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1.
黄兴富  施炜  李恒强  陈龙  岑敏 《地学前缘》2013,20(4):199-210
银川盆地新生代以来主要沿其边界断裂发生多期断陷活动,其边界断裂运动学特征记录了盆地的形成演化历史。基于其边界断裂滑动矢量的详细测量与分析,结合区域构造、盆地内沉积序列以及叠加变形分析,提出银川盆地新生代主要受NWSE向伸展、NESW向伸展与NESW向挤压3期构造应力场控制。结合区域构造演化与相关年代学数据,银川盆地新生代以来主要经历初始断陷、持续断陷与拉分断陷等3期构造演化,始新世-上新世受NWSE向伸展作用控制,银川盆地两侧主边界断裂发生正倾滑活动,导致盆地发生强烈断陷活动,充填了始新世-上新世红色砂岩、砾岩;更新世期间,古构造应力场转变为NESW向伸展,其主边界断裂以左行斜张活动,银川盆地持续断陷沉降;晚更新世晚期(?)以来,在NESW向挤压作用控制下,银川盆地主边界断裂发生强烈右行走滑兼正断活动,盆地受断裂剪切拉张活动,发生拉分断陷沉积。  相似文献   

2.
通过卫星遥感技术,运用遥感地质学的基本原理及研究方法,结合地层和该区夷平面的形成、解体等与新构造运动有关的特征分析,对措勤盆地新构造断裂及其有关的地貌进行详细解译,分析其主要断裂特征,得知该区构造断裂总体呈现多阶段性,并与措勤盆地高原湖泊萎缩及整个高原隆升存在密切关系.  相似文献   

3.
沉积后尚未固结的砂体在外部动力的干扰下容易发生液化,形成沙火山、液化砂岩脉等沉积构造,地震是触发液化的最常见动力.在河床现代沉积中发现大量的沙火山构造,其产生过程虽受人为活动影响,形成条件却在盆地特殊构造部位可以满足,分析其特征、演化及动力可以为震积岩及其他成因软沉积变形研究提供参考.研究结果显示,不同规模及对应特征的...  相似文献   

4.
通过对盆地形成过程的研究,认为风火山盆地经历了基底、古地貌盆地、沉积盆地及构造盆地4个阶段,在晚白垩世沉积形成.地层含矿性特征表明,晚白垩世风火山群砂岩夹灰岩组和砂岩组地层是含矿地层,其中砂岩夹灰岩组是主要含矿地层,与铜矿成矿关系密切.矿床成因分析认为,盆地附近的隆起区作为蚀源区,其晚三叠世地层及其他浅成侵入岩等,为沉积盆地提供了沉积物,也为盆地地层沉积提供了铜质来源.在砂岩夹灰岩组和砂岩组地层中,还原、碱性环境下沉积形成的灰绿色碎屑岩形成了矿源层,经过后期的活化、迁移、富集,形成了沉积一改造型层控铜矿床.  相似文献   

5.
苏北盆地构造演化研究进展   总被引:20,自引:0,他引:20  
苏北盆地位于苏鲁造山带南侧、下扬子地台的东北部,盆地所处的特殊构造位置使其演化历史颇为复杂.总结了近年来苏北盆地构造演化研究方面的进展,如盆地基底、深部构造、形成机制、盆地与下扬子区构造演化之间的关系等研究的进展.对近年来获得的新认识进行分析和归纳,提出了今后苏北盆地构造演化研究中一些值得关注的问题,如盆地基底构造与浅部构造之间的关系、苏鲁造山带与盆地构造演化的联系、郯庐断裂对盆地形成的影响、盆地形成的动力学机制等.  相似文献   

6.
苏北盆地构造演化研究进展   总被引:2,自引:0,他引:2  
苏北盆地位于苏鲁造山带南侧、下扬子地台的东北部,盆地所处的特殊构造位置使其演化历史颇为复杂.总结了近年来苏北盆地构造演化研究方面的进展,如盆地基底、深部构造、形成机制、盆地与下扬子区构造演化之间的关系等研究的进展.对近年来获得的新认识进行分析和归纳,提出了今后苏北盆地构造演化研究中一些值得关注的问题,如盆地基底构造与浅部构造之间的关系、苏鲁造山带与盆地构造演化的联系、郯庐断裂对盆地形成的影响、盆地形成的动力学机制等.  相似文献   

7.
在金羊盆地物性特征研究的基础上,通过对重震等资料的综合处理,完成了研究区重力场特征及成因分析和断裂构造体系的划分.研究区重力场的特征是区内西部凹陷、中东部凸起和中南部凹陷共同作用.重力区域场主要是前中生界底面(基底)起伏变化引起.重力剩余场高、低相间排列的特征反映了区内凹隆格局及凹隆间发育的断裂.研究区断裂体系主要由北东向和北西向2组断裂构成,前者形成时期早于后者,都对金羊盆地的次级构造形态进行后期的多次改造,形成本区凹、凸相间的构造格局.  相似文献   

8.
吐哈盆地地浸砂岩型铀矿成矿条件与盆地动力学演化   总被引:10,自引:11,他引:10       下载免费PDF全文
分析吐哈盆地气候、地貌景观、地下水动力学、大地构造及构造、层间氧化带发育条件、含矿目的层地质及地球化学特征等,认为吐哈盆地北部与南部(艾丁湖斜坡带、了南凹陷、南湖凹陷等)地浸砂岩型铀矿成矿条件存在明显差异,其根本原因是与盆地南北动力学演化的差异有关。依据盆地构造沉降、构造层序、受板块运动影响等特征,认为盆地构造演化分为5个阶段,其中第三演化阶段(C-T)挤压型前陆盆地沉积阶段奠定了盆地南北构造演化差异的基础,对中新生代地浸砂岩型铀矿的分布影响深远;第四阶段(J-K)弱伸展型断陷盆地阶段为南部地浸砂岩型铀矿的形成准备了物质基础;第五阶段新生代挤压型前陆盆地阶段(E-Q)为南部地浸砂岩型铀矿形成富集提供了充分的外部动力。  相似文献   

9.
琼西莺歌海盆地断裂系统的成因机制   总被引:2,自引:0,他引:2  
通过对莺歌海盆地构造变形背景和变形基本特征的分析,详细地研究了盆地断裂系统的特征及其分布规律,并结合区域构造演化,对断裂的成因机制进行了探讨。认为北西向断裂控制了盆地的总体构造格局,尤其是强烈的右旋扭动形成南北向雁行式的张裂隙,诱导了泥-流体底辟构造的发生;泥-流体底辟活动进一步形成局部的应力场,开启新的断裂和破碎带,同时,形成与超压流体的活动相关的流体压裂。  相似文献   

10.
雪峰造山带南段靖州盆地成因性质及形成背景   总被引:1,自引:0,他引:1       下载免费PDF全文
柏道远  钟响  贾朋远  熊雄  黄文义 《中国地质》2013,40(4):1079-1091
靖州盆地是位于雪峰构造带南段的一个NE向晚三叠世一中侏罗世小型陆相盆地,前人研究提出其为NNE向溆浦-靖州大断裂左行走滑形成的拉分伸展盆地.本文对靖州盆地构造特征、T3-J2沉积和原型盆地特征等进行了系统研究,在此基础上提出该盆地实为挤压类前陆盆地,主要依据有:①沉积物高成熟度以及残留盆地边界与盆地周缘先期地质界线总体协调一致,说明盆地沉积时为挤压挠曲作用下形成的低缓洼地;②沉积物高成熟度和远源特征,指示盆地形成于相对稳定构造环境;③盆地北端T3-J1沉积空间由岩层弯曲下凹提供;沉积物产状变化指示J2盆地受到NW向挤压并产生持续褶皱变形;沉积物特征指示沉积环境西浅东深,进一步暗示J2盆地发展受控于NW向挤压与东缘逆冲块体的重力载荷;④盆缘伸展断裂少见,因挤压形成的小型走滑断裂、逆断裂、共轭剪节理等则多见;⑤从溆浦-靖州断裂走向偏转情况来看,该断裂左行走滑时靖州盆地所处部位应为挤压区而非拉张区.据盆地沉积和构造特征及区域大地构造演化背景,盆地的形成主要与晚三叠世-早侏罗世区域SN向挤压、中侏罗世区域NWW向挤压和NNE向左行走滑有关.  相似文献   

11.
CENOZOIC DISPLACEMENT HISTORY OF THE ALTYN TAGH FAULT:GEOLOGICAL EVIDENCE FROM FIELD OBSERVATIONS IN SOUERKULI AND MANGAR REGIONS, NW CHINAtheprogramsof (1)theYoungGeologistsFoundationoftheMGMR (No .Qn979812 ) ;(2 )“theNational (G19980 40 80 0 )and (3)openinglabora…  相似文献   

12.
2007年中国在南海北部神狐海域通过钻探首次获得天然气水合物样品,证实了珠江口盆地深水区是水合物富集区。通过对珠江口盆地深水区构造沉降史的定量模拟研究,发现晚中新世以来区内构造沉降总体上具有由北向南、自西向东逐渐变快的演化趋势;从晚中新世到更新世,盆地深水区经历了构造沉降作用由弱到强的变化过程:晚中新世(11.6~5.3 Ma),平均构造沉降速率为67 m/Ma;上新世(5.3~1.8 Ma),平均构造沉降速率为68 m/Ma;至更新世(1.8~0 Ma),平均构造沉降速率为73 m/Ma。而造成这些变化的主因是发生在中中新世末-晚中新世末的东沙运动和发生在上新世-更新世早期的台湾运动。东沙运动(10~5 Ma)使盆地在升降过程中发生块断升降,隆起剥蚀,自东向西运动强度和构造变形逐渐减弱,使得盆地深水区持续稳定沉降;台湾运动(3 Ma)彻底改变了盆地深水区的构造格局,因重力均衡调整盆地深水区继续沉降,越往南沉降越大。将似海底反射(BSR)发育区与沉降速率平面图进行叠合分析,发现80%以上的BSR分布趋于构造沉降速率值主要在75~125 m/Ma之间、沉降速率变化迅速的隆坳接合带区域。  相似文献   

13.
《Geodinamica Acta》2001,14(1-3):147-158
Central Anatolia has undergone complex Neotectonic deformation since Late Miocene–Pliocene times. Many faults and intracontinental basins in this region were either formed, or have been reactivated, during this period. The eastern part of central Anatolia is dominated by a NE–SW-trending, left lateral transcurrent structure named the Central Anatolian fault zone located between Sivas in the northeast and west of Mersin in the southwest. Around the central part, it is characterized by transtensional depressions formed by left stepping and southward bending of the fault zone.Pre-Upper Miocene basement rocks of the region consist of the central Anatolian crystalline complex and a sedimentary cover of Tertiary age. These rock units were strongly deformed by N–S convergence. The entire area emerged to become the site of erosion and formed a vast plateau before the Late Miocene. A NE–SW-trending extensional basin developed on this plateau in Late Miocene–Early Pliocene times. Rock units of this basin are characterized by a thick succession of pyroclastic rocks intercalated with calcalkaline–alkaline volcanics. The volcanic sequence is unconformably overlain by Pliocene lacustrine–fluviatile deposits intercalated with ignimbrites and tuffs. Thick, coarse grained alluvial/colluvial fan deposits of marginal facies and fine grained clastics and carbonates of central facies display characteristic synsedimentary structures with volcanic intercalations. These are the main lines of evidence for development of a new transtensional Hırka–Kızılırmak basin in Pliocene times. Reactivation of the main segment of the Central Anatolian fault zone has triggered development of depressions around the left stepping and southward bending of the central part of this sinistral fault zone in the ignimbritic plateau during Late Pliocene–Quaternary time. These transtensional basins are named the Tuzla Gölü and Sultansazlığı pull-apart basins. The Sultansazlığı basin has a lazy S to rhomboidal shape and displays characteristic morphologic features including a steep and stepped western margin, large alluvial and colluvial fans, and a huge composite volcano (the Erciyes Dağı).The geometry of faulting and formation of pull-apart basins can be explained within the framework of tectonic escape of the wedge-like Anatolian block, bounded by sinistral East Anatolian fault zone and dextral North Anatolian transform fault zone. This escape may have been accomplished as lateral continental extrusion of the Anatolian Plate caused by final collision of the Arabian Plate with the Eurasian Plate.  相似文献   

14.
This paper describes the updated stratigraphy, structural framework and evolution, and hydrocarbon prospectivity of the Paleozoic, Mesozoic and Cenozoic basins of Yemen, depicted also on regional stratigraphic charts. The Paleozoic basins include (1) the Rub’ Al-Khali basin (southern flanks), bounded to the south by the Hadramawt arch (oriented approximately W–E) towards which the Paleozoic and Mesozoic sediments pinch out; (2) the San’a basin, encompassing Paleozoic through Upper Jurassic sediments; and (3) the southern offshore Suqatra (island) basin filled with Permo-Triassic sediments correlatable with that of the Karoo rift in Africa. The Mesozoic rift basins formed due to the breakup of Gondwana and separation of India/Madagascar from Africa–Arabia during the Late Jurassic/Early Cretaceous. The five Mesozoic sedimentary rift basins reflect in their orientation an inheritance from deep-seated, reactivated NW–SE trending Infracambrian Najd fault system. These basins formed sequentially from west to east–southeast, sub-parallel with rift orientations—NNW–SSE for the Siham-Ad-Dali’ basin in the west, NW–SE for the Sab’atayn and Balhaf basins and WNW–ESE for the Say’un-Masilah basin in the centre, and almost E–W for the Jiza’–Qamar basin located in the east of Yemen. The Sab’atayn and Say’un–Masilah basins are the only ones producing oil and gas so far. Petroleum reservoirs in both basins have been charged from Upper Jurassic Madbi shale. The main reservoirs in the Sab’atayn basin include sandstone units in the Sab’atayn Formation (Tithonian), the turbiditic sandstones of the Lam Member (Tithonian) and the Proterozoic fractured basement (upthrown fault block), while the main reservoirs in the Say’un–Masilah basin are sandstones of the Qishn Clastics Member (Hauterivian/Barremian) and the Ghayl Member (Berriasian/Valanginian), and Proterozoic fractured basement. The Cenozoic rift basins are related to the separation of Arabia from Africa by the opening of the Red Sea to the west and the Gulf of Aden to the south of Yemen during the Oligocene-Recent. These basins are filled with up to 3,000 m of sediments showing both lateral and vertical facies changes. The Cenozoic rift basins along the Gulf of Aden include the Mukalla–Sayhut, the Hawrah–Ahwar and the Aden–Abyan basins (all trending ENE–WSW), and have both offshore and onshore sectors as extensional faulting and regional subsidence affected the southern margin of Yemen episodically. Seafloor spreading in the Gulf of Aden dates back to the Early Miocene. Many of the offshore wells drilled in the Mukalla–Sayhut basin have encountered oil shows in the Cretaceous through Neogene layers. Sub-commercial discovery was identified in Sharmah-1 well in the fractured Middle Eocene limestone of the Habshiyah Formation. The Tihamah basin along the NNW–SSE trending Red Sea commenced in Late Oligocene, with oceanic crust formation in the earliest Pliocene. The Late Miocene stratigraphy of the Red Sea offshore Yemen is dominated by salt deformation. Oil and gas seeps are found in the Tihamah basin including the As-Salif peninsula and the onshore Tihamah plain; and oil and gas shows encountered in several onshore and offshore wells indicate the presence of proven source rocks in this basin.  相似文献   

15.
Cenozoic sedimentary deposits in central-southern Ningxia province, NW China are an important record of Tertiary tectonic events along the evolving Qinghai–Tibetan Plateau’s northeast margin. Shortly after the onset of the Indo-Eurasia collision to the south, a thrust belt and adjoining foreland basin began to form during 40–30 Ma. The Eocene Sikouzi Formation developed in a distal setting to this basin, in normal fault-bound basins that may have formed in a forebulge setting. Subsequent deposition of the Oligocene Qingshuiying Formation occurred during a phase of apparently less intense tectonism and the previous underfilled foreland basin became overfilled. During the Early Miocene, contractional deformation was mainly distributed to the west of the Liupan Shan. This resulted in deformation of the Qingshuiying Formation as indicated by an unconformity with the overlying Miocene Hongliugou Formation. The unconformity occurs proximal to the Haiyuan Fault suggesting that the Haiyuan Fault may have begun movement in the Early Miocene. In the Late Miocene, thrusting occurred west of the southern Helan Shan and an unconformity developed between the Hongliugou and Qingshuiying Formations proximal to the the Cha-Gu Fault. Relationships between the Miocene stratigraphy and major faults in the region imply that during the Late Miocene the deformation front of the Qinghai–Tibetan Plateau had migrated to the Cha-Gu Fault along the western Ordos Margin, and the Xiang Shan was uplifted. Central-southern Ningxia was then incorporated into the northeast propagating thrust wedge. The driving force for NE propagation of the thrust wedge was most likely pronounced uplift of the northeastern plateau at the same time. Analysis of the sedimentary record coupled with consideration of the topographic evolution of the region suggests that the evolving fold-and-thrust belt experienced both forward-breaking fold-and-thrust belt development, and out-of-sequence fault displacements as the thrust wedge evolved and the foreland basin became compartmentalised. The documented sedimentary facies and structural relationship also place constraints on the Miocene-Recent evolution of the Yellow River and its tributaries.  相似文献   

16.
《Sedimentary Geology》2006,183(1-2):71-97
Large NW–SE oriented, Neogene–Quaternary structural depressions, up to about 200 km long and 25 km wide, have developed on the western side (hinterland) of the Northern Apennines over thrust substrate. The depressions are now, for the most part, laterally bounded by normal faults and are longitudinally separated into basins by transfer zones. A debate exists in the literature as to whether these basins have developed as half-graben under a predominantly extensional regime since late Miocene, or as thrust-top basins under a predominantly compressional regime that has continued until the Pleistocene. The Radicofani Basin is one of the best-preserved basins. It developed mainly during the late Miocene–Early Pliocene in the southern half of the Siena–Radicofani structural depression, and is now bounded on the east by normal faults that transect a thrust anticline “nose“ in the substrate, to the north by a substrate high or transfer zone, and to the south and west by Quaternary igneous/volcanic edifices. The basin experienced variable differential tectonic and associated sedimentation along linking, normal boundary faults. Along its eastern margin it shows the development of thick (∼600 m) alluvial fans that developed in relay areas between boundary faults and transverse faults and transfer zones. Well-exposed sections generally show upward transitions from conglomeratic alluvial fans, to shoreface sandstone, to offshore mudstones. Locally, the transition is marked by deltas primarily characterised by thick gravelly, sandy, stacked cross-sets The thicker, sandy-gravel to gravelly-sand cross-sets (5–8 m thick) are interpreted as Gilbert-type deltas; interstratified thinner (0.5–1 m thick), generally openwork gravelly strata are part of delta topset assemblages and probably represent prograding fluvial bars. Tectonic movements provided the accommodation space for the total, ∼2700 m thick basin fill. Sea level fluctuations that led to the repeated development of the cross-sets may also have been influenced by climatic or eustatic changes, possibly related to the effects of early Antarctic glaciations.Some features of the Radicofani Basin can be found in both extensional and compressional basins. However, the position of the basin in the mountain chain and the development of alluvial fans, fandeltas and associated deposits along the main boundary fault, combined with structural evidence from seismic lines, show that during the early Pliocene this basin best conforms to existing models of half-graben.  相似文献   

17.
万安盆地是南海西南部重要的沉积盆地之一,深入分析其构造—沉积充填特征对于认识南海南部主要构造事件及其沉积响应具有重要的科学意义.利用覆盖全盆地的二维地震资料,结合国内外的研究成果,对万安盆地构造—层序特征及其构造—沉积充填演化进行分析.研究表明,万安盆地内新生代以来可识别出8个主要的二级/三级层序界面.沉降模拟显示,盆地沉降整体表现出一个“快—慢—快”的过程,且整体呈现出东高西低,中高南低的特征.综合构造层序特征和沉降模拟结果,万安盆地新生代以来沉积演化可分为5个阶段:初始裂陷期、晚期裂陷期、断坳转换期、裂后热沉降期和裂后加速热沉降期.盆地自形成以来,沉降主要受东亚大陆边缘区域拉张所造成的深部断裂的影响,至上新世,万安断裂转而成为盆地沉降的主要影响因素,并由此造成了早期盆地沉降中心由中部向西迁移,然后再逐步向东迁移的特征.渐新世至早中新世为盆地裂陷阶段,以陆源碎屑岩沉积为主,断陷早期可能为湖相,晚期为浅海相;中中新世为盆地断坳转换阶段,晚中新世以来为盆地裂后热沉降阶段,二者均发育陆源碎屑岩和自生碳酸盐岩两种沉积类型,且裂后热沉降期碳酸盐岩沉积范围相对缩小,陆缘碎屑岩沉积范围相对扩大.   相似文献   

18.
阿尔金断裂晚新生代左旋走滑位错的地质新证据   总被引:20,自引:5,他引:20  
通过对沿阿尔金断裂中段 (位于东经 88°至 92°)发育的晚第三纪走滑盆地沉积历史和走滑变形过程的野外观测以及对第四纪索尔库里盆地形成和演化过程的沉积环境复原的分析 ,提出了阿尔金断裂中段晚新生代左旋走滑位错的地质新证据。研究表明 ,晚第三纪走滑盆地经历了中新世晚期至上新世早期斜张走滑拉分和上新世晚期以来左旋错动的演化过程 ,沉积体沿断裂的错位分布特征指示至少发生了 80 km的左旋走滑位错。发育于阿尔金山链内部的索尔库里盆地起源于晚第三纪早期强烈的侵蚀作用 ,成为柴达木盆地快速沉积的主要物源区。该侵蚀盆地于中晚更新世闭合并演化成一个独立的沉积盆地。通过侵蚀盆地外流通道的复原指示阿尔金断裂自晚第三纪以来累积了 80~ 1 0 0 km的左旋位错。在此基础上 ,结合穿越断裂构造的 级区域水系形成的洪积裙宽度和主干河道沿断裂迹线的拐折长度 ,探讨了阿尔金断裂晚新生代左旋走滑位错量沿走向分布的特征 ,估算了左旋走滑速率  相似文献   

19.
Sea-level fluctuations in the terminal Eocene, Oligocene, and Neogene of the Eastern Paratethys are quantitatively assessed on the basis of facies and old coastlines traced on the northern platform shelf, levels of river valley incisions, and the study of seismic profiles. The first data massif allows the characterization and correlation of transgression stages in the history of the Eastern Paratethys. The greatest transgressions fall within the first half of the Late Eocene, mid-Early Oligocene, initial Late Oligocene, initial Early Miocene, the initial Tchokrakian, Karaganian and Sarmatian in the Middle Miocene, the middle and late Sarmatian and early Pontian in the Late Miocene, and the Akchagylian in the Caspian basin of the Pliocene. In contrast, the greatest incisions of northern rivers running from the platform allow us to establish the time and extent of the main declines in the base levels of the erosion. Maximal incisions date back to the terminal Eocene-initial Oligocene, terminal Solenovian time in the terminal Rupelian, the terminal Maikop in the Early Miocene, the terminal Sarmatian and middle Pontian in the Late Miocene, and the Early Pliocene in the Caspian basin. Large regressions also formed unconformity surfaces, traced on seismic profiles as erosion boundaries of several orders. The surfaces are confined to the Eocene/Oligocene boundary, middle and late Maikop, Sarmatian/Meotian boundary, middle Pontian, and terminal Miocene-initial Pliocene, as well as being traced even in the most deep-water basins. The synthesis of these data suggests a preliminary version for the curve of transgression-regression cyclicity. Its correlation with the eustatic curve shows their similarity only in the lower part-prior to the initial Middle Miocene, when Paratethys became a semi-closed basin.  相似文献   

20.
马关地区新近系小龙潭组分布于北东向新保寨断层形成的断陷盆地内,属于湖泊相碎屑沉积。笔者近期在该组中下部首次发现震积岩,其垂向序列特征较为清楚,为研究该地区古地震活动规律提供了新资料,填补了云南新近纪断陷盆地地震灾变事件记录的空白,具有重要的地质意义。  相似文献   

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