首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 453 毫秒
1.
东天山大地构造及演化--1:50万东天山大地构造图简要说明   总被引:33,自引:3,他引:30  
以东天山地区古生代沉积建造分析为基础,探讨了该区古生代以来的大地构造格局和演化历程。认为该区震旦-泥盆纪具板块构造格局,石炭纪-早二叠世属碰撞期后的板内裂谷和裂陷槽。提出早古生代早中期该区曾古亚洲洋中的一个古老陆块(隶属准噶尔地块),随着阿尔曼特洋盆和米什沟-干沟洋盆关闭,拼接到阿尔泰古陆边缘,成为西伯利亚古大陆的增生边缘。志留纪-早泥盆世沿卡拉麦里一带再次裂解,形成了卡拉麦里有限洋盆,将南准噶尔地块从西伯利亚大陆边缘割裂开来。随着卡拉麦里洋盆的向南俯冲,造成了东天山地区大南湖一带的泥盆纪岛弧杂岩带,构成了东天山地区斑岩铜矿的含矿岩系,中泥盆世末卡拉麦里洋盆关闭。早石炭世进入碰撞期后板内伸展阶段,形成一系列裂陷槽和裂谷,晚二叠世开始进入陆内造山阶段。新生代随着印度板块同欧亚大陆的碰撞,开始隆升。  相似文献   

2.
高小芬  林晓  徐亚东  乐明亮 《地球科学》2014,39(8):1119-1128
南天山位于塔里木—卡拉库姆板块和伊犁-哈萨克斯坦板块的碰撞造山带.前人研究表明, 该区在古生代经历了洋盆的扩张、俯冲消减和碰撞造山; 中生代则进入到陆内发展阶段.但由于该区特殊的地理位置和复杂的构造背景, 洋盆的闭合时间及盆地演化的阶段依然存在诸多争论.在广泛收集地质资料的基础上, 对我国境内南天山地层大区进行了地层分区, 并对每个分区的古生代-中生代盆地沉积序列进行了详细分析, 最终划分出5个演化阶段: 寒武纪-奥陶纪, 南天山洋从有限洋盆发展为成熟洋盆, 洋盆性质为弧后盆地; 早志留世, 南天山洋盆开始俯冲消减, 东部红柳河段洋盆在早泥盆世闭合, 而西部的俯冲消减则延续至泥盆纪晚期; 石炭纪-早二叠世, 西部仍存在残余海盆.中二叠世, 残余海盆消失, 南天山西部碰撞造山, 南天山造山带最终形成; 中生代, 该区进入陆内发展阶段, 在三叠纪接受剥蚀夷平; 侏罗纪, 西部发展成为断陷盆地, 东部继续接受剥蚀夷平; 白垩纪, 西部延续侏罗纪断陷盆地特征, 东部则发育成拉分盆地. 关键字: 南天山; 古生代; 中生代; 沉积; 构造; 盆地演化.   相似文献   

3.
东准噶尔地区板块构造特征及演化   总被引:13,自引:1,他引:13  
该文根据区域地质构造特征、蛇绿岩带产出状态及地球物理资料等,划分东准噶尔及其邻区板块和次级构造单元,并探讨东准噶尔地区基底性质,从而揭示了东准噶尔板块由早古生代的大洋环境向晚古生代的大陆边缘至陆壳的演化历程和造山模式。  相似文献   

4.
本文基于新疆哈密地区1∶5万板房沟幅和小柳沟幅区域地质调查新成果,对东天山北部古生代的重大构造事件以及演化历史进行了系统的梳理。基于下志留统与奥陶系之间角度不整合、下石炭统与泥盆系之间平行不整合以及上石炭统二道沟组与下伏岩系之间的角度不整合的确定,揭示奥陶纪与志留纪之交、泥盆纪与石炭纪之交以及晚石炭世期间存在几次重大构造事件。结合古生代不同时期沉积大地构造背景转换、岩浆活动构造环境转换以及构造变形格式转换的地质新纪录,提出奥陶纪与志留纪之交的造山事件为北部阿尔曼太洋闭合导致准噶尔—吐哈地块与阿尔泰地块碰撞的响应;泥盆纪与早石炭世之间的造陆构造事件可能是北部卡拉麦里洋盆初始汇拢碰撞的响应,其平行不整合以及下伏的志留纪—泥盆纪较稳定环境的沉积序列预示着介于卡拉麦里洋盆与南部北天山洋盆之间的准噶尔—吐哈地块为古亚洲洋盆体系中相对刚性的稳定陆块区,研究区作为准噶尔—吐哈地块的北部被动陆缘受卡拉麦里洋盆汇聚的影响较小;晚石炭世的造山事件则表现为响应卡拉麦里洋盆闭合后周缘前陆盆地的演化,是早石炭世沿卡拉麦里缝合带发生陆块碰撞以来挤压构造作用峰期的产物,其奠定了东天山北部北西-南东向构造基本格局。本文还重新界定莫钦乌拉断裂为北天山构造带(准噶尔—吐哈地块)与东准噶尔构造带的构造-地层分区界线,推断其为卡拉麦里缝合带向南东的延伸,并讨论了早石炭世受控不同构造体制的沉积和岩浆纪录的空间差异性,认为早石炭世北部莫钦乌拉山区域为与北侧卡拉麦里洋盆闭合后周缘挤压前陆盆地的发育过程,而南部博格达—哈尔里克山则总体呈现为响应南侧北天山洋盆闭合后的碰撞后伸展裂谷发育过程。  相似文献   

5.
新疆东部新元古代晚期和古生代构造格局及其演变   总被引:134,自引:4,他引:134  
李锦轶 《地质论评》2004,50(3):304-322
基于笔者近20年来对新疆东部地质构造的研究和对前人地质地球物理资料的深入分析,本文系统讨论了新疆东部新元古代晚期和古生代的地壳形成与演化。该区古生代的构造单元被划分为阿尔泰地块、额尔齐斯断裂带、东准噶尔古生代造山带、准噶尔地块、东天山造山带和库鲁克塔格地块。该区古生代地壳构造演化包括震旦纪-石炭纪洋陆格局的变迁、石炭纪末至二叠纪后碰撞壳幔相互作用等两个阶段。其洋陆格局的变迁包括古生代早期萨彦洋、早古生代阿尔曼太尔洋、晚古生代卡拉麦里洋、古生代北天山洋和南天山洋的打开与关闭,其中两个天山洋盆可能为一个洋盆,大体上可以对比为中亚地区的古亚洲洋北支斋桑洋,阿尔曼太洋和卡拉麦里洋可能为西伯利亚古陆的边缘洋盆;而古亚洲洋南支的乌拉尔一南天山洋向东是否延伸到新疆东部,还有待于进一步研究。新疆东部的后碰撞构造演化包括三期重大地质事件:①300Ma前后的以中酸性为主的大规模岩浆活动;②280Ma前后的包括幔源岩浆在内的双峰式岩浆活动;⑧二叠纪中晚期(可能延续到三叠纪)的大规模地壳走滑运动。在此基础上,对新疆东部新元古代晚期和古生代构造演化与古亚洲洋演变的关系进行了探讨,并对仍然存在的主要相关问题进行了总结和归纳。  相似文献   

6.
新疆东准噶尔卡拉麦里地区晚古生代板块构造的基本特征   总被引:68,自引:4,他引:68  
李锦轶  朱宝清 《地质论评》1990,36(4):305-316
笔者等根据近年研究,认为新疆东准噶尔卡拉麦里地区晚古生代板块构造的演化,大致分为几个阶段:早泥盆世初,早古生代晚期形成的陆壳拉张,分裂成卡拉麦里有限洋盆;早泥盆世晚期,该洋盆开始聚敛收缩,早石炭世初洋盆闭合,两侧陆块连接;陆块连接带上发育由洋盆转化形成的陆间残余海盆;早石炭世末期,发生强烈褶皱造山运动,把已经连接的陆块最后焊接成一个板块。此后,该区进入板内演化时期。  相似文献   

7.
新疆西准噶尔南部地区出露多条蛇绿岩,其中玛依勒蛇绿岩是该地区比较重要的蛇绿岩之一,其所代表的古洋盆的开启、闭合时限一直是地学界争论的焦点。详细的野外调查发现:玛依勒蛇绿混杂岩呈构造岩块的形式就位于中-上志留统玛依拉山岩群复理石基质中或与寒武纪杂岩体在空间上密切共生,表明玛依勒蛇绿岩所代表的古洋盆至少在寒武纪时期就已经开启,一直持续到中-晚志留世;中泥盆统库鲁木迪组分别角度不整合于中-上志留统玛依拉山岩群和寒武纪杂岩体之上,从而限定了玛依勒洋盆闭合时限的上限为中泥盆世之前。地层剖面分析发现库鲁木迪组与玛依拉山岩群之间在岩性特征、地层序列、沉积环境等方面均存在显著差异,表明晚古生代早期是西准噶尔地区构造演化发展的重要转换时期,库鲁木迪组下部的陆相沉积序列是对玛依勒早古生代洋盆闭合过程的沉积学响应。这将对进一步研究西准噶尔的构造演化和古生代中亚地区的构造格局提供了重要的制约。  相似文献   

8.
东天山古生代板块构造特点及其演化模式   总被引:20,自引:0,他引:20  
方国庆 《甘肃地质》1994,3(1):34-40
东天山的古板块构造格局主要由塔里木陆壳板块、西伯利亚陆壳板块和哈萨克斯坦洋壳板块在古生代的活动所奠定的。在古生代,东天山的板块构造格局主要表现为多列岛弧及其间弧间盆地和弧后盆地的形式。自北而南依次发育:博格达-哈尔里克泥盆-石炭纪岛弧,吐哈弧间盆地,觉罗塔格泥盆-石炭纪岛弧,吐哈弧间盆地,觉罗塔格泥盆-石炭纪岛弧,中天山志留-石炭纪岛弧,南天山-红柳河弧后盆地和北山陆缘裂谷带。其主要成因是由于准噶尔洋壳板块向塔里木陆壳板块下俯冲,俯冲带不断后退所形成的。奥陶纪中后期,中天山由塔里木北缘分出,形成具有古老陆块基底的类似于现今日本列岛的中天山岛弧。在其后形成南天山-红柳河弧后盆地和北山陆缘裂谷带。泥盆纪早期,俯冲带后退至觉罗塔格北侧形成觉罗塔格岛弧。泥盆纪晚期,俯冲带后退至博格达-哈尔里克北缘,形成博格达-哈尔里克岛弧。中石炭世至早二叠世,博格达同准噶尔陆块碰撞造山,哈尔里克同麦钦乌拉岛弧碰撞造山。与此同时,南天山-红柳河弧后盆地和北山裂谷带也相继闭合,而吐哈弧间盆地则成为未被消减完的弧间盆地残留下来。东天山古生代板块演化可与现今印度尼西亚地区的板块演化相类比。  相似文献   

9.
东秦岭古生代古生物区与古地理变迁   总被引:2,自引:0,他引:2  
王建平  裴放 《地质论评》2002,48(6):603-611
本文根据对东秦岭古生代各纪古生物区的分析,指出在北美岭褶皱带,二郎坪海槽寒武纪放射虫和微浮游植物属华南区,奥陶纪头足类,腹足类、珊瑚为华北区,早志留世珊瑚为华南区,柿树园海槽中泥盆世至二叠纪孢子主要见于华南区,干江河海槽泥盆纪珊瑚,海百合为华南区。在南秦岭褶皱带,浙川陆棚寒武纪三叶虫有华北区和华南区的分子,奥陶纪牙形石、头足类由华南区变为华北区,晚奥陶世腕足类、三叶虫、珊瑚为华北区,而早志留世笔石,晚泥盆世珊瑚,腕足类和Ting、古植物以及早石炭世珊瑚和Ting均为华南区,南湾海槽泥盆纪孢子为华南区。在此基础上探讨了东秦岭古生代古地理变迁过程。  相似文献   

10.
对甘肃北山红柳园地区三个井组下部玄武岩和墩墩山群安山质火山岩进行了LA-ICP-MS锆石U-Pb年龄测定,三个井组火山岩形成于420Ma±15Ma,相当于晚志留世;墩墩山群火山岩形成于367Ma±10Ma,相当于晚泥盆世。测年结果表明,晚志留世北山古生代洋盆已经俯冲消亡,并开始碰撞造山,而晚泥盆世墩墩山群火山岩则是北山早古生代洋盆碰撞造山后裂谷拉伸作用的产物,标志北山及相邻地区晚泥盆世进入到新的构造演化阶段——晚古生代板内伸展阶段。  相似文献   

11.
古亚洲洋不是西伯利亚陆台和华北地台间的一个简单洋盆,而是在不同时间、不同地区打开和封闭的多个大小不一的洋盆复杂活动(包括远距离运移)的综合体.其北部洋盆起始于新元古代末-寒武纪初(573~522Ma)冈瓦纳古陆裂解形成的寒武纪洋盆.寒武纪末-奥陶纪初(510~480Ma),冈瓦纳古陆裂解的碎块、寒武纪洋壳碎块和陆缘过渡壳碎块相互碰撞、联合形成原中亚-蒙古古陆.奥陶纪时,原中亚-蒙古古陆南边形成活动陆缘,志留纪形成稳定大陆.泥盆纪初原中亚-蒙古古陆裂解,裂解的碎块在新形成的泥盆纪洋内沿左旋断裂向北运动,于晚泥盆世末到达西伯利亚陆台南缘,重新联合形成现在的中亚-蒙古古陆.晚古生代时,在现在的中亚-蒙古古陆内发生晚石炭世(318~316Ma)和早二叠世(295~285Ma)裂谷岩浆活动,形成双峰式火山岩和碱性花岗岩类.蒙古-鄂霍次克带是西伯利亚古陆和中亚-蒙古古陆之间的泥盆纪洋盆,向东与古太平洋连通,洋盆发展到中晚侏罗世,与古太平洋同时结束,其洋壳移动到西伯利亚陆台边缘受阻而向陆台下俯冲,在陆台南缘形成广泛的陆缘岩浆岩带,从中泥盆世到晚侏罗世都非常活跃.古亚洲洋的南部洋盆始于晚寒武世.此时,华北古陆从冈瓦纳古陆裂解出来,在其北缘形成晚寒武世-早奥陶世的被动陆缘和中奥陶世-早志留世的沟弧盆系.志留纪腕足类生物群的分布表明,华北地台北缘洋盆与塔里木地台北缘、以及川西、云南、东澳大利亚有联系,而与上述的古亚洲洋北部洋盆没有关连,两洋盆之间有松嫩-图兰地块间隔.晚志留世-早泥盆世,华北地台北部发生弧-陆碰撞运动,泥盆纪时,在松嫩地块南缘形成陆缘火山岩带,晚二叠世-早三叠世华北地台与松嫩地块碰撞,至此古亚洲洋盆封闭.古亚洲洋的南、北洋盆最后的褶皱构造,以及与塔里木地台之间发生的直接关系,很可能是后期的构造运动所造成的.  相似文献   

12.
The Eastern Junggar terrane of the Central Asian Orogenic Belt includes a Late Paleozoic assemblage of volcanic rocks of mixed oceanic and arc affinity, located in a structurally complex belt between the Siberian plate, the Kazakhstan block, and the Tianshan Range. The early history of these rocks is not well constrained, but the Junggar terrane was part of a Cordilleran-style accreted arc assemblage by the Late Carboniferous. Late Paleozoic volcanic rocks of the northern part of the east Junggar terrane are divided, from base to top, into the Early Devonian Tuoranggekuduke Formation (Fm.), Middle Devonian Beitashan Fm., Middle Devonian Yundukala Fm., Late Devonian Jiangzierkuduke Fm., Early Carboniferous Nanmingshui Fm. and Late Carboniferous Batamayineishan Fm. We present major element, trace element and Sr–Nd isotopic analyses of 64 (ultra)mafic to intermediate volcanic rock samples of these formations. All Devonian volcanic rocks exhibit remarkably negative Nb, Ta and Ti anomalies on the primitive mantle-normalized trace element diagrams, and are enriched in more highly incompatible elements relative to moderately incompatible ones. Furthermore, they have subchondritic Nb/Ta ratios, and their Zr/Nb and Sm/Nd ratios resemble those of MORBs, characteristics of arc-related volcanic rocks. The Early Devonian Tuoranggekuduke Fm., Middle Devonian Beitashan Fm., and Middle Devonian Yundukala Fm. are characterized by tholeiitic and calc-alkaline affinities. In contrast, the Late Devonian Jiangzierkuduke Fm. contains a large amount of tuff and sandstone, and its volcanic rocks have dominantly calc-alkaline affinities. We therefore propose that the Jiangzierkuduke Fm. formed in a mature island arc setting, and other Devonian Fms. formed in an immature island arc setting. The basalts from the Nanmingshui Fm. have geochemical signatures between N-MORB and island arcs, indicating that they formed in a back-arc setting. In contrast, the volcanic rocks from the Batamayineishan Fm. display geochemical characteristics of continental intraplate volcanic rocks formed in an extensional setting after collision. Thus, we propose a model that involves a volcanic arc formed by northward subduction of the ancient Junggar ocean and amalgamation of different terranes during the Late Paleozoic to interpret the formation of the Late Paleozoic volcanic rocks in the Eastern Junggar terrane, and the Altai and Junggar terranes fully amalgamated into a Cordilleran-type orogen during the end of Early Carboniferous to the Middle–Late Carboniferous.  相似文献   

13.
Packages of Late Paleozoic tectonic nappes and associated major NE-trending strike-slip faults are widely developed in the Altai–Sayan folded area. Fragments of early deformational phases are preserved within the Late Paleozoic allochthons and autochthons. Caledonian fold-nappe and strike-slip structures, as well as accompanying metamorphism and granitization in the region, are typical of the EW-trending suture-shear zone separating the composite Kazakhstan–Baikal continent and Siberia. In the Gorny Altai region, the Late Paleozoic nappes envelop the autochthon, which contains a fragment of the Vendian–Cambrian Kuznetsk–Altai island arc with accretionary wedges of the Biya–Katun’ and Kurai zones. The fold-nappe deformations within the latter zones occurred during the Late Cambrian (Salairian) and can thus be considered Salairian orogenic phases. The Salairian fold-nappe structure is stratigraphically overlain by a thick (up to 15 km) well-stratified rock unit of the Anyui–Chuya zone, which is composed of Middle Cambrian–Early Ordovician fore-arc basin rocks unconformably overlain by Ordovician–Early Devonian carbonate-terrigenous passive-margin sequences. These rocks are crosscut by intrusions and overlain by a volcanosedimentary unit of the Devonian active margin. The top of the section is marked by Famennian–Visean molasse deposits onlapping onto Devonian rocks. The molasse deposits accumulated above a major unconformity reflects a major Late Paleozoic phase of folding, which is most pronounced in deformations at the edges of the autochthon, nearby the Kaim, Charysh–Terekta, and Teletskoe–Kurai fault nappe zones. Upper Carboniferous coal-bearing molasse deposits are preserved as tectonic wedges within the Charysh–Terekta and Teletskoe–Kurai fault nappe zones.Detrital zircon ages from Middle Cambrian–Early Ordovician rocks of the Anyui–Chuya fore-arc zone indicate that they were primarily derived from Upper Neoproterozoic–Cambrian igneous rocks of the Kuznetsk–Altai island arc or, to a lesser extent, from an Ordovician–Early Devonian passive margin. A minor age population is represented by Paleoproterozoic grains, which was probably sourced from the Siberian craton. Zircons from the Late Carboniferous molasse deposits have much wider age spectra, ranging from Middle Devonian–Early Carboniferous to Late Ordovician–Early Silurian, Cambrian–Early Ordovician, Mesoproterozoic, Early–Middle Proterozoic, and early Paleoproterozoic. These ages are consistent with the ages of igneous and metamorphic rocks of the composite Kazakhstan–Baikal continent, which includes the Tuva-Mongolian island arc with accreted Gondwanan blocks, and a Caledonian suture-shear zone in the north. Our results suggest that the Altai–Sayan region is represented by a complex aggregate of units of different geodynamic affinity. On the one hand, these are continental margin rocks of western Siberia, containing only remnants of oceanic crust embedded in accretionary structures. On the other hand, they are represented by the Kazakhstan–Baikal continent composed of fragments of Gondwanan continental blocks. In the Early–Middle Paleozoic, they were separated by the Ob’–Zaisan oceanic basin, whose fragments are preserved in the Caledonian suture-shear zone. The movements during the Late Paleozoic occurred along older, reactivated structures and produced the large intracontinental Central Asian orogen, which is interpreted to be a far-field effect of the colliding East European, Siberian, and Kazakhstan–Baikal continents.  相似文献   

14.
笔者认为东准噶尔地区曾是古新疆克拉通的一部分,只是到了泥盆纪才演化成大洋。值得特别提出的是,大洋消失之后,经历了残留海盆阶段才开始碰撞造山。碰撞期后的岩浆作用和板内裂陷作用在该区特别发育,而且形成相关的内生金属矿产。以大型内陆盆地沉降和山脉隆升为特征的陆内造山作用标志着大陆克拉通化的最终完成。成矿期与构造演化密切相关,自老而新划分了6个成矿期。  相似文献   

15.
笔者认为东准噶尔地区曾是古新疆克拉通的一部分,只是到了泥盆纪才演化成大洋。值得特别提出的是,大洋消失之后,经历了残留海盆阶段才开始碰撞造山。碰撞期后的岩浆作用和板内裂陷作用在该区特别发育,而且形成相关的内生金属矿产。以大型内陆盆地沉降和山脉隆升为特征的陆内造山作用标志着大陆克拉通化的最终完成。成矿期与构造演化密切相关,自老而新划分了6个成矿期。  相似文献   

16.
林敏  马昌前  徐立明  李玉娟  杨仲  汤建荣 《地球科学》2019,44(10):3279-3296
采用"造山带混杂岩区"新理论,首次在贺根山-黑河缝合带中段发现海勒斯台俯冲增生混杂岩,建立由"基质"+"岩块"组成的俯冲增生杂岩体系,其构造样式为整体左行逆冲剪切.基质主要有糜棱岩、千糜岩、超糜棱岩及少量的沉凝灰岩、粉砂岩、细砂岩,构造环境为弧前盆地,时代主要为中寒武世;岩块有洋岛海山岩块、弧后洋盆洋壳残片、火山弧岩块、裂离陆块,岩块的年龄区间主要在中寒武世-中奥陶世,裂离陆块时代为新太古代.结合俯冲增生杂岩基质年龄、岩块的年龄、侵入混杂岩的TTG年龄(449 Ma)和变形程度、接触关系等,将海勒斯台俯冲增生杂岩的形成时代厘定为中晚奥陶世.认为研究区俯冲作用在早寒武世就已经开始,在大陆边缘形成火山岛弧;奥陶纪初期弧后发育弧后盆地,至中奥陶世弧后盆地出现洋壳;此时中寒武世的基质经俯冲下切后在中奥陶世时期折返上升;晚奥陶世时期由于区域的持续汇聚挤压,该弧后洋盆很快夭折;弧陆开始碰撞,导致双向俯冲.在弧陆碰撞过程中,晚期形成的弧后盆地洋壳等新岩块混入早期形成的基质中.海勒斯台俯冲增生混杂岩带的发现填补了贺根山-黑河缝合岩带中段的空白,对区域构造格架厘定具有非常重要的意义,为研究古亚洲构造域演化提供了新的证据.   相似文献   

17.
North Xinjiang, Northwest China, is made up of several Paleozoic orogens. From north to south these are the Chinese Altai, Junggar, and Tian Shan. It is characterized by widespread development of Late Carboniferous–Permian granitoids, which are commonly accepted as the products of post-collisional magmatism. Except for the Chinese Altai, East Junggar, and Tian Shan, little is known about the Devonian and older granitoids in the West Junggar, leading to an incomplete understanding of its Paleozoic tectonic history. New SHRIMP and LA-ICP-MS zircon U–Pb ages were determined for seventeen plutons in northern West Junggar and these ages confirm the presence of Late Silurian–Early Devonian plutons in the West Junggar. New age data, combined with those available from the literature, help us distinguish three groups of plutons in northern West Junggar. The first is represented by Late Silurian–Early Devonian (ca. 422 to 405 Ma) plutons in the EW-striking Xiemisitai and Saier Mountains, including A-type granite with aegirine–augite and arfvedsonite, and associated diorite, K-feldspar granite, and subvolcanic rocks. The second is composed of the Early Carboniferous (ca. 346 to 321 Ma) granodiorite, diorite, and monzonitic and K-feldspar granites, which mainly occur in the EW-extending Tarbgatay and Saur (also spelled as Sawuer in Chinese) Mountains. The third is mainly characterized by the latest Late Carboniferous–Middle Permian (ca. 304 to 263 Ma) granitoids in the Wuerkashier, Tarbgatay, and Saur Mountains.As a whole, the three epochs of plutons in northern West Junggar have different implications for tectonic evolution. The volcano-sedimentary strata in the Xiemisitai and Saier Mountains may not be Middle and Late Devonian as suggested previously because they are crosscut by the Late Silurian–Early Devonian plutons. Therefore, they are probably the eastern extension of the Early Paleozoic Boshchekul–Chingiz volcanic arc of East Kazakhstan in China. It is uncertain at present if these plutons might have been generated in either a subduction or post-collisional setting. The early Carboniferous plutons in the Tarbgatay and Saur Mountains may be part of the Late Paleozoic Zharma–Saur volcanic arc of the Kazakhstan block. They occur along the active margin of the Kazakhstan block, and their generation may be related to southward subduction of the Irtysh–Zaysan Ocean between Kazakhstan in the south and Altai in the north. The latest Late Carboniferous–Middle Permian plutons occur in the Zharma–Saur volcanic arc, Hebukesaier Depression, and the West Junggar accretionary complexes and significantly postdate the closure of the Irtysh–Zaysan Ocean in the Late Carboniferous because they are concurrent with the stitching plutons crosscutting the Irtysh–Zaysan suture zone. Hence the latest Late Carboniferous–Middle Permian plutons were generated in a post-collisional setting. The oldest stitching plutons in the Irtysh–Zaysan suture zone are coeval with those in northern West Junggar, together they place an upper age bound for the final amalgamation of the Altai and Kazakhstan blocks to be earlier than 307 Ma (before the Kaslmovian stage, Late Carboniferous). This is nearly coincident with widespread post-collisional granitoid plutons in North Xinjiang.  相似文献   

18.
An extended Vendian-Cambrian island-arc system similar to the Izu-Bonin-Mariana type is described in the Gorny Altai terrane at the margin of the Siberian continent.

Three different tectonic stages in the terrane are recognized. (1) A set of ensimatic active margins including subducted oceanic crust of the Paleo-Asian ocean, the Uimen-Lebed primitive island arc, oceanic islands and seamounts: the set of rocks is assumed to be formed in the Vendian. (2) A more evolved island arc comprising calc-alkaline volcanics and granites: a fore-arc trough in Middle-late Cambrian time was filled with disrupted products of pre-Middle Cambrian accretionary wedges and island arcs. (3) Collision of the more evolved island arc with the Siberian continent: folding, metamorphism and intrusion of granites occurred in late Cambrian-early Ordovician time.

In the late Paleozoic, the above-mentioned Caledonian accretion-collision structure of the Siberian continent was broken by large-scale strike-slip faults into several segments. This resulted in the formation of a typical mosaic-block structure.  相似文献   


19.
杨鑫  徐旭辉  邓尚  翟常博  孔强夫  王石 《地球科学》2020,45(11):4153-4175
通过对塔里木西南地区奥陶系-泥盆系的钻井和露头碎屑岩样品开展锆石U-Pb年代学、地球化学和重矿物分析,探讨塔西南大陆边缘原特提斯洋的俯冲增生演化过程.碎屑锆石记录了482~443 Ma、438~425 Ma和414~406 Ma三期寒武纪以来的构造-热事件,以及840~750 Ma的新元古代裂谷岩浆事件.奥陶系-泥盆系碎屑岩具有高的SiO2含量和相对低的Al2O3和TFe2O3+MgO含量,以及弱-中等的Eu负异常、LREE相对富集和HREE分布较平坦的特征.地球化学图解反映晚奥陶统碎屑岩来源于大陆岛弧和活动大陆边缘环境,早志留世-中泥盆世期间物源区可能以大陆岛弧和被动陆缘环境为主,还间断出现少量活动大陆边缘环境,晚泥盆世以后主要呈现被动陆缘环境.重矿物组合指示早志留世至中泥盆世期间,中-酸性岩浆活动加剧,而基性岩浆活动趋弱,晚泥盆世以后陆壳基底或造山带已大规模隆升.塔西南边缘原特提斯洋构造演化以奥陶纪向北俯冲、志留纪弧后洋盆关闭-褶皱造山和泥盆纪后碰撞伸展为特征.   相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号