are east-dipping thrust faults,which caused folding,thrusting,and structural deformation in the Mesozoic stratum of the Helan Mountains uplift zone.A deep-penetrating fault is identified in the western side of the Yinchuan Basin.It has a steep inclination cutting through the middle-lower crust and the Moho,and may be connected to the two groups of faults in the upper crust.This set of deep and shallow fault system consists of both strike-slip,thrust,and normal faults formed over different eras,and provides the key tectonic conditions for the basin-mountains coupling,crustal deformation and crust-mantle interactions in the region.The other important phenomenon revealed from the results of deep seismic reflection profiling is the presence of a strong upper mantle reflection(UMR) at a depth of 82-92 km beneath the HM-YB,indicating the existence of a rapid velocity variation or a velocity discontinuity in that depth range.This is possibly a sign of vertical structural inhomogeneity in the upper mantle of the region.The seismic results presented here provide new clues and observational bases for further study of the deep structure,structural differences among various blocks and the tectonic relationship between deep and shallow processes in the western NCC.  相似文献   

17.
青藏高原东南缘处于印度板块与欧亚板块碰撞的侧翼,揭示该地区的岩石圈结构有助于完整理解青藏高原碰撞造山的动力学过程,对构建大陆碰撞成矿理论框架至为关键.本研究对横过青藏高原侧向碰撞带的一条深反射地震剖面的15个大炮资料,进行了针对性静校正、去噪等处理和单次叠加成像,结果剖面显示了侧向碰撞带岩石圈结构的骨架特征:(1)双程走时(TWT)8~10s的强反射(Tc)将地壳分为上、下两层;Tc可能是大型滑脱构造的拆离面,其存在使上地壳的变形与下地壳解耦;(2)Moho间断面反射(Tm)为3~4个同相轴的窄带反射波组,横向不连续,与深大断裂交汇处被错断,但断距不大;(3)在兰坪—思茅地块下方TWT21s和扬子克拉通西缘下方TWT22~24s存在相向倾斜的反射波组(TL);以Tc、Tm和TL构成的骨架结构,定性地描绘出剖面下方岩石圈地幔以汇聚为主、地壳块体以侧向滑移为主和上地壳为薄皮逆冲或滑脱的分层动力学模式.该岩石圈变形样式明显不同于以正向碰撞挤压、地壳缩短垂向增厚为主的"冈底斯模式".  相似文献   

18.
IntroductionIn order to gain a clear idea of the deep tectonic environment of Xingtai earthquake area,three wide-angle deep seismic renectionlrefraction profiles have been conducted through the are4they are Yuanshi--Ji'nan profile, Renxian--Wuqing profile and Tat' an--LongyaM inzhou profi I e.The Yuanshi--Ji'nan profile passes through the epicenter of the Ms=7.2 main shock andTat' ~ongyaO--X inzhou profi ie passes through the ep icenter of the Ms=6. 8 earthquake. Duringthe "Eighth Five-…  相似文献   

19.
We have studied the characteristics of the active faults and seismicity in the vicinity of Urumqi city, the capital of Xinjiang Autonomous Region, China, and have proposed a seismogenic model for the assessment of earthquake hazard in this area. Our work is based on an integrated analysis of data from investigations of active faults at the surface, deep seismic reflection soundings,seismic profiles from petroleum exploration, observations of temporal seismic stations, and the precise location of small earthquakes. We have made a comparative study of typical seismogenic structures in the frontal area of the North Tianshan Mountains, where Urumqi city is situated,and have revealed the primary features of the thrust-foldnappe structure there. We suggest that Urumqi city is comprised two zones of seismotectonics which are interpreted as thrust-nappe structures. The first is the thrust nappe of the North Tianshan Mountains in the west, consisting of the lower(root) thrust fault, middle detachment,and upper fold-uplift at the front. Faults active in the Pleistocene are present in the lower and upper parts of this structure, and the detachment in the middle spreads toward the north. In the future, M7 earthquakes may occur at the root thrust fault, while the seismic risk of frontal fold-uplift at the front will not exceed M6.5. The second structure is the western flank of the arc-like Bogda nappe in the east,which is also comprised a root thrust fault, middle detachment, and upper fold-uplift at the front, of which the nappe stretches toward the north; several active faults are also developed in it. The fault active in the Holocene is called the South Fukang fault. It is not in the urban area of Urumqi city. The other three faults are located in the urban area and were active in the late Pleistocene. In these cases,this section of the nappe structure near the city has an earthquake risk of M6.5–7. An earthquake M_S6.6, 60 km east to Urumqi city occurred along the structure in 1965.  相似文献   

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