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1.
华南中部中新元古代造山带构造演化探讨   总被引:3,自引:0,他引:3  
华南中部中新元古代造山带可以划分为5个地质构造单元:乐平-歙县构造混杂岩亚带、万年海相-滨海相沉积-火山沉积建造、赣东北蛇绿混杂岩亚带、怀玉火山-火山碎屑岩系、东乡-龙游混杂岩亚带。通过对不同构造单元形成大地构造环境分析,认为它们分别形成于火山弧-弧后盆地、弧间盆地、大洋岛弧、洋中脊、火山岛弧、弧前盆地等大地构造环境;华南中部中新元古代造山带属陆-弧-弧-陆碰撞造山带,发育在汇聚型板块边缘地带,古洋盆为一个多岛洋体系。中元古代末期(约1024Ma)古华南多岛洋开始关闭,大约在850Ma左右,整个古华南多岛洋最终关闭。  相似文献   

2.
评述了板块构造"登陆"以来的多岛洋构造、板内造山多岛海模式以及多岛弧盆系构造在造山带研究中的重要性.这3种模式在造山带的研究中均起到了重要的作用,深化了对造山带的认识.多岛弧盆系构造是认识造山带演化的切入点,能够全面解剖造山带的物质组成、结构构造和演化历史.基于多岛弧盆系的造山模式认为,弧后萎缩作用和弧前增生作用是造山过程的普遍现象,引起了弧-弧、弧-陆碰撞,这两种作用在造山带的形成演化过程起到了重要作用.多岛弧盆系的识别不但在造山带的研究中具有重要意义,而且对于分析前寒武纪大陆克拉通基底同样具有重要意义,前寒武纪克拉通的形成与弧前增生和弧后萎缩作用密不可分,多岛弧盆系构造的深入研究对前寒武纪大陆克拉通基底的研究具有重要启示.  相似文献   

3.
西藏东部昌都地区三叠纪岩相古地理   总被引:3,自引:0,他引:3       下载免费PDF全文
昌都地区三叠纪岩相古地理演化可划分为5个阶段,各阶段的古构造与古地理格架既有继承性,又有差异性。早三叠世承袭了晚二叠世末期的古地理,古陆面积扩大,海域沉积只占据狭窄部分,并且从这个时期起,已展现出弧-盆体系中的岛、海格架雏形;中三叠世沿袭了早三叠世弧-盆体系,弧内盆地发生强烈拗陷,堆积了巨厚的多物源浊积岩与幕式弧火山岩;晚三叠世卡尼早期因东侧金沙江洋的消亡,发育磨拉石沉积,仅在局部地区表现为陆棚→斜坡→盆地沉积;晚三叠世诺利早期,全区范围内发生一次规模空前的海侵,碳酸盐沉积向东西两侧古陆超覆,弧-盆区岛海格局从此消失;晚三叠世诺利晚期以后,海水自东向西退出,海陆过渡相与滨岸陆屑沉积广泛覆盖全区。研究表明,三叠纪时昌都地区曾经存在着一个类似于现今印度尼西亚岛、海的古地理格局。  相似文献   

4.
台湾岛以南海域新近纪的弧—陆碰撞造山作用   总被引:11,自引:4,他引:11       下载免费PDF全文
台湾岛以南海域(台南滨海)弧—陆碰撞带位于欧亚板块、菲律宾海板块和南海的结合部位,是新近纪弧—陆碰撞研究的理想场所。本文通过对南海973航次在该区域的多道地震剖面的解释,认为台南滨海弧—陆碰撞带增生的火山—沉积楔由恒春海脊和高屏斜坡两部分组成,前者是菲律宾海板块的增生楔,后者是欧亚板块的增生楔,在增生楔体和火山弧之间是作为弧前盆地的北吕宋海槽。自中新世中期以来,南海洋壳开始沿着马尼拉海沟向菲律宾海板块俯冲,形成活动大陆边缘的增生部分——恒春海脊;与此同时菲律宾海板块开始向北西方向移动,前缘的吕宋岛弧距今6.5Ma以来朝着亚洲陆缘斜向汇聚,形成了被动大陆边缘的增生部分——高屏斜坡。由于菲律宾海板块和欧亚板块之间的斜向汇聚,弧—陆碰撞具有穿时性,造山作用首先发生在台湾岛的北部,然后向南部及台南滨海发展。  相似文献   

5.
台湾造山带是中新世晚期以来相邻菲律宾海板块往北西方向移动,导致北吕宋岛弧系统及弧前增生楔与欧亚大陆边缘斜碰撞形成的。目前该造山带仍在活动,虽然规模很小,但形成了多数大型碰撞造山带中的所有构造单元,是研究年轻造山系统的理想野外实验室,为理解西太平洋弧-陆碰撞过程和边缘海演化提供了一个独特的窗口。本文总结了二十一世纪以来对台湾造山带的诸多研究进展,讨论了其构造单元划分及演化过程。我们将台湾造山带重新划分为6个构造单元,由西至东分依次为:(1)西部前陆盆地;(2)中央山脉褶皱逆冲带;(3)太鲁阁带;(4)玉里-利吉蛇绿混杂岩带;(5)纵谷磨拉石盆地;(6)海岸山脉岛弧系统。其中,西部前陆盆地为6.5Ma以来伴随台湾造山带的隆升剥蚀形成沉积盆地。中央山脉褶皱逆冲带为新生代(57~5.3Ma)欧亚大陆东缘伸展盆地沉积物由于弧-陆碰撞受褶皱、逆冲及变质作用改造形成的。太鲁阁带是造山带中的古老陆块,主要记录中生代古太平洋俯冲在欧亚大陆活动边缘形成的岩浆、沉积和变质岩作用。玉里-利吉蛇绿混杂岩带和海岸山脉岛弧系统分别为中新世中期(~18Ma)以来南中国海板块向菲律宾海板块之下俯冲形成的岛弧和弧前增生楔,其中玉里混杂岩中有典型低温高压变质作用记录,变质年龄为11~9Ma;岛弧火山作用的主要时限为9.2~4.2Ma。纵谷磨拉石盆地记录1.1Ma以来的山间盆地沉积。台湾造山带的构造演化可划分为4个阶段:(a)古太平洋板块俯冲与欧亚大陆边缘增生阶段(200~60Ma);(b)欧亚大陆东缘伸展和南中国海扩张阶段(60~18Ma);(c)南中国海俯冲阶段(18~4Ma);(d)弧-陆碰撞阶段(<6Ma)。台湾弧-陆碰撞造山带是一个特殊案例,其弧-陆碰撞并不伴随着弧-陆之间的洋盆消亡,而是由于北吕宋岛弧及弧前增生楔伴随菲律宾海板块运动向西北方走滑,仰冲到欧亚大陆边缘,形成现今的台湾造山带。  相似文献   

6.
江南中、新元古代岛弧的运动学和动力学   总被引:43,自引:1,他引:43  
自经70年代作者等发表江南中-新元古代岛弧构造观点以来,这一地区已经在80年代后期和90年代成为我国大地构造研究热点之一。大量新资料支持以下的古板块构造演化模式,即古华南洋壳中元古代13(17)~9.8亿年时向北(西北)俯冲于扬子板块东南边缘之下,形成江南火山岛弧和弧后盆地,在东北段是皖-浙-赣火山岛弧和樟树墩-伏川弧后盆地;新元古代9.8~7.7亿年时发生了陈蔡弧(浙东地体)与皖-浙-赣弧的弧-弧碰撞造山作用,并导致樟树墩-伏川边缘海的崩塌和陆-弧弧后碰撞造山过程。江南古岛弧带经历了多次的后期构造变形。  相似文献   

7.
西南三江地区造山演化过程及成矿时空分布   总被引:12,自引:0,他引:12  
骆耀南  俞如龙 《地球学报》2002,23(5):417-422
三江地区单凭“一次造山”是难以圆满解释的,在此试以“多次造山”和“多期成矿”的思路作出合理的说明。晚古生代-中生代早期为多岛海造山阶段,羌塘弧、江达弧和临沧弧应为前锋弧,其后由一系列弧 后盆地和岛弧或残余弧(微大陆)组成。中生代中一晚期为陆内俯冲造山阶段,推测金沙江带、哀牢山带和龙门山-锦屏山带为俯冲主边界,从而形成该区燕山期重熔型花岗岩带,并控制相应矿产的分布特性。新生代陆内转换造山阶段造成具特征的构造-岩浆-成矿带,具有生成大型或超大型矿床的潜力。  相似文献   

8.
西南三江地区造山演化过程及成矿时空分布   总被引:8,自引:0,他引:8  
骆耀南  俞如龙 《矿物岩石》2001,21(3):153-159
三江地区单凭“一次造山”是难以圆满解释的。本文试以“多次造山”多期成矿”的思路作出合理说明。晚古生代-中生代早期多岛海造山阶段,羌塘弧、江达弧和临沧弧应为前锋弧,其后由一系列弧后盆地和岛弧或残余弧(或微大陆)组成。中生代中-晚期为陆内俯冲造山阶段,推测金沙江带、哀牢山带和龙门山-锦屏山带为俯冲主边界,从而形成本区燕山期重熔型花岗岩带,控制相应矿产的分布特征。新生代陆内转换造山阶段,造成特征的构造-岩浆-成矿带,具有生成大型或超大型矿床的潜力。  相似文献   

9.
华北地块南部晚古生代—三叠纪盆山耦合关系   总被引:9,自引:0,他引:9       下载免费PDF全文
华北地块南部的晚古生代至中生代初期发育有多种类型的沉积盆地,其形成演化直接受控于秦岭造山带的主造山作用过程,泥盆纪-石炭纪是岭与华北地块的点接触碰撞时期,古秦岭洋和二郎坪弧后盆地同期逐步消亡,深化为陆壳基础上的残余海盆地及残余弧后盆地,二叠为面接触碰撞阶段,豫西小秦岭岭段首先隆升,成为向北的物源区,在商丹-北淮阳主缝合带及其弧后残余盆地消亡的同时,华北地块南部形成盆地,并成为旱二叠世华北陆表海的沉积中心,秦岭与华北地块全面碰撞发生于三叠纪,在造山变质变形广泛活动的背景下,华北地块则形成了统一的大型坳陷型盆地。  相似文献   

10.
甘肃北山造山带类型及基本特征   总被引:30,自引:5,他引:30  
北山造山带经历多期次、多阶段的板块裂解-俯冲-碰撞-拼合的复杂地质演化历程,具多旋回复合造山的特色。通过对造山带构造单元的建立、古板块重建、原型盆地恢复、造山带结构、构造特征及造山机制和模式的研究,确定北山造山带类型为陆-增生弧碰撞造山带。  相似文献   

11.
The Jinshajiang orogenic belt (JOB) of southwestern China, located along the eastern margin of the Himalayan–Tibetan orogen, includes a collage of continental blocks joined by Paleozoic ophiolitic sutures and Permian volcanic arcs. Three major tectonic stages are recognized based on the volcanic–sedimentary sequence and geochemistry of volcanic rocks in the belt. Westward subduction of the Paleozoic Jinshajiang oceanic plate at the end of Permian resulted in the formation of the Chubarong–Dongzhulin intra-oceanic arc and Jamda–Weixi volcanic arc on the eastern margin of the Changdu continental block. Collision between the volcanic arcs and the Yangtze continent block during Early–Middle Triassic caused the closing of the Jinshajiang oceanic basin and the eruption of high-Si and -Al potassic rhyolitic rocks along the Permian volcanic arc. Slab breakoff or mountain-root delamination under this orogenic belt led to post-collisional crustal extension at the end of the Triassic, forming a series of rift basins on this continental margin arc. Significant potential for VHMS deposits occurs in the submarine volcanic districts of the JOB. Mesozoic VHMS deposits occur in the post-collisional extension environment and cluster in the Late Triassic rift basins.  相似文献   

12.
兰坪中新生代沉积盆地演化   总被引:28,自引:0,他引:28  
牟传龙  王剑 《矿物岩石》1999,19(3):30-36
兰坪中新生代沉积盆地形成和演化与金沙江洋的俯消减及洋陆转换过程密切相关,记录了其盆-山转换过程,早二叠世晚期-晚二叠世时期,由于金沙江洋的俯冲消减,形成了金沙江弧-盆系的空间配置,兰坪地区成为弧后盆地,早中三叠世,金沙江弧-盆系及东西两侧的昌都-兰坪陆块和中咱-中甸陆块的构造沉积式样发生大的转米,开始了兰坪中新生代盆-山转换历史,由于弧陆碰撞作用,使得兰坪分国地由弧后盆地转化成弧后前陆舅地,盆地中  相似文献   

13.
The Altaids are an orogenic collage of Neoproterozoic–Paleozoic rocks located in the center of Eurasia. This collage consists of only three oroclinally bent Neoproterozoic–Early Paleozoic magmatic arcs (Kipchak, Tuva–Mongol, and Mugodzhar–Rudny Altai), separated by sutures of their former backarc basins, which were stitched by new generations of overlapping magmatic arcs. In addition, the Altaids host accreted fragments of the Neoproterozoic to Early Paleozoic oceanic island chains and Neoproterozoic to Cenozoic plume-related magmatic rocks superimposed on the accreted fragments. All these assemblages host important, many world-class, Late Proterozoic to Early Mesozoic gold, copper–molybdenum, lead–zinc, nickel and other deposits of various types.In the Late Proterozoic, during breakup of the supercontinent Rodinia, the Kipchak and Tuva–Mongol magmatic arcs were rifted off Eastern Europe–Siberia and Laurentia to produce oceanic backarc basins. In the Late Ordovician, the Siberian craton began its clockwise rotation with respect to Eastern Europe and this coincides with the beginning of formation of the Mugodzhar–Rudny Altai arc behind the Kipchak arc. These earlier arcs produced mostly Cu–Pb–Zn VMS deposits, although some important intrusion-related orogenic Au deposits formed during arc–arc collision events in the Middle Cambrian and Late Ordovician.The clockwise rotation of Siberia continued through the Paleozoic until the Early Permian producing several episodes of oroclinal bending, strike–slip duplication and reorganization of the magmatic arcs to produce the overlapping Kazakh–Mongol and Zharma-Saur–Valerianov–Beltau-Kurama arcs that welded the extinct Kipchak and Tuva–Mongol arcs. This resulted in amalgamation of the western portion of the Altaid orogenic collage in the Late Paleozoic. Its eastern portion amalgamated only in the early Mesozoic and was overlapped by the Transbaikal magmatic arc, which developed in response to subduction of the oceanic crust of the Paleo-Pacific Ocean. Several world-class Cu–(Mo)-porphyry, Cu–Pb–Zn VMS and intrusion-related Au mineral camps, which formed in the Altaids at this stage, coincided with the episodes of plate reorganization and oroclinal bending of magmatic arcs. Major Pb–Zn and Cu sedimentary rock-hosted deposits of Kazakhstan and Central Asia formed in backarc rifts, which developed on the earlier amalgamated fragments. Major orogenic gold deposits are intrusion-related deposits, often occurring within black shale-bearing sutured backarc basins with oceanic crust.After amalgamation of the western Altaids, this part of the collage and adjacent cratons were affected by the Siberian superplume, which ascended at the Permian–Triassic transition. This plume-related magmatism produced various deposits, such as famous Ni–Cu–PGE deposits of Norilsk in the northwest of the Siberian craton.In the early Mesozoic, the eastern Altaids were oroclinally bent together with the overlapping Transbaikal magmatic arc in response to the northward migration and anti-clockwise rotation of the North China craton. The following collision of the eastern portion of the Altaid collage with the Siberian craton formed the Mongol–Okhotsk suture zone, which still links the accretionary wedges of central Mongolia and Circum-Pacific belts. In the late Mesozoic, a system of continent-scale conjugate northwest-trending and northeast-trending strike–slip faults developed in response to the southward propagation of the Siberian craton with subsequent post-mineral offset of some metallogenic belts for as much as 70–400 km, possibly in response to spreading in the Canadian basin. India–Asia collision rejuvenated some of these faults and generated a system of impact rifts.  相似文献   

14.
沉积大地构造相是反映陆块区、洋区、洋与陆块之间的陆缘区(活动和被动陆缘)形成演变过程中, 在各个演化阶段及其特定的大地构造环境中形成的沉积盆地及其充填序列, 是表达大陆岩石圈板块在离散、汇聚、碰撞、走滑等动力学过程中形成的不同类型沉积盆地及其综合产物, 具有恢复陆块区和造山系形成演化的功能.为从大地构造环境和沉积盆地分析角度系统剖析中国大陆新元古代以来纷繁复杂的大陆增生历程, 根据中国大陆形成演化特点, 提出一套沉积大地构造相(沉积盆地类型)划分方案, 并简述其大地构造环境鉴别标志.该划分方案分4级(相系、大相、相和亚相): 一级为陆块区(含地块)相系和造山系相系.陆块区按构造古地理位置和区域构造应力场进一步划分出二级和三级单元.造山系由弧盆系、叠接带和对接带大相构成, 是岩石圈板块大规模水平运动, 在洋陆转换过程中岛弧增生、弧-弧碰撞、弧-陆碰撞、陆-陆碰撞和陆内俯冲的产物, 常表现为复杂岩石组成、复杂褶皱和断裂构造的巨大山系; 叠接带大相主要由弧-弧碰撞和弧-陆碰撞时, 在陆缘形成的洋-陆转化增生带, 是软碰撞产物; 对接带大相由陆-陆碰撞形成, 是硬碰撞产物.在造山系的弧盆系、叠接带和对接带大相之下, 按洋盆演化-洋陆转化历程所产生的系列构造古地理环境和建造, 进一步划分出洋盆、弧前盆地、弧间盆地、弧后盆地、残余海盆、周缘前陆盆地、弧后前陆盆地等大地构造相单元.   相似文献   

15.
藏东南碧土带瓦浦组火山岩形成的大地构造环境   总被引:6,自引:3,他引:3  
首次对藏东南原称的瓦浦组进行系统的岩石化学研究 ,发现它包括了两套不同时代和大地构造环境下形成的火山岩。瓦浦组火山熔岩由下部的玄武岩夹玄武安山岩和上部的流纹岩组成 ,是古特提斯洋盆中的洋岛火山岩 ,其时代初定为早二叠世—晚二叠世早期。在觉马—巴格和扎西所见的岩层是以钙质浊积岩为主的火山 -沉积岩系 ,火山岩为岛弧拉斑玄武岩 ,属晚三叠世早期活动大陆边缘产物。上述发现为碧土带是复杂的造山带拼贴体、古特提斯主洋盆是开阔的多岛洋和晚三叠世活动大陆边缘可能属马里亚纳型提供了重要证据  相似文献   

16.
《Gondwana Research》2013,24(4):1402-1428
The formation of collisional orogens is a prominent feature in convergent plate margins. It is generally a complex process involving multistage tectonism of compression and extension due to continental subduction and collision. The Paleozoic convergence between the South China Block (SCB) and the North China Block (NCB) is associated with a series of tectonic processes such as oceanic subduction, terrane accretion and continental collision, resulting in the Qinling–Tongbai–Hong'an–Dabie–Sulu orogenic belt. While the arc–continent collision orogeny is significant during the Paleozoic in the Qinling–Tongbai–Hong'an orogens of central China, the continent–continent collision orogeny is prominent during the early Mesozoic in the Dabie–Sulu orogens of east-central China. This article presents an overview of regional geology, geochronology and geochemistry for the composite orogenic belt. The Qinling–Tongbai–Hong'an orogens exhibit the early Paleozoic HP–UHP metamorphism, the Carboniferous HP metamorphism and the Paleozoic arc-type magmatism, but the three tectonothermal events are absent in the Dabie–Sulu orogens. The Triassic UHP metamorphism is prominent in the Dabie–Sulu orogens, but it is absent in the Qinling–Tongbai orogens. The Hong'an orogen records both the HP and UHP metamorphism of Triassic age, and collided continental margins contain both the juvenile and ancient crustal rocks. So do in the Qinling and Tongbai orogens. In contrast, only ancient crustal rocks were involved in the UHP metamorphism in the Dabie–Sulu orogenic belt, without involvement of the juvenile arc crust. On the other hand, the deformed and low-grade metamorphosed accretionary wedge was developed on the passive continental margin during subduction in the late Permian to early Triassic along the northern margin of the Dabie–Sulu orogenic belt, and it was developed on the passive oceanic margin during subduction in the early Paleozoic along the northern margin of the Qinling orogen.Three episodes of arc–continent collision are suggested to occur during the Paleozoic continental convergence between the SCB and NCB. The first episode of arc–continent collision is caused by northward subduction of the North Qinling unit beneath the Erlangping unit, resulting in UHP metamorphism at ca. 480–490 Ma and the accretion of the North Qinling unit to the NCB. The second episode of arc–continent collision is caused by northward subduction of the Prototethyan oceanic crust beneath an Andes-type continental arc, leading to granulite-facies metamorphism at ca. 420–430 Ma and the accretion of the Shangdan arc terrane to the NCB and reworking of the North Qinling, Erlangping and Kuanping units. The third episode of arc–continent collision is caused by northward subduction of the Paleotethyan oceanic crust, resulting in the HP eclogite-facies metamorphism at ca. 310 Ma in the Hong'an orogen and low-P metamorphism in the Qinling–Tongbai orogens as well as crustal accretion to the NCB. The closure of backarc basins is also associated with the arc–continent collision processes, with the possible cause for granulite-facies metamorphism. The massive continental subduction of the SCB beneath the NCB took place in the Triassic with the final continent–continent collision and UHP metamorphism at ca. 225–240 Ma. Therefore, the Qinling–Tongbai–Hong'an–Dabie–Sulu orogenic belt records the development of plate tectonics from oceanic subduction and arc-type magmatism to arc–continent and continent–continent collision.  相似文献   

17.
造山的高原——青藏高原巨型造山拼贴体和造山类型   总被引:29,自引:0,他引:29  
青藏高原是一个巨型碰撞造山拼贴体,它的形成与始特提斯、古特提斯和新特提斯洋盆的先后开启、消减、闭合以及古大陆的裂解、诸地体的移动、会聚和拼合有关。造山类型形成于不同时期海(洋)盆俯冲、地体碰撞和陆内会聚的不同阶段。多地体/多岛弧/多弧前海的构架表明,诸多的俯冲型山链可以产生在地体边界的活动陆缘一侧,古特提斯南、北两洋盆的双向俯冲构筑了双向俯冲型山链;碰撞型山链由于地体边界与块体驱动方向的几何学关系形成“正向碰撞型”和“斜向碰撞型”造山类型。“斜向碰撞型山链”与走滑断裂的形成、规模及其运动学直接相关。50~60Ma印度/亚洲碰撞不仅形成青藏高原造山拼贴体的最后成员———喜马拉雅山链,而且在拼贴体的北缘由于陆内俯冲作用使早期形成的山链在整修后又一次崛起。青藏高原的周缘山链铸成屏障与外侧的克拉通相隔。青藏高原巨型碰撞造山拼贴体的形成是亚洲大陆自北往南的增生和造山迁移的生长结果,其所反映的活动长期性、非原地性、俯冲/碰撞/陆内造山类型的多样性、碰撞造山的多期性以及造山的复合叠置性比世界上任何一个复合山链(或造山拼贴体)来得复杂、多彩。  相似文献   

18.
Genesis of the so‐called Bentong‐Raub Suture of Malay Peninsula does not fit to the model of subduction‐related collision. It has evolved from transpression tectonics resulting closure and exhumation of the inland basin which underwent extensive back‐arc extension during Triassic. Crust having similar thickness (average ~35 km) below entire Malay Peninsula nagate collision of two separate continental blocks rather supports single continental block that collided with South China continental block during Permo‐Triassic. Westward subduction of intervening sea (Proto South China Sea) below Malay Peninsula resulted in widespread I‐ and S‐Type granitization and volcanism in the back‐arc basins during Triassic. Extensive occurrence of Permo‐Triassic Pahang volcanics of predominantly rhyolitic tuff suggest its derivation from back‐arc extension. Back‐arc extension, basin development and sedimentation of the central belt of the peninsula continued until Cretaceous. A‐Type granite of metaluminous to peraluminous character indicates their emplacement in an intraplate tectonic setting. Malay Peninsula suffered an anticlockwise rotation due to the rifting of Luconia–Dangerous Grounds from the east Asia in the Late Cretaceous–Early Tertiary. Extensive ductile and brittle deformation including crustal segmentation, pull‐apart fracturing and faulting occurred during the closure and exhumation of the basins developed in the peninsula during Late Cretaceous–Early Tertiary. Crustal shortening in the central belt of the peninsula has been accomodated through strike‐slip displacement, shearing and uplift.  相似文献   

19.
吐哈盆地及邻区早二叠世沉积特征与构造发育的耦合关系   总被引:7,自引:0,他引:7  
通过对不同露头剖面和探井资料的分析,在吐哈盆地及邻区区分出三种不同类型沉积相:(1)裂谷型海相火山喷发沉积相;(2)裂谷型陆相火山喷发沉积相;(3)造山带磨拉石相;不同沉积相特征并结合构造分析认为,早二叠世在吐哈及邻区存在二种不同类型的盆地,即前陆盆地和裂谷盆地,同时,还探讨了大陆一大陆碰撞带上两种不同类型盆地的形成机理。  相似文献   

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