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1.
襄樊——广济断裂西段的三里岗——三阳地区出露有构造混杂岩,以含蛇绿岩残块为特征,经历了复杂的构造变形和演化过程。不同区段的构造解析与对比表明,中生代以来该构造混杂岩带主要遭受了4期变形构造的叠加改造:1)高温塑性变形(D1),表现为蛇绿岩残块内部具网状强应变带和透镜状弱应变域相互交织的构造变形样式,强应变带形成以镁铁质糜棱岩为特征的高温韧性剪切带,显示深层次构造变形特征;2)逆冲推覆变形(D2),构造混杂岩带发育叠瓦状逆冲推覆构造和双冲构造,南界韧性剪切带是构造混杂岩带整体运移的主推覆面,发育长英质糜棱岩,形成于中等构造层次,岩石中发育镁铁质糜棱岩糜棱面理的褶皱构造,显示陆内逆冲推覆对先期高温塑性变形构造的叠加改造;3)韧脆性右行平移剪切(D3),形成构造混杂岩带内部浅层次构造变形,构造混杂岩带南侧的花山群钙质片岩揉皱变形,形成枢纽近直立的不对称褶皱,指示右行平移剪切变形;4)伸展正断层(D4),主要发育于构造混杂岩带北侧,呈NW——SE向展布,控制晚白垩世断陷盆地的形成与沉积充填。  相似文献   

2.
秦岭大别山造山带内巨型构造混杂岩带的组成及构造意义   总被引:1,自引:0,他引:1  
平行或近平行分布于秦岭大别山造山带的一个巨型构造混杂岩带,由变质表壳岩块、中深地壳变质块体、壳幔过滤带岩块和幔源岩块与糜梭岩和变晶糜梭岩基质共同组成。由构造混杂岩带内岩块和基质的变质变形特点、流变学性质、运动学标志、形成构造环境、动力学特征和时限,表明它们是华北陆块、扬子陆块和分布其间的地体并置碰撞对挤逆冲韧性剪切作用过程中多阶段长时期发育而成。空间上构造混杂岩带内岩块成分的多样性,反映造山带内物  相似文献   

3.
碧土地区怒江缝合带由二叠纪—早三叠世蛇绿混杂岩和志留纪─晚三叠世不同类型沉积岩构成的蛇绿─构造混杂带所组成。带中零星出现的蓝闪石、3T型多硅白云母等组合表明为中高压变质带,以逆冲断裂、褶皱构造构成的双向背冲叠瓦构造为变形特征。该带经历了6个阶段的演化,最终将冈底斯─念青唐古拉陆块和亲扬子的昌都陆块缝合在一起,形成了现今两弧夹一带之构造格局。  相似文献   

4.
吴珍汉  陆露  赵珍  胡道功  张耀玲 《地质通报》2016,35(7):1056-1068
通过详细的野外观测结合地质填图资料,在聂荣变质杂岩及邻区厘定大规模逆冲推覆构造,不同时代的逆冲岩席自北—北东向南—南西逆冲推覆于上白垩统红层及下伏岩石地层之上,形成大量逆冲断层、滑脱构造、飞来峰、构造窗和褶皱构造。逆冲推覆构造运动导致侏罗纪蛇绿混杂岩、石炭系—二叠系构造层、古生界浅变质岩、变质基底之间发生拆离滑脱,在聂荣变质杂岩内部形成韧性剪切带和高角度斜冲断层。在唐古拉山口南侧形成北西—南东向土门-托纠-杂色右旋走滑断裂,走滑断裂末端转换为近东西向逆冲推覆构造。聂荣变质杂岩顶部逆冲推覆叠加滑覆,导致侏罗系混杂堆积和古生界沉积盖层向南西—西向运移86~110km,在那曲-巴尔达-班戈北形成近东西向长透镜状懂错蛇绿混杂岩逆冲岩席,沿缓倾斜断层发育向西倾斜的构造片理、摩擦镜面和近东西走向的矿物线理。裂变径迹测年表明,聂荣变质杂岩及邻区逆冲推覆及构造隆升时代主要为早白垩世晚期—晚白垩世早期(111±5~91±5Ma)、晚白垩世晚期(89±6~69±5Ma)、古新世晚期—始新世早期(55±4~44±2Ma),估算构造隆升视速率为0.10~0.69mm/a,部分断层逆冲推覆及构造隆升延续至古近纪晚期。综合各类观测资料,建立不同时期构造模式,探讨聂荣变质杂岩及邻区逆冲推覆构造演化过程及形成机理。  相似文献   

5.
西藏阿里推覆构造与蛇绿岩构造侵位   总被引:1,自引:0,他引:1  
通过野外观测和ETM遥感解译,结合1∶25区域地质调查相关资料,发现西藏阿里地区晚白垩世—古近纪发育自北向南长距离逆冲推覆构造运动,形成大型逆冲推覆构造系统,导致班公—怒江缝合带发生解体和蛇绿岩构造侵位。阿里逆冲推覆构造系统由大量逆冲断层、不同时代的构造岩片、不同规模的飞来峰和构造窗、不同方向的褶皱构造组成,前锋逆冲断层呈弧形分布于拉萨地块北部狮泉河—左左—革吉—麦岗沿线。沿主要逆冲断层,中生代蛇绿混杂岩、三叠纪和侏罗纪碎屑岩-碳酸盐岩、石炭纪板岩、二叠纪白云质灰岩自北向南逆冲推覆于早白垩世碎屑岩-碳酸盐岩、晚白垩世—古近纪红层之上,形成比较典型的薄皮双重推覆构造系统,估算最小推覆距离160~180 km。根据构造关系和同位素年龄资料,推断阿里薄皮推覆构造主要形成时代为75~20 Ma,对应自北向南逆冲推覆构造运动速率约2.91~3.28 mm/a。研究阿里逆冲推覆构造对深化认识班公—怒江缝合带及蛇绿混杂岩的构造属性、合理评价羌塘盆地西段油气资源潜力具有重要意义。  相似文献   

6.
陕西勉略地区两类混杂岩的发现及其地质意义   总被引:6,自引:0,他引:6  
陕西勉略地区大地构造位置处于扬子板块和秦岭微板块接合部位,该区混杂岩的发现和厘定是国家基金项目“秦岭勉略构造带的组成、演化及动力学特征”的阶段成果,目前所发现的俯冲型和碰撞—逆冲型两类混杂岩分别位于略阳横现河和勉县长坝,分别称之为横现河混杂岩和长坝混杂岩。 横现河混杂岩:出露横现河镇南张崖沟,呈宽约800~1000m的楔状岩片产出,与南北两侧岩片以向南高角度的韧性逆冲断层接触,属泥砂质混杂岩。混杂岩由大小悬殊形态各异的岩块和基质两部分  相似文献   

7.
西金乌兰构造混杂岩带特征   总被引:5,自引:0,他引:5  
西金乌兰构造混杂岩带为西金乌兰一金沙江缝合带的西端,由于以往研究程度低而认识较为模糊。通过1:25万区调系统研究表明.混杂岩带组成复杂。由基底岩块、海滩砂岩、辉长(辉绿)岩墙群、蛇绿岩、硅质岩、灰岩(海山)、复理石和磨拉石组成。蛇绿岩环境分析表明。部分为洋中脊环境。大部分为洋岛环境。明确了西金乌兰构造混杂岩带由一系列向南俯冲的逆冲断层分隔的岩块组成。初步总结了西金乌兰蛇绿构造混杂岩带的演化过程。  相似文献   

8.
造山带内蛇绿混杂岩带结构与组成的精细研究可为古板块构造格局重建和古洋盆演化提供最直接证据。北山造山带内存在多条蛇绿混杂岩带,记录了古亚洲洋古生代以来的俯冲和闭合过程,然而其大地构造演化长期存在争议。红石山—百合山蛇绿混杂岩带位于北山造山带北部,主要由蛇绿(混杂)岩和增生杂岩组成,具典型的"块体裹夹于基质"的混杂岩结构特征,发育紧闭褶皱、无根褶皱、透入性面理和双重逆冲构造。蛇绿混杂岩带中岩块主要由超镁铁质-镁铁质岩(变质橄榄岩、辉石橄榄岩、异剥辉石岩、蛇纹岩)、辉长岩、玄武岩、斜长花岗岩、硅质岩等洋壳残块以及奥陶纪火山岩、灰岩等外来岩块组成,基质则主要为蛇纹岩、砂板岩及少量的绿帘绿泥片岩;在蛇绿混杂岩带北侧发育有台地相灰岩与深水浊积岩组成的沉积混杂块体,具滑塌堆积特征。蛇绿混杂岩带内发育三期构造变形,前两期为中深构造层次下形成的透入性变形,第三期为浅表层次的脆性变形,未形成区域性面理。空间上,由增生杂岩和蛇绿(混杂)岩组成的百合山蛇绿混杂岩带共同仰冲于绿条山组浊积岩之上,具有与红石山地区蛇绿混杂岩带相似的岩石组成、构造变形和时空结构特征。百合山蛇绿混杂岩带南侧发育同期的明水岩浆弧,由晚石炭世石英闪长岩-花岗闪长岩-二长花岗岩以及白山组岛弧火山岩组成,其与百合山蛇绿混杂岩带共同构成了北山造山带北部石炭—二叠纪的沟-弧体系,指示了红石山—百合山洋盆向南俯冲的极性。  相似文献   

9.
秦岭略阳—白水江地区双向推覆构造及形成机制   总被引:5,自引:2,他引:5       下载免费PDF全文
秦岭勉县—略阳板块缝合带在略阳地区构造样式总体表现为以一系列韧性逆冲断层为骨架,不同岩片(块)由北向南逆冲叠置的叠瓦状构造系,并在北部以状元碑走滑剪切转换带为界与白水江—光头山自南向北的逆冲推覆构造系构成不对称双向推覆构造。两大推覆构造系结构构造分别具有明显的分带性。略阳逆冲构造系包括:前缘褶皱—逆冲带、中部逆冲叠瓦带和后缘逆冲带;白水江—光头山逆冲推覆构造系由前锋推覆带、中部褶皱—逆冲带和根带组成,并显示前展式扩展方式。双向推覆构造形成于印支晚期—燕山早期,是扬子板块北缘碧口地块与南秦岭地块强烈碰撞造山的产物,反映了板块边界对造山带构造变形样式的控制作用以及造山带结构构造的复杂性。  相似文献   

10.
西藏碧土地区怒江缝合带基本特征与演化   总被引:3,自引:0,他引:3  
碧土地区怒江缝合带由二叠纪一早三叠世蛇绿混杂岩和志留纪-晚三叠世不同类型沉积岩构成的蛇绿-构造混杂带所组成。带中零星出现的蓝闪石、3T型多硅白云母等组合表明为中高压变质带,以逆冲断裂,褶皱构造构成的双向背冲叠瓦构造为变形特征。该带经历了6个阶段的演化,最终将冈底斯-念青唐古拉陆块和亲扬子的昌都陆地缝合在一起,形成了现今两弧夹一带之构造格局。  相似文献   

11.
CHARACTERISTICS OF TECTONIC MIXTITE ZONE IN THE LANCANG RIVER,WESTERN YUNNAN  相似文献   

12.
甘肃玉门昌马地区蛇绿混杂岩地质特征   总被引:3,自引:3,他引:3  
昌马地区蛇绿混杂岩位于玉门市昌马乡南锅底坑山一带 ,是北祁连山西段加里东期俯冲杂岩的重要组成部分。带内发育早寒武世裂谷火山—沉积岩系、中寒武世蛇绿岩、蓝片岩等。地球化学特征显示蛇绿岩形成于微洋盆环境 ;蓝片岩为微洋盆有限俯冲之产物。蛇绿混杂岩经历了 4次变形变质作用。  相似文献   

13.
Savchuk  Yu. S.  Volkov  A. V. 《Geotectonics》2020,54(6):771-784

The Central Ural uplift occupies the near-Vodorazdelnaya part of the Urals. It is composed of metaterrigenous and metavolcanogenic Riphean–Vendian formations. Distributed folds, which formed in several stages, and various tectonic faults are widespread. The study of these structures in the areas located in the Northern and Subpolar Urals showed their lateral and temporal variability, which was reflected in the difference in morphology and nature of faulting. In the Vodorazdelnaya area of the Northern Urals, as a result of thrust–fold deformations, a complex fold structure of the sequence was formed, subsequently broken by two submeridional subparallel faults into blocks. In the Khalmerya area of the Subpolar Urals, there are several tectonic blocks bounded by gently eastward dipping and overlapping tectonic blocks that form a duplex structure. This series of thrust structures created a complex cover structure contrasting in composition and degree of deformation. Later, a northeastern strike-slip fault zone arose. The orientation of early isoclinal folds in the rocks indicates pressure from the northeast, during the formation of tectonic scales and sheets in the Precambrian basement. Then this pressure occurred from the southeast and the Lower Paleozoic sediments were involved in the thrust process. Differences in the features of the formation of structures apparently depend on the morphology of the eastern margin of the East European platform and the change in the vector of displacement of the thrust sheet. The movement of the thrust sheets within the continental margin occurred along the main surface of the fault, with which the thrust structures are articulated at depth. At the final stages, extended strike-slip-upthrust zones were established, which affected the distribution of he gold mineralization.

  相似文献   

14.
扬子北缘复合构造带位于秦岭—大别造山带南缘与扬子板块北缘之间,由桐柏—大别造山带、武汉—怀宁断褶带、九岭—江南隆起带、瑞昌—铜陵断褶带和大冶—宿松对接带等构造单元组成,是中生代不同时期构造体制叠加,不同方向构造复合、联合的结果。该复合构造带北侧的桐柏—大别山南缘构造带和武汉—怀宁前陆断褶带由北向南逆冲,主要形成于晚印支期,是特提斯构造体制作用的产物; 而南侧的九岭—江南隆起带和瑞昌—铜陵断褶带,则由南向北逆冲,主要形成于早燕山期,是太平洋构造体制作用的产物,同时北侧的大别山南缘构造带和前陆断褶带受到影响,再次活动; 位于该复合构造带中部的大冶—宿松对接带是上述不同构造体制下,不同方向应力叠加,多期构造形迹复合最终形成的复杂构造带。所以,扬子北缘复合构造带是特提斯构造体制与太平洋构造体制转换的产物,是中下扬子两大构造体系转换的经典记录。  相似文献   

15.
合理厘定西南天山构造属性,不仅对天山大地构造单元的准确划分具有重要科学意义,而且对中亚造山带的古生代构造演化也至关重要。通过对西南天山乌什北山地区的地质填图和构造解析,识别出5期构造变形,包括2期逆冲推覆构造。对主期逆冲推覆构造进行几何学、运动学研究表明,该逆冲推覆构造在空间上具有由北向南逆冲的运动学指向,并由北向南表现出由逆冲推覆构造的根带向前锋带变化的构造样式。根据逆冲推覆构造的物质组成及变形样式,认为西南天山乌什北山一带应属于塔里木板块北缘逆冲推覆构造带,从而为区域构造单元划分及西南天山晚古生代以来的构造演化过程提供构造变形方面的依据。  相似文献   

16.
鄂尔多斯盆地西缘中段是西缘构造带的重要组成部分,关于该区的地下构造模式由于受地下构造复杂与地震资料品质差的影响长期以来缺乏清晰的认识。通过地表地质、大量地震资料的综合研究,纵向上以下古生界类复理石浊积岩系、上古生界煤系区域性滑脱层为界,将该区划分为上部的逆冲推覆构造系统和下部的原地系统。前者断裂、褶皱发育,由6个逆冲席组成,横向分带性特征明显,自西向东划分为逆冲推覆构造主体、前缘过渡带、前缘带三个带;后者构造变形较弱,总体为西倾单斜,局部地区发育完整背斜圈闭。前缘过渡带、前缘带及原地系统勘探目的层众多,油气成藏地质条件好,勘探前景较好;逆冲推覆构造主体目的层已裸露,油气生成与保存条件较差,勘探潜力欠佳。  相似文献   

17.
The Esla tectonic unit lies along the southern boundary of the Cantabrian–Asturian Arc, a highly curved foreland fold-thrust belt that was deformed during the final amalgamation of the Pangea supercontinent. Previous structural and paleomagnetic analyses of the Cantabrian–Asturian Arc suggest a two-stage tectonic history in which an originally linear belt was bent into its present configuration, creating an orocline. The Esla tectonic unit is a particularly complex region due to the interaction of rotating thrust sheets from the southern limb of the arc and the southward-directed thrusts of the Picos de Europa tectonic domain during late-stage north–south shortening and oroclinal bending. These structural interactions resulted in intense modification of early-phase thin-skinned tectonic structures that were previously affected by a deeper out-of-sequence antiformal stack that passively deformed the early thrust stack. A total of 75 paleomagnetic sites were collected from the Portilla and Santa Lucia formations, two carbonate passive-margin reef platform units from the middle Devonian. Similar to other regions of the Cantabrian–Asturian Arc, Esla Unit samples carry a secondary remanent magnetization that was acquired after initial thrusting and folding of Variscan deformation in the late Carboniferous. Protracted deformation during late-stage oroclinal bending caused reactivation of existing thrust sheets that include the Esla and younger Corniero and Valbuena thrusts. When combined with existing structural data and interpretations, these data indicate that the present-day sinuosity of the Esla Unit is the consequence of both secondary rotation of originally linear features in the western Esla exposures (e.g., frontal thrusts), and secondary modification and tightening of originally curvilinear features in the eastern Esla exposures (e.g., hanging-wall lateral/oblique ramps). Differences in structural style between the Esla and other tectonic units of the arc highlight the complex kinematics of oroclinal bending, which at the orogen-scale buckled an originally linear, north–south (in present-day coordinates) trending Cantabrian–Asturian thrust belt during the final stages of Pangea amalgamation.  相似文献   

18.
Tectonically the Dabie orogenic belt consists mainly of the Dabieshan Yanshanian uplifted zone and the Beihuaiyang Variscan-Indosinian folding zone. In the north boundary adjoining the North China Block, there are an Early Palaeozoic ophiolitic mixtite belt and the Hefei Mesozoic-Cenozoic faulted basin which overlaps on the suture belt. In the south of Dabie orogen, there is a secondary tectonic unit called Foreland thrust-faulted structural zone which was mainly formed by the intracontinental subductions during Mesozoic era. The study shows that the Dabie Block is a part of mid-late Proterozoic palaeo-island arc at the north margin of Yangtze Block. During Caledonian period, as a submerged uplift at the northen continental margin of Yangtze Block, the Dabie Block collided with the early Palaeozoic palaeo-island arc at the south margin of North China Block, resulting in the convergence of the North and South China Blocks and the disappearance of oceanic crust. Since then,large-scale intracontinental subductions were followed. Dabie Orogenic Belt is the product of overlapping of Yangtze Block, Dabie Block and North China Block under the mechanism of intracontinental subduction. Indosinian period is the period of chief deformation and high pressure dynamic metamorphism for Dabie Block, and Yanshan period is the main orogenic period in which the remelting of crust caused by basement shearing resulted in large scale thermometamorphism. The present tectonic framework of the orogen was finally formed by the rapid uplifting of the Dabieshan mountains and gliding southwards, which result in the developing of thrust belt on south side and the extensional tectonic movement on north side.  相似文献   

19.
Tectonically the Dabie orogenic belt consists mainly of the Dabieshan Yanshanian uplifted zone and the Beihuaiyang Variscan-Indosinian folding zone. In the north boundary adjoining the North China Block, there are an Early Palaeozoic ophiolitic mixtite belt and the Hefei Mesozoic-Cenozoic faulted basin which overlaps on the suture belt. In the south of Dabie orogen, there is a secondary tectonic unit called Foreland thrust-faulted structural zone which was mainly formed by the intracontinental subductions during Mesozoic era. The study shows that the Dabie Block is a part of mid-late Proterozoic palaeo-island arc at the north margin of Yangtze Block. During Caledonian period, as a submerged uplift at the northen continental margin of Yangtze Block, the Dabie Block collided with the early Palaeozoic palaeo-island arc at the south margin of North China Block, resulting in the convergence of the North and South China Blocks and the disappearance of oceanic crust. Since then,large-scale intracontinental subductions were followed. Dabie Orogenic Belt is the product of overlapping of Yangtze Block, Dabie Block and North China Block under the mechanism of intracontinental subduction. Indosinian period is the period of chief deformation and high pressure dynamic metamorphism for Dabie Block, and Yanshan period is the main orogenic period in which the remelting of crust caused by basement shearing resulted in large scale thermometamorphism. The present tectonic framework of the orogen was finally formed by the rapid uplifting of the Dabieshan mountains and gliding southwards, which result in the developing of thrust belt on south side and the extensional tectonic movement on north side.  相似文献   

20.
续海金  王国庆  舒坦  刘德民 《地球科学》2021,46(5):1657-1676
北京西山地区广泛发育SE-NW向近乎同时期的逆冲推覆构造和伸展构造,为理解华北克拉通东部构造演化至关重要,而其构造组合特征、变形时代、形成机制和构造动力学背景却没有明确的认识.精细的野外构造研究表明北京西山的南观地区,发育逆冲推覆构造+变质核杂岩的构造组合,形成一种新的构造组合型式:"楔沉式"."楔沉式"构造组合型式的...  相似文献   

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