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1.
造山带成矿作用研究是当代成矿学重大研究的前沿,通过对东昆仑造山带北西段祁漫塔格晚古生代—早中生代侵入岩研究,表明祁漫塔格与东昆仑东段晚古生代—早中生代构造演化具有一定相似性。早二叠世之前为洋盆扩张期,早二叠世空谷期洋盆扩张结束,俯冲作用开始,发育钾玄岩系列POG型花岗岩,形成斑岩型铜矿。中三叠世为主俯冲阶段,发育高钾钙碱性大陆弧花岗岩(CAG),形成矽卡岩型铁多金属矿。晚三叠世卡尼—诺利期,大洋闭合,进入后碰撞陆内造山阶段,发育高钾钙碱性钾玄岩系列后造山花岗岩(POG),形成了斑岩钼矿和矽卡岩型铁多金属矿。  相似文献   

2.
通过对东天山觉罗塔格一带晚古生代岩浆岩地质特征、岩石化学特征等系统研究,认为该晚古生代岩浆岩主要由早石炭世至中二叠世的火山岩和侵入岩组成,其形成与康古尔洋向北俯冲有关。早石炭世岩浆岩为康古尔洋初始俯冲而成的钙碱性岛弧火山岩及具有低压、低温特征的高钾钙碱性I型花岗岩;晚石炭世岩浆岩为后碰撞弧火山岩;早二叠世岩浆岩为具有后碰撞弧和板内双重特征的火山岩及高温、高压特征的I型花岗岩;中二叠世发育具有低压、高温特征的高钾钙碱性A型花岗岩。综合前人资料及本文研究成果,初步认为觉罗塔格一带晚古生代经历了俯冲碰撞—碰撞造山—造山后陆内伸展的构造演化过程。  相似文献   

3.
中国东北地区中生代火山岩岩石学特征与盆地形成   总被引:41,自引:3,他引:38  
中国东部广泛分布中生代火山岩,它是环太平洋火山作用的重要组成部分。东北地区是中生代火山岩分布最广泛的地区之一,其形成时代从晚三叠世到晚白垩世,其中晚侏罗世—早白垩世是火山作用最强烈的时期。中生代火山岩主要有高钾钙碱性火山岩系列和钾玄岩系列,并以高钾钙碱性火山岩为主。岩石类型主要有钾玄岩、安粗岩、粗面岩、橄榄粗安岩、英安岩和流纹岩。从东向西火山岩表现出了一个化学组成上的极性。岩石的Ti、Ta含量低和富K、Rb等,以及构造判别图解表明该区火山岩属造山带火山岩。上述特征表明,东北地区中生代火山活动属于与伊佐奈崎(Izanagi)板块俯冲作用有关的挤压造山。与火山岩共存的早白垩世的A型花岗岩表明,早白垩世东北地区处于拉伸构造环境。因此,松辽、海拉尔以及二连等盆地的形成与早白垩世造山带的崩塌有关。  相似文献   

4.
孟凡超  刘嘉麒  崔岩  高金亮  刘祥  童英 《岩石学报》2014,30(12):3569-3586
东北地区中生代经历了蒙古-鄂霍茨克构造体系向太平洋构造体系的转换,形成了不同期次火山活动。本文归纳总结了露头区与覆盖区中生代火山岩的年代学、空间分布、岩石组合以及地球化学特征,揭示了两个构造域的时空分布范围。该区火山岩锆石U-Pb年龄统计结果表明中生代存在五期火山活动:早-中侏罗世(190~160Ma)、晚侏罗世(160~145Ma)、早白垩世早期(145~120Ma)、早白垩世晚期(120~100Ma)、晚白垩世早期(100~90Ma)。早-中侏罗世火山岩分布较少,火山岩仅分布在大兴安岭西部满洲里地区和东部张广才岭以及南侧辽宁北票-朝阳地区,火山岩属于高钾钙碱性系列,为蒙古-鄂霍茨克海闭合和法拉隆板块双俯冲作用的产物。晚侏罗世东北地区火山活动明显增强,主要分布在大兴安岭地区,张广才岭以及小兴安岭也有少量分布。西部大兴安岭地区以粗面安山岩、粗面岩为主,属于同碰撞造山成因,为蒙古-鄂霍茨克海闭合造山环境产物。东部以中酸性、酸性岩为主,为法拉隆板块背离欧亚大陆,岩石圈伸展引起的壳源物质熔融产物。早白垩世早期火山活动最为强烈,火山岩主要分布在大兴安岭地区。岩性以高钾钙碱性系列的粗面玄武安山岩、粗面安山岩、安山岩、粗面岩为主,为蒙古-鄂霍茨克海闭合造山后伸展环境产物。早白垩世晚期火山岩主要分布在松辽盆地内部。火山岩以中酸性岩为主,属于中钾-高钾钙碱性系列,为伊泽奈崎板块俯冲引起的弧后拉张,软流圈上涌导致年轻地壳熔融的产物。晚白垩世早期火山岩仅分布在小兴安岭及吉林、黑龙江省东部地区。火山岩为一套玄武岩、玄武安山岩、安山岩和英安岩组合,属于中钾钙碱性系列,是伊泽奈崎-库拉板块高角度俯冲的大陆边缘岩浆活动产物。东北地区中生代不同期次火山岩记录了蒙古-鄂霍茨克构造域向太平洋构造域转换过程及其时空影响范围。  相似文献   

5.
兴蒙造山带中段北部晚古生代两期岩浆活动及其构造意义   总被引:8,自引:0,他引:8  
兴蒙造山带位于中亚造山带东段,长期以来是地质学家研究的焦点区域。内蒙古巴彦乌拉地区位于兴蒙造山带中段北部苏尼特左旗以北,广泛出露晚古生代宝力格组火山—沉积地层和酸性侵入岩体。本文对阿尔善宝拉格附近的宝力格组中性火山岩和侵入其中的花岗斑岩岩墙,及巴彦乌拉苏木南部花岗闪长岩进行了锆石LA-ICP-MS U-Pb定年,定年结果显示,宝力格组火山岩年龄为310.5±0.78 Ma,与巴彦乌拉苏木北部地区火山岩年龄(307.1±6.3Ma,308.9±1.8Ma)一致,证明本区宝力格组地层形成于晚石炭世;花岗闪长岩和花岗斑岩岩墙年龄分别为312.5±0.75 Ma和286.6±0.75 Ma,形成时代分别为晚石炭世和早二叠世;通过区域对比分析认为,兴蒙造山带北部晚古生代存在晚石炭世和早二叠世两期重要的岩浆活动,统计获得峰值年龄分别为318Ma和281Ma。岩石地球化学特征显示,本区晚石炭世宝力格组火山岩具有由低钾拉斑向钙碱性、碱性系列过渡的特征,并以钙碱性和碱性系列为主;早二叠世花岗斑岩为A型花岗岩,具有与邻区锡林浩特及巴彦乌拉—东乌珠穆沁旗带内A型花岗岩类似的地球化学特征;在花岗岩构造判别图中,花岗斑岩落入后造山区域,晚石炭世到早二叠世期间岩浆的形成环境向后造山环境逐渐演化,同时在SiO2和Na2O对K2O相关图解中,K2O含量具有增高变化的趋势,暗示构造环境有向更加稳定的板内环境演变的特征。因此,结合前人地质资料,兴蒙造山带北部晚古生代大量火山岩浆活动可能与二连—贺根山蛇绿混杂带形成有关,晚石炭世时期研究区处于后造山阶段,随着早二叠世大量A型花岗岩、碱性岩浆和双峰式火山岩的形成,该区进入造山后期更广泛的伸展环境。  相似文献   

6.
本文通过对西昆仑西段地区晚古生代—中生代花岗岩的岩石类型、形成时代和岩石地球化学资料的综合分析,探讨花岗质岩浆活动期次、岩石成因,结合区域资料,探讨构造-岩浆演化特征和碰撞造山过程。将该地区晚古生代—中生代构造-岩浆演化分为7个阶段:(1)388~324 Ma(特提斯Ⅰ、Ⅱ支洋向北俯冲消减阶段),具富钠贫钾特征的低温TTG岩石组合,形成于陆缘弧环境;(2)339~291 Ma(奥依塔格弧后盆地演化阶段),由于南部特提斯Ⅰ支洋持续往北俯冲,导致西昆仑北缘发生弧后扩展而形成弧后盆地,形成拉斑质具强烈富钠贫钾特征的低温大洋花岗岩;(3)258~241 Ma(特提斯Ⅰ支洋闭合、碰撞造山阶段),岩石中发育石榴子石和白云母,普遍具片麻状构造,属于S型花岗岩,陆壳部分熔融的产物;(4)234~210 Ma(特提斯Ⅰ后碰撞伸展阶段):岩体规模较大,为I型→A型花岗岩,伴随着地幔岩浆底侵和强烈的壳幔岩浆混合作用;(5)198~150 Ma(特提斯Ⅱ支洋向南俯冲消减阶段):类似TTG的岩石组合,形成于与洋壳俯冲有关的岩浆弧环境;(6)148~118 Ma(特提斯Ⅱ支洋闭合、碰撞造山阶段):弱片麻状二云二长花岗岩,属C型埃达克岩,为陆-陆碰撞过程中陆壳加厚发生部分熔融的产物;(7)111~75 Ma(特提斯Ⅱ后碰撞伸展阶段):发育规模较大,钾玄质系列,是古老地壳部分熔融的产物。根据各阶段花岗质岩浆活动特征和构造演化过程,初步提出了西昆仑西段晚古生代—中生代大地构造演化模式图。  相似文献   

7.
阿尔金山北缘早古生代岩浆活动的构造环境   总被引:17,自引:0,他引:17  
阿尔金山北缘地处塔里木盆地和柴达木盆地之间的阿尔金断裂的西北,是青藏高原北部边界地区。该区花岗岩类主要形成于早古生代以来,为钙碱性岩系(碱性程度不高),发育Ⅰ型和A型两种花岗岩类,缺少S型花岗岩。早古生代与蛇绿岩伴生的双峰式火山岩系属于亚碱性系列,其中的玄武岩主要为拉斑系列,流纹岩属钙碱系列。花岗岩类构造环境分析和判别结果表明,阿尔金山北缘早古生代处在破坏性活动板块边缘,构造环境可能经历了早古生代活动陆缘的(火山)岛弧、中生代大陆造陆抬升以至新生代的后造山作用演化过程。火山岩类的构造环境分析结果表明,玄武岩类可能具有洋脊区、岛弧区和板内区各种构造环境,流纹岩类则主要处在板内区。以上分析说明早古生代"阿尔金洋"的存在。   相似文献   

8.
笔者对大兴安岭西部乌兰盖盆地南、北缘出露的中生代火山岩进行了详细的岩石学、激光全熔40Ar/39Ar测年及地球化学研究,探讨了中生代火山岩成因与地质意义。乌兰盖盆地南、北缘的中生代火山岩主要为中性岩(安山岩)与酸性岩(流纹岩)类,各类岩石总体激光全熔40Ar/39Ar定年结果为(151.8±1.5)~(120.2±1.8) Ma,说明其形成时代总体为晚侏罗世晚期至早白垩世;岩石总体为一套钙碱性系列到高钾钙碱性系列的中性至酸性岩石组合,各类岩石地球化学特征与壳源岩石的地球化学特征基本一致,表明它们应来自于地壳物质局部熔融形成的壳源岩浆系列。该套火山岩形成于蒙古鄂霍茨克洋(古太平洋)闭合碰撞造山构造背景,在早白垩世151.8 Ma左右区内曾发生地壳加厚的造山过程,其岩浆深部动力学背景与岩浆源区的性质主要归因于增厚的造山带下地壳发生的部分熔融作用。  相似文献   

9.
西秦岭北缘早古生代天水—武山构造带位于甘肃省东部天水地区,主要由寒武纪关子镇武山蛇绿岩带、晚寒武世—早奥陶世李子园群浅变质活动陆缘沉积火山岩系、奥陶纪草滩沟群岛弧型火山沉积岩系以及加里东期岛弧型深成侵入岩体、俯冲碰撞型花岗岩体等组成。关子镇蛇绿岩中变质基性火山岩属于NMORB型玄武岩,武山蛇绿岩中变质基性火山岩属于EMORB型玄武岩,是洋脊型蛇绿岩的重要组成部分,形成时代大致在534~489Ma之间的寒武纪。李子园群火山岩主要形成于岛弧或与岛弧相关的弧前盆地构造环境,草滩沟群火山岩形成于与俯冲作用相关的岛弧环境。关子镇流水沟和百花中基性岩浆杂岩总体形成于中晚奥陶世(471~440Ma)古岛弧构造环境,同时发育加里东期俯冲型(450~456Ma)花岗岩类和碰撞型(438~400Ma)花岗岩类岩浆活动。西秦岭北缘早古生代古洋陆构造格局经历了从洋盆形成洋壳俯冲消减直至陆陆碰撞造山的板块构造演化过程。总体构造演化可划分为四个阶段:①晚寒武世古洋盆初始形成阶段;②早奥陶世洋盆初始俯冲阶段;③中晚奥陶世洋壳大规模俯冲与古岛弧发育阶段;④志留纪陆陆或陆弧碰撞造山阶段。  相似文献   

10.
祁连山及邻区广泛出露有形成于不同时代、具有复杂成因类型的侵入岩类,它们记录了祁连山、柴北缘和宗务隆构造带多阶段、多期次的构造岩浆事件。根据侵入岩的空间展布情况、年代学时空格架和岩石成因类型,祁连山–柴北缘地区的侵入岩浆活动主要可分为3个阶段:前寒武纪(2.47 Ga~561 Ma)、早古生代—泥盆纪(517~360 Ma)、中晚二叠世—三叠纪(271~210Ma)。(1)前寒武纪花岗岩(2 470~561 Ma)的形成记录了区内古老大陆的聚合、离散过程及北祁连洋的开启。(2)自前寒武纪末期洋盆打开以来,祁连山和柴北缘地区在517~359 Ma形成有大量的侵入岩类,祁连山、柴北缘和宗务隆地区自中泥盆世以来开始明显的显示出相对独立的构造–岩浆演化过程。其中,自517 Ma以后,祁连山地区形成有俯冲成因地球化学特征的花岗岩、埃达克质岩石和碱性花岗类,与区内同期火山岩一同构成弧盆系的火山–侵入岩组合;中南祁连在奥陶纪(452~444 Ma)和早志留世初(431 Ma)广泛形成的强过铝质S型碰撞成因花岗岩与晚奥陶世出现的磨拉石沉积建造,表明了祁连山碰撞造山事件发生于晚奥陶世—早泥盆世(452~4...  相似文献   

11.
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   

12.
This paper presents age and geochemical data of a recently identified Late Paleozoic volcanic sequence in central Jilin Province, with aims to discuss the petrogenesis and to constrain the tectonic evolution of the Central Asian Orogenic Belt in this area. Firstly, the volcanic rocks have zircon U-Pb ages of 290–270 Ma. Secondly, they are characterized by(a) ranging in composition from the low-K tholeiite series to high-K calc-alkaline series;(b) enrichment in light rare earth elements and depletion of heavy rare earth elements, with negative Eu anomalies; and(c) negative Nb, Ta, and Ti anomalies. Finally, the volcanic rocks yield εHf(t) values of +7.1 to +17. These data suggest that the central Jilin volcanic rocks were possibly derived from predominant partial melting of a depleted lithospheric mantle that might have been modified by subducted slab–derived fluids. Combined with previous studies, the Late Paleozoic–Early Mesozoic magmatism in Central Jilin can be divided into two stages:(a) a volcanic arc stage(290–270 Ma) represented by low-K to high–K, tholeiite to calc–alkaline plutons and(b) a syn–collisional stage(260–240 Ma) represented by high-K calc–alkaline I-type granites. Furthermore, the timing and the tectonic setting of the above magmatic rocks show that the arc was probably produced by the northward subduction of the Paleo-Asian Ocean and that the final closure of the Paleo-Asian Ocean occurred prior to the Early Triassic.  相似文献   

13.
本文对满洲里地区灵泉盆地、包格德乌拉盆地及额尔古纳地区上护林盆地和恩和盆地及周边的原确定为古生代和中
生代的花岗质岩石进行了岩石学和锆石LA-ICP-MS U-Pb 年代学研究,以便揭示研究区中生代的构造演化历史。研究区内
12 个代表性花岗岩中的锆石均呈自形-半自形晶,显示出典型的岩浆生长环带,结合其较高的Th/U比值(0.31~3.63),暗
示其为岩浆成因。测年结果表明,该区中生代花岗质岩浆活动可划分成以下三期:(1)中三叠世岩浆活动,可进一步划分
成241 Ma 和229 Ma 两期岩浆事件,241 Ma 黑云母正长花岗岩和229 Ma 正长花岗岩的存在可能与古亚洲洋闭合后的伸展环
境有关;(2)早- 中侏罗世岩浆事件,可进一步划分成(180±5)Ma 和(171±2)Ma 两期岩浆事件,黑云母二长花岗岩-
正长花岗岩组合,结合其斑岩型Mo 矿的存在,反映研究区处于活动陆缘的构造背景,可能与蒙古- 鄂霍茨克洋的俯冲作用
有关;(3)早白垩世早期岩浆活动,可进一步划分成(140~150)Ma 和(134±2)Ma 两期岩浆事件,前者与区域内发育的
吉祥峰组火山岩形成时代相近,后者的火口充填型产状表明它们应是该期岩浆事件演化晚期的产物,该期岩浆事件在松辽
盆地以东地区的缺乏暗示它们形成于伸展环境,并与蒙古-鄂霍茨克缝合带的演化有关。  相似文献   

14.
黑龙江省嫩江-黑河地区显生宙岩浆活动强烈,发育一系列大、中型矿床,为了了解研究区古、中生代的洋陆过程及其成矿背景,系统总结了研究区近年来岩浆岩和矿床学研究中取得的成果,梳理出洋内弧前弧岩石组合的埃达克质岩石、高镁岩石和TTG花岗岩等,并结合火山-沉积建造特征,探讨研究区的洋陆转换及相关的矿床类型代表的成矿事件.研究区古生代发育早寒武世、晚寒武世、中奥陶世、早志留世的高镁岩石和早奥陶世、中奥陶世、晚泥盆世的埃达克质岩石,一直处于嫩江-黑河洋的俯冲环境,在晚石炭世-二叠纪转为晚造山-后造山阶段,成矿作用以奥陶纪最为强烈,且与洋内弧前弧岩石组合的高镁岩石、埃达克质岩石密切相关,出现俯冲造弧阶段的斑岩与浅成低温热液成矿系统,需要进一步加强可能的VMS型矿床、造山型金矿等找矿勘查工作.研究区中生代发育与蒙古-鄂霍茨克大洋板片南向俯冲作用有关的中三叠世、早侏罗世埃达克质岩石和晚三叠世的镁质岩石及早-中侏罗世TTG花岗岩,而早白垩世晚期的弧火山岩和产出的一系列大、中型金矿床可能与古太平洋板块俯冲-后撤有关.   相似文献   

15.
郭正府  邓晋福 《现代地质》1998,12(3):344-352
利用岩石大地构造学的研究方法回溯了东昆仑晚古生代末—中生代构造岩浆演化历史。研究表明,东昆仑晚海西期—早燕山期构造演化分为3个阶段:(1)洋脊形成与扩张阶段(309~260Ma);(2)大洋板块大规模俯冲阶段(260~230Ma),火成岩具安第斯型活动大陆边缘构造属性;(3)陆内造山阶段(230~190Ma),陆壳的厚度相当于260~230Ma期间的两倍,南、北边缘构造性质与深部过程具较明显差异与不对称性。南缘深部总体特征是“壳热而幔冷”,暗示着陆壳与壳下岩石圈之间可能沿莫霍面有较大的构造拆离;北缘在壳底具岩浆底侵作用,其深部特征为“壳冷幔热”。自晚海西期—早燕山期东昆仑岩石圈缩短总量(平均值)约为1463km。  相似文献   

16.
南盘江盆地南缘发育大量早—中三叠世岩浆岩和巨厚三叠系,为研究沿中越边界一带是否发生洋盆俯冲消亡过程提供了重要的岩浆-沉积证据。选取中越边界地区出露面积最大的富宁—那坡地区早—中三叠世火山岩及相关沉积作为研究对象,通过系统的地质填图和剖面测量,查明这套火山-沉积组合具有下部玄武安山岩,上覆碳酸盐岩质砾岩、含砾粗砂岩和钙质砂岩的沉积序列,与岛弧环境火山-沉积序列相似。玄武安山岩SHRIMP锆石U-Pb定年结果为247±1 Ma和246±3 Ma,与野外产于中三叠统碎屑岩之下的地质事实相符。结合前人研究成果,确定这套火山岩形成于早—中三叠世(247~242 M a)。全岩地球化学分析结果显示,玄武安山岩富集大离子亲石元素(LILEs,R b、T h和U)和轻稀土元素(LR EE),其具有明显的Nb、Ta和Ti负异常。火山-沉积序列和火山岩地球化学特征表明,富宁—那坡地区早—中三叠世火山-沉积组合形成于与俯冲相关的弧环境。中越边界地区早—中三叠世弧火山岩与蛇绿混杂岩带的时空展布特征表明,该地区晚古生代洋盆发生了向北的俯冲消减。  相似文献   

17.
A mosaic of terranes or blocks and associated Late Paleozoic to Mesozoic sutures are characteristics of the north Sanjiang orogenic belt (NSOB). A detailed field study and sampling across the three magmatic belts in north Sanjiang orogenic belt, which are the Jomda–Weixi magmatic belt, the Yidun magmatic belt and the Northeast Lhasa magmatic belt, yield abundant data that demonstrate multiphase magmatism took place during the late Paleozoic to early Mesozoic. 9 new zircon LA–ICP–MS U–Pb ages and 160 published geochronological data have identified five continuous episodes of magma activities in the NSOB from the Late Paleozoic to Mesozoic: the Late Permian to Early Triassic (c. 261–230 Ma); the Middle to Late Triassic (c. 229–210 Ma); the Early to Middle Jurassic (c. 206–165 Ma); the Early Cretaceous (c. 138–110 Ma) and the Late Cretaceous (c. 103–75 Ma). 105 new and 830 published geochemical data reveal that the intrusive rocks in different episodes have distinct geochemical compositions. The Late Permian to Early Triassic intrusive rocks are all distributed in the Jomda–Weixi magmatic belt, showing arc–like characteristics; the Middle to Late Triassic intrusive rocks widely distributed in both Jomda–Weixi and Yidun magmatic belts, also demonstrating volcanic–arc granite features; the Early to Middle Jurassic intrusive rocks are mostly exposed in the easternmost Yidun magmatic belt and scattered in the westernmost Yangtza Block along the Garzê–Litang suture, showing the properties of syn–collisional granite; nearly all the Early Cretaceous intrusive rocks distributed in the NE Lhasa magmatic belt along Bangong suture, exhibiting both arc–like and syn–collision–like characteristics; and the Late Cretaceous intrusive rocks mainly exposed in the westernmost Yidun magmatic belt, with A–type granite features. These suggest that the co–collision related magmatism in Indosinian period developed in the central and eastern parts of NSOB while the Yanshan period co–collision related magmatism mainly occurred in the west area. In detail, the earliest magmatism developed in late Permian to Triassic and formed the Jomda–Wei magmatic belt, then magmatic activity migrated eastwards and westwards, forming the Yidun magmatic bellt, the magmatism weakend at the end of late Triassic, until the explosure of the magmatic activity occurred in early Cretaceous in the west NSOB, forming the NE Lhasa magmatic belt. Then the magmatism migrated eastwards and made an impact on the within–plate magmatism in Yidun magmatic belt in late Cretaceous.  相似文献   

18.
华南构造演化的基本特征   总被引:95,自引:11,他引:84  
舒良树 《地质通报》2012,31(7):1035-1053
华南至少经历了4期区域规模的大陆动力学过程,除新元古代和晚中生代具有活动陆缘背景外,均在板块内部发生并完成。华夏块体是一个以新元古代岩石为主体构成的前南华纪基底,不是稳定的克拉通古陆,经历了聚合-裂解-再聚合的复杂构造演化。志留纪发生的板内碰撞-拼合事件使华夏块体与扬子块体再次缝合,形成真正统一的中国南方大陆。在震旦纪—早侏罗世期间,整个华南基本处于陆内滨海-浅海-斜坡环境,内部没有切穿岩石圈的断层,没有大规模幔源岩浆和火山喷发的记录,多次构造变形与岩浆活动均在统一的华南岩石圈之上进行。经过早—中侏罗世的构造体制转换,才演化成为晚中生代西太平洋活动大陆边缘的一部分。从早到晚,华南岩石圈经历了多期、幕式的生长,以侧向增生为主(块体拼合),垂向生长为辅(岩浆上侵)。到晚中生代,在古太平洋板块俯冲和陆内伸展的背景下,形成了独特的华南盆岭构造。长期的板内构造演化和多期的花岗岩浆活动使华南具有很好的成矿条件,成为各种矿产与资源的富集区。新元古代南华纪和晚中生代晚侏罗世—早白垩世是华南最有利的成矿期,尤以后者矿种最多、储量最大。  相似文献   

19.
福建中生代火山活动的基本特征及构造环境   总被引:2,自引:0,他引:2  
福建中生代火山活动经历晚三叠世一早侏罗世的初始,晚侏罗世的鼎盛及白垩纪的减弱,衰亡3个发展阶段,3个阶段的火山活动特征,岩石组合,岩石化学及地球化学等方面既有明显的差异,又具有过渡演化趋势,是受同一构造机制作用而发生与发展,研究认为,福建中生代火山岩的形成与太平洋板块向欧亚大陆板块俯冲作用密切相关,可谓之“浙闽型火山岩”。  相似文献   

20.
Summary Hornblende thermobarometry has been widely used to estimate the emplacement pressure (P) and temperature (T) of calc-alkaline igneous rocks. Application of hornblende thermobarometry to the newly discovered Carboniferous granitic plutons from the Inner Mongolia Paleo-uplift (IMPU) provides useful information on the exhumation and geotectonic evolution of the northern margin of the North China block (NCB) during the Late Paleozoic to Early Mesozoic. Emplacement depths estimated from aluminum-in-hornblende geobarometry indicate that the Longhua, Daguangding and Boluonuo plutons were emplaced at depths of 15.7–18.7 km. Temperatures of emplacement calculated with the hornblende-plagioclase thermometer range from 676 °C to 780 °C. Because most of these plutons are unconformably overlain by Jurassic-Cretaceous volcanic or sedimentary rocks and, regionally, the oldest strata overlying them are the Nandaling and Xiahuayuan Formations of Early Jurassic age, most of these plutons must have been exposed at the surface prior to the Early Jurassic. Therefore, the large-scale uplift and exhumation of the IMPU occurred from the Late Carboniferous to Early Jurassic; at least 15 km thick crustal rocks in the IMPU must have been eroded during this period. It is also inferred that the IMPU was not always an uplifted domain from the Neoproterozoic to Early Triassic. Some Meso-Neoproterozoic and, possibly Paleozoic sedimentary rocks or Early-Middle Triassic volcanic rocks were present in the IMPU until the Late Triassic, but were almost entirely eroded before the end of Triassic. The exhumation of the crystalline rocks and formation of the IMPU is a result of this strong erosion during the Late Paleozoic to Early Mesozoic. Supplementary material to this paper is available in electronic form at Tables 1-2 available as electronic supplementary material  相似文献   

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