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1.
造山带与相邻盆地间物质的横向迁移   总被引:16,自引:1,他引:16  
本文以太行山隆起与相邻华北断陷盆地为例,论述了在大陆岩石圈中造山带与相邻断陷盆地在地球动力学机制上是相辅相成的对立统一体系。当软流圈受力产生波状起伏变形时,在软流圈和上地幔隆起上方,地壳发生减薄并裂陷;软流圈和上地幔拗陷上方,地壳变厚,由脉隆升。造山带遭受物理(化学)风化作用的产物被搬运至相邻断陷盆地,并以逆冲推覆岩片、拆离滑脱构造体系向盆地扩展。断陷盆地的中下地壳物质,则在地幔上隆形成的地幔位势差、密度差和盆地扩张力的共同驱动下,沿向造山带缓倾的拆离滑脱变形带,向山根蠕动流动,以补充因地幔拗陷和山脉隆升造成的重力亏损,从而达到岩石圈四维空间物质的动态调整。  相似文献   

2.
中国东部中新生代裂陷盆地与伸展山岭耦合机制   总被引:65,自引:5,他引:60  
刘和甫 《地学前缘》2000,7(4):477-486
中国东部中、新生代伸展构造系包括由松辽盆地、华北盆地和江汉盆地等构成的裂陷盆地 ,以及由大兴安岭、太行山及雪峰山等构成的伸展山岭。从大陆裂解和伸展构造动力学来看 ,主要存在底侵作用、对流作用和拆层作用 3种机制。因此裂陷盆地与伸展山岭耦合关系主要是深部壳幔作用在浅层的响应。  相似文献   

3.
李志强  杨波  韩自军  黄振  吴庆勋 《地球科学》2022,47(5):1652-1668
基于Advanced McKenzie地球动力学模型和Easy%RoDL化学动力学模型,建立了南黄海中-新生代(K13-Q)裂谷盆地的构造-热演化史,结合盆地深部壳幔结构、梳理周缘中-新生代板块汇聚与离散过程,讨论了该盆地低地热状态成因、成盆机制和烃源岩热演化.盆地地壳伸展系数约为1.22,岩石圈地幔伸展系数约为1.06;由裂陷期(K13-E2)至今,最高热流值仅由约76 mW/m2降低至约66 mW/m2,最高地温梯度仅由约37 ℃/km降低至约30 ℃/km,首次揭示低地热状态贯穿整个裂谷盆地发育阶段.低岩石圈地幔伸展系数、深部非镜像莫霍面分布、盆地发育阶段仅处于弧后远场拉张应力环境,均指示成盆过程中深部伸展上涌强度低,是导致其持续低地热状态的根本原因,深部热应力不是其主要成盆动力来源;依据高地壳伸展系数和控盆拆离断层演化,认为印支-燕山期先存逆冲断裂复活形成壳间拆离体系,并以简单剪切变形方式控制裂谷盆地发育,是其根本成盆机制;南、北部坳陷烃源岩主排烃期为三垛组二段沉积时期,自渐新世构造反转后热演化终止,古埋深和古地温场条件共同控制现今南、北部坳陷相同深度烃源岩热成熟度差异.   相似文献   

4.
渭河盆地是我国乃至世界上地裂缝最发育、灾害最严重的地区。基于渭河盆地深部构造模式,采用有限元数值分析方法,分析了上地幔上隆、中地壳流展和上地壳拉张3种深部构造作用下盆地浅表岩土介质的应力和变形响应特征,从而揭示了渭河盆地深部构造活动与该区域地裂缝群发之间的孕育关系。结果表明:上地幔的隆起和中地壳侧向流展形成了浅部拉张应力环境,这种效应与盆地周边块体运动形成的伸展引张构造应力场叠加,再附加断裂伸展倾滑形成的局部拉伸应力场构成了地裂缝形成的主要动力来源。  相似文献   

5.
利用地震资料、油气勘探资料分析了南海北部大陆边缘珠江口-琼东南新生代盆地断裂系统的时空差异及动力学成因机制.珠江口-琼东南盆地古近系裂陷构造层以NE向、近EW向基底正断层构成的伸展断裂系统的几何学、运动学沿着盆地走向有明显变化,盆地内部隐伏的区域性和局部的NW向断裂及相关构造变形带构成伸展断裂系统之间的构造变换带.在空间上,区域性的云开、松涛-松南等NW向构造变换带以西为NE-NEE向正断层构成的"非拆离"伸展断层系,以东为NE向正断层、近EW向正断层(走滑正断层)复合而成的拆离伸展断层系.在时间上,古近纪裂陷作用可划分为早(文昌组沉积期)、中(恩平组/崖城组沉积期)、晚(珠海组/陵水组沉积期)3个有明显差异的裂陷期.裂陷早期,盆地西部以平面式正断层控制的简单地堑、半地堑为主,伸展量相对较小,东部则以铲式正断层控制的复式地堑、半地堑为主,伸展量相对大,断层向深部收敛在中地壳韧性层构成拆离的伸展断层系统.裂陷中期,琼东南盆地、珠江口盆地西部断裂具有继承性活动特点,珠江口盆地东部发育NWW-EW向伸展断层,并向深层切割早期浅层拆离断层,形成深层拆离伸展断层系统,而沿着云开构造变换带发育反转构造.裂陷晚期,琼东南盆地、珠江口盆地西部断裂具有活动性减弱特点,琼东南盆地东部发育NWW-EW向伸展断层,形成深层拆离伸展断层系统,而沿着琼中央构造变换带发育反转、走滑构造.珠江口-琼东南盆地不同区段断裂系统及其构造演化的差异性受盆地基底先存构造、地壳及岩石圈结构及伸展量等多方面因素的影响,拆离伸展断层系统与发育NWW向"贯穿"断裂的基底构造薄弱带、现今地壳局部减薄带相关,南海扩展由东而西的迁移诱导北部大陆边缘块体沿着先存NW向深大断裂发生走滑旋转是导致变换构造带两侧差异伸展的动力学原因,应力场及岩石圈热结构变化是引起拆离断层深度变化的重要因素.   相似文献   

6.
华北裂陷盆地不同块体地壳结构及演化研究   总被引:22,自引:0,他引:22  
通过对华北裂陷盆地内不同块体的深地震测深资料处理 ,得到与构造演化过程相关的、不同性质块体的地壳结构特征。盆地隆起区块体地壳一般呈均匀成层 ,速度随深度逐层增加 ,保留了古大陆地壳块体的稳定结构特征 ;盆地坳陷区块体地壳松散巨厚的表层沉积、通常低速占主导的壳内构造、强反射的下地壳和高低速相间的薄互层壳 幔过渡带 ,反映了上地幔物质上隆、侵入、地壳增温、张裂等塑、脆性变形改造的新生地壳构造。讨论了这两类截然不同块体地壳构造的地球动力学演化及形成。裂陷区内中强地震的孕发和深源矿产、油气生贮存等都与这两类块体地壳结构、构造密切相关。  相似文献   

7.
毛云华  赵中贤  孙珍 《地球科学》2020,45(5):1622-1635
为揭示珠江口盆地西部陆缘伸展-减薄过程,进行盆地断裂构造样式识别、断层活动速率和一维空盆构造沉降定量计算和综合分析.珠江口盆地西部以铲式断层和拆离断层为主并继承性发育.张裂一幕断层活动和构造沉降集中于开平凹陷,最大速率分别达到239 m/myr和108.6 m/myr.张裂二幕断层活动和构造沉降向洋盆迁移,最大速率分别达到192 m/myr和210.7 m/myr.张裂一幕岩石圈减薄集中在开平凹陷,以地壳脆性薄化为主.张裂二幕减薄中心向洋盆迁移,岩石圈地幔可能发生了局部薄化和软流圈上涌,导致陆架和上陆坡区凹陷内部构造沉降减弱;洋陆过渡带处上地壳快速减薄,且薄化速度比下地壳快.对比西北次海盆南侧上地壳较厚及下地壳较薄或缺失的情况,推测西北次海盆在破裂前发生了不对称的单剪薄化.   相似文献   

8.
渤海湾新生代盆地的两种构造系统及其成因解释   总被引:47,自引:6,他引:47       下载免费PDF全文
漆家福 《中国地质》2004,31(1):15-22
渤海湾古近纪盆地可以划分为3个裂陷带和1个裂陷区,都分布在上地幔隆起部位。盆地构造变形可以分为伸展构造和走滑构造两个相对独立、相互关联的新生代构造系统。伸展卡句造由不同尺度的伸展断层和与伸展断层垂直或斜交的变换断层构成连锁断层系统,在盆地区具有分散的透人性特点,并控制着古近纪断陷的分布和演化。在伸展构造变形基础上叠加了3条北北东向—北东向右旋走滑断裂(带),后者及其伴生构造组成盆地中的呈带状展布的新生代走滑构造系统。伸展构造是一种“水平层状的”薄皮构造。正断层向深部收敛或终止于中地壳内的拆离断层面上。走滑构造是一种“垂直带状的”厚皮构造。浅层的走滑断层以多种方式并入到深断裂带中。这两种构造系统是盆地区新生代时期主动裂陷和被动裂陷两种作用机制的具体表现。  相似文献   

9.
青藏高原碰撞造山带:Ⅲ. 后碰撞伸展成矿作用   总被引:97,自引:20,他引:97  
“后碰撞”作为大陆碰撞造山作用的特定过程,以其重要的构造演化标示性特征和强烈的爆发式金属成矿作用,受到人们的高度重视。但涉及后碰撞的一系列重要地质问题,如后碰撞期的构造特征与演化历程、岩浆发育序列和岩石构造组合、伸展成矿作用与矿床系列组合等,尚未得到清楚完好的识别、理解和阐示。文章系统研究和总结了青藏高原后碰撞造山与成矿作用特征,提出了后碰撞伸展成矿作用的构造控制模型。研究表明,现今处于后碰撞阶段的青藏高原,中新世以来主要经历了两阶段发育历史。后碰撞早期阶段主要发生下地壳流动与上地壳缩短(>18Ma):下地壳塑性流动并向南挤出,在藏南地区形成EW向延伸的藏南拆离系(STD)和高喜马拉雅,上地壳强烈逆冲推覆,在拉萨地体发育EW向展布的逆冲断裂系;晚期阶段主要发生地壳伸展与裂陷(<18Ma):垂直碰撞带的EW向伸展,形成一系列横切青藏高原的NS向正断层系统(≤13·5Ma)及其围陷的裂谷系和裂陷盆地。后碰撞岩浆作用以形成钾质_超钾质火山岩、钾质埃达克岩、钾质钙碱性花岗岩与淡色花岗岩为特征,集中发育于冈底斯构造_岩浆带和藏南特提斯喜马拉雅。淡色花岗岩与藏南拆离构造有关,其他钾质_超钾质岩浆活动则与EW向地壳伸展有关。青藏高原后碰撞成矿作用强烈而复杂,主要形成斑岩型Cu矿、热液脉型Sb_Au矿、矽卡岩型和热液脉型Ag_Pb_Zn矿以及现代热泉型Cs_Au矿等重要矿床类型。斑岩型Cu矿及矽卡岩型多金属矿床形成于后碰撞伸展环境,岩浆起源于加厚的镁铁质新生下地壳;热液脉型Sb_Au矿发育于藏南拆离带及变质核杂岩周围,系中新世地热田浅成低温热液活动产物。热液脉型Ag_Pb_Zn矿主要产于拉萨地体内部的逆冲构造带内,与地壳流体的迁移汇聚过程有关。青藏高原后碰撞成矿作用在上地壳层次受3大构造系统控制,即①东西向伸展形成的近NS向正断层系统及裂谷裂陷带,②南北向地壳缩短形成的EW向展布的逆冲构造带和③EW向展布的拆离构造带,但在中下地壳/地幔层次上,则受中下地壳物质流动_挤出过程以及俯冲大陆板片断离_拆沉过程控制。  相似文献   

10.
安徽沿江中新生代盆地位于大别山造山带南缘,为先挤压、后伸展形成的叠合盆地,是探讨扬子板块陆内深俯冲—大别山造山带隆起与中、下扬子盆地沉降的耦合关系的理想场所。在早中生代,大别山为华南和华北大陆碰撞造山带,华南地壳向深处俯冲并承受超高压变质作用,超高压变质岩不断向上折返,沿江坳陷具有前陆盆地性质,盆地充填有晚三叠世—中侏罗世磨拉石层序;在晚中生代,在中国东部整体的拉张背景下,大别山变质带完全折返上隆,处于变质核杂岩隆升状态,而沿江坳陷具有裂陷盆地性质,充填有晚侏罗世—早白垩世、晚白垩世—古近纪两个红色碎屑构造层序,起因于地壳拆沉而产生的均衡隆升和伸展断陷的构造耦合。  相似文献   

11.
新疆博格达山分段及深浅构造转换关系   总被引:15,自引:1,他引:15  
研究表明 ,天山及邻区自中生代以来一直处于热衰减状态 ,博格达山新生代再造山具有“冷隆升”性 ,盆山边界断裂多限于上地壳内 ,而非直通中地壳低速体甚至上地幔的“深大断裂”。造山带内的韧性剪切带是在古生代形成的 ,而不是再造山期的断裂 ,它对造山带隆升及盆山耦合无贡献 ,博格达山的隆升为复式背斜构造所支持。博格达山与准东的关系为背斜北翼与盆地平缓基底构成的挠曲构造 ,而不是被深大断裂分隔的断块。博格达山具有独特鲜明的分段性 ,造山带的两个弧形构造与新生代再生前陆盆地构成独特的“斜方对称”分布样式。以板条观点为指导 ,从盆山单元的平面配置关系和深浅构造转换关系入手 ,探讨了博格达山板内造山阶段的几何学和运动学分段性的成因 ,构建了盆山耦合模式  相似文献   

12.
Field investigation and seismic section explanation showed that the Longmen Mountain Thrust Belt has obvious differential deformation: zonation, segmentation and stratification. Zonation means that, from NW to NE, the Longmen Mountain Thrust Belt can be divided into the Songpan-Garzê Tectonic Belt, ductile deformation belt, base involved thrust belt, frontal fold-thrust belt, and foreland depression. Segmentation means that it can be divided into five segments from north to south: the northern segment, the Anxian Transfer Zone, the center segment, the Guanxian Transfer Zone and the southern segment. Stratification means that the detachment layers partition the structural styles in profile. The detachment layers in the Longmen Mountain Thrust Belt can be classified into three categories: the deep-level detachment layers, including the crust-mantle system detachment layer, intracrustal detachment layer, and Presinian system basal detachment layer; the middle-level detachment layers, including Cambrian-Ordovician detachment layer, Silurian detachment layer, etc.; and shallow-level detachment layers, including Upper Triassic Xujiahe Formation detachment layer and the Jurassic detachment layers. The multi-level detachment layers have a very important effect on the shaping and evolution of Longmen Mountain Thrust Belt.  相似文献   

13.
The Louzidian metamorphic core complex (LMCC) in southern Chifeng is located on the northern margin of the North China craton. Structural analyses of the LMCC and its extensional detachment system indicate that the LMCC experienced two-stage extension. The ductile regime experienced top-to-northeast shearing extension and the brittle detachment fault underwent top-down-outwards slipping. Between these two stages, a semi-ductile regime recorded the transition from ductile to brittle. The hanging wall of the detachment fault is similar to those classic supradetachment basins in western North America. Analyses of provenance and paleocurrent directions in the basins show that there were two filling stages. In the early stage, materials came from the southwest margin of the basin and the hanging wall of the detachment system and were transported from southwest to northeast; while in the late stage, deposits were derived from the footwall of the detachment fault and transported outwards to the two sides of the  相似文献   

14.
松辽盆地徐家围子地区深反射结构及其盆地动力学意义   总被引:6,自引:0,他引:6  
通过松辽盆地徐家围子地区深反射地震剖面与世界典型深反射剖面对比,以岩石圈流变学模型为基础,结合浅层钻探资料可以发现,松辽盆地与世界典型裂谷盆地有相似的深反射特征,即层状结构十分明显。岩石圈横向分段性是另一个显著特点,由中下地壳挤压"断裂带"和由热流底辟体组成的"岩浆底辟带"分开。下部块段控制上部层状构造体系的形成与演化过程。由此证明,裂谷演化过程中地幔上涌是主要动力。地壳"三明治结构"和热流底辟体的发育表明,盆地不仅有高热流的地质条件,而且深部存在无机物质"储库"与通道。  相似文献   

15.
The Bohai Bay Basin is a Cenozoic extensional basin along the eastern aspect of Asia. Whether the Bohai Bay Basin is a pull-apart or rift basin is controversial. The Bohai Bay Basin exhibits a high density of extensional faults and records destruction of the North China Craton. Many structural analyses have been performed on the Bohai Bay Basin, especially the Tan-L and Taihang Mountain fault systems which control its boundary. The initial deposition of Kongdian Formation was mainly distributed along the boundary of Bohai Bay Basin during the Palaeocene–early Eocene. Subsequently, tectonic activity migrated toward the interior of the basin during deposition of Shahejie Formation in the middle Eocene–early Oligocene. Bohai Bay Basin crust was thickened in early Mesozoic time and has thinned since late Mesozoic time. The crustal strength profile of Bohai Bay Basin is characterized by very weak lower crust, which differs from that of adjacent crust. In regard to the crustal structure, lithospheric thickness, and extensional style, an alternative rift model is proposed. Initial Bohai Bay Basin rifts were characterized by metamorphic core complexes affecting the North China Craton, which reflects collapse of parts of the early Mesozoic intra-plate orogen. Furthermore, westward subduction of the Palaeo-Pacific Plate led to upwelling of asthenosphere mantle. Persistent upwelling of mantle decreased the strength of lower crust and led to the warm heat-flow regime and generation of a lower crustal fluid layer and wide rifting. Outward flow of ductile lower crust following late Cretaceous extension thinned the lower crust and generated the overall sag appearance of the basin in early Cenozoic time. The model supports a model whereby a wide rift narrows with time. For the Bohai Bay Basin, extension and strike-slip faulting were two independent deformation systems superimposed on each other.  相似文献   

16.
刘德来 《地质论评》1998,44(2):130-135
松辽盆地存在裂谷期前火山岩,之后上地壳脆性伸展发育半地堑裂谷盆地。裂谷期前火山岩近水平展布于基底之上,裂谷期,沉则分布于半地暂内,两者属于不同构造层。  相似文献   

17.
Located at the center of the Eurasian continent and accommodating as much as 44% of the present crustal shortening between India and Siberia, the Tianshan orogenic belt (TOB) is one of the youngest (<20 Ma) and highest (elevation>7000 m) orogenic belts in the world. It provides a natural laboratory for examining the processes of intracontinental deformation. In recent years, wide angle seismic reflection/refraction profiling and magnetotelluric sounding surveys have been carried out along a geoscience transect which extends northeastward from Xayar at the northern margin of the Tarim basin (TB), through the Tianshan orogenic belt and the Junggar basin (JB), to Burjing at the southern piedmont of the Altay Mountain. We have also obtained the 2D density structure of the crust and upper mantle of this area by using the Bouguer anomaly data of Northwestern Xinjiang. With these surveys, we attempt to image the 2D velocity and the 2D electric structure of the crust and upper mantle beneath the Tianshan orogenic belt and the Junggar basin. In order to obtain the small-scale structure of the crust–mantle transitional zone of the study area, the wavelet transform method is applied to the seismic wide angle reflection/refraction data. Combining our survey results with heat flow and other geological data, we propose a model that interprets the deep processes beneath the Tianshan orogenic belt and the Junggar basin.Located between the Tarim basin and the Junggar basin, the Tianshan orogenic belt is a block with relatively low velocity, low density, and partially high resistivity. It is tectonically a shortening zone under lateral compression. A detachment exists in the upper crust at the northern margin of the Tarim basin. Its lower part of the upper crust intruded into the lower part of the upper and the middle crust of the Tianshan, near the Korla fault; its middle crust intruded into the lower crust of the Tianshan; and its lower crust and lithospheric mantle subducted into the upper mantle of the Tianshan. In these processes, the mass of the lower crust of the Tarim basin was carried down to the upper mantle beneath the Tianshan, forming a 20-km-thick complex crust–mantle transitional zone composed of seven thin layers with a lower than average velocity. The thrusting and folding of the sedimentary cover, the intrusive layer in the upper and middle crust, and the mass added by the subduction of the Tarim basin into the upper mantle of the Tianshan are probably responsible for the crustal thickening of the Tianshan. Due to the important mass deficiency in the crust and the upper mantle of the Tianshan, buoyancy must occur and lead to rapid ascent of the Tianshan.The episodic tectonic uplift of the Tianshan and tectonic subsidence of the Junggar basin are closely related to the evolution of the Paleozoic, Mesozoic, and Cenozoic Tethys.  相似文献   

18.
滇西新构造运动时期陆内伸展作用   总被引:3,自引:0,他引:3  
颜丹平  赵其强 《现代地质》1993,7(3):303-311
上新世一第四纪为滇西的新构造运动时期,代表了本区喜马拉雅造山期后的伸展作用时间,除形成区域性的角度不整合外,还形成了一系列小规模的转换拉张盆地,并产生大规模玄武岩浆喷发。洱源—遮放地震深度-速度剖面的P波速度,显示本区岩石圈具4层结构,即上部壳层、韧性壳层、下部固态壳层和地幔岩石圈。各层对比表明,地幔隆起导致热隆伸展作用及热流上涌,并在壳幔界面产生局部混熔,下部壳层发生区域深变质作用;韧性壳层产生强烈纯剪流动,上部壳层则以脆性—脆韧性走滑断层及层圈式滑脱被动地调整;地壳均衡作用不断地调整地幔隆起与地壳厚度的关系。  相似文献   

19.
The extensional architecture of the Northern Carnarvon Basin can be explained in terms of changes in lithospheric rheology during multiphase extension and lower crustal flow. Low‐angle detachments, while playing a minor role, are not considered to have been the primary mechanism for extension as suggested in previous models. Early extension (Cambrian‐Ordovician) in the Northern Carnarvon Basin is characterised by low‐angle detachment structures of limited regional extent. These structures have a spatial association with a Proterozoic mobile belt on the margin of the Pilbara Craton. Thermo‐mechanical conditions in the mobile belt may have predisposed the highly deformed crust to thin‐skinned extension and detachment development. Permo‐Carboniferous extension generated an extensive wide rift basin, suggesting ductile rheologies associated with intermediate lithospheric temperatures and crustal thickness. Thick Upper Permian to Upper Triassic post‐rift sequences and marked thinning of the lower crust occurred in association with only a small amount of extension in the upper crust. This observation can be reconciled by considering outward lower crustal flow, from beneath the basin towards the basin margin, following extension. Strong mid‐crustal reflectors, which occur over large areas of the Northern Carnarvon Basin, probably represent a boundary between flow and non‐flow regimes rather than detachment fault surfaces as in previous models. Crustal thinning and thermal decay following Permo‐Carboniferous extension contributed to the increased strength and brittle behaviour of the lithosphere. Consequently, Late Triassic to Early Cretaceous extension resulted in the development of far more localised narrow rift systems on the margins of the preceding wide rift basin. Diapiric intrusions are associated with the narrow rift basin development, resulting from either remobilisation of ductile lower crustal rock or the initial formation of sea‐floor spreading centres.  相似文献   

20.
华北中地壳滑脱面及其活动分区的天然地震研究   总被引:2,自引:0,他引:2  
华北的上部地壳以脆性变形为主,下部地壳以韧性伸展为主,两种截然不同的变形状态却有着相同伸展方向、相同伸展量,使得上下地壳之间因差异运动而形成一个区域性界面——华北中地壳顶部滑脱面。以这个滑脱面为底边界发育起来的上地壳的结构构造,是控制华北盆山格局、基底构造发育形成的直接原因。华北构造是地壳脆性域"薄皮"伸展变形。滑脱面在华北基本上是连续分布的,呈断坡—断坪状,南北分带、东西分片,深度为12~22 km,一般为15~18 km,可识别出11个层状拆离区;上地壳以断块方式变形,断块的位置、形态及活动方式受滑脱面的断坡—断坪产状、与滑脱方向垂直的断叉线和与滑脱方向平行的调整断裂的组合控制,可识别出3个主裂陷轴、2条主断叉线和3条主调整断裂带。  相似文献   

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