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1.
滇西腾冲地块高黎贡群变质沉积岩时代和构造背景的厘定对正确认识原特提斯构造域演化过程及腾冲地块与冈瓦纳大陆之间的关系十分关键。岩石学、岩石地球化学结果表明,高黎贡群变质岩由变质沉积岩和变质岩浆岩组成,前者以片岩和副片麻岩为主,夹少量大理岩和石英岩,其原岩由一套杂砂岩、泥岩夹少量灰岩、硅质岩岩石组合,为深海-半深海相沉积物,形成于活动大陆边缘环境。碎屑锆石LA-ICP-MS U-Pb定年结果表明高黎贡群变质沉积岩中的锆石主要来源于与罗迪尼亚、冈瓦纳超大陆拼合及原特提斯洋俯冲有关的岩浆岩(900~1000Ma和500~600Ma),少量来源于中元古代地层(1500~1600Ma和2300~2400Ma)。4件样品中最年轻碎屑锆石群的加权平均年龄(507~510Ma)及没有出现有意义的小于470Ma碎屑锆石,表明高黎贡群变质沉积岩原岩形成于510~470Ma,是晚寒武世-早奥陶世早期原特提斯洋壳向冈瓦纳大陆下俯冲过程中,在俯冲带上盘沉积的含有大量该期火成岩碎屑的斜坡相沉积物。  相似文献   

2.
秦岭南缘勉略构造带略阳关天门地区发育有一套绿片岩相-低角闪岩相岩石组合,是勉略构造带内强烈韧性变形的变质沉积岩系,其形成时代和构造属性长期存在争议,制约区域大地构造演化的研究。为查明其形成时代与构造背景,对其中的变质细碎屑岩进行系统的岩石学、碎屑锆石U-Pb年代学和岩石地球化学研究。2件碎屑锆石U-Pb年龄样品的年龄分布特征相似,主要年龄区间为新元古代早中期(ca.880~800 Ma),并且显示出ca.830 Ma的显著峰值;最年轻的一组碎屑锆石年龄为747~736 Ma(平均年龄742±6 Ma)。地球化学研究结果表明,关天门变沉积岩原岩应为一套细碎屑岩偶夹碳酸盐岩的沉积组合,原岩经历了较低程度的化学风化和沉积物再旋回,其物源主要为大陆岛弧背景下的中-酸性岩浆岩。结合区域已有研究成果,认为关天门变沉积岩的物源主要为碧口微地块、汉南—米仓山微地块的新元古代早中期岩浆弧。通过野外地质调查,并与已有的区域碎屑锆石年龄谱系进行对比,认为关天门变沉积岩岩片的沉积时代应晚于碧口微地块横丹群形成的时间(720 Ma),即关天门变沉积岩岩片的沉积时限应晚于720 Ma,形成于新元古代中期伸展裂陷体制,是Rodinia超大陆裂解过程的响应。  相似文献   

3.
南秦岭勉略构造带南缘的略阳火神庙地区发育一套灰绿色绢云绿泥石英千枚岩、灰白色绢云钠长石英千枚岩和灰色黑云石英千枚岩的岩石组合.该套变质沉积岩系被前人划归关家沟组,但其原岩成岩时代和形成的构造环境都存在争议.采用LA-ICP-MS锆石U-Pb测年方法对从略阳火神庙地区关家沟组变质沉积岩中获得的碎屑锆石进行了研究,结果表明碎屑锆石的年龄介于932~723 Ma,主要年龄谱分别为727~723 Ma、760~758 Ma、897~809 Ma和932 Ma,主要峰值年龄为848 Ma,次要峰值年龄为725 Ma、758 Ma和932 Ma,最年轻的一组年龄为723~727 Ma(平均年龄为725 Ma),表明该地层的沉积时代应不早于南华纪.结合区域地质资料认为其碎屑物质的来源比较明确,主要来自勉略构造带和南侧碧口微地块内的岩浆岩,扬子板块北缘汉南地区出露的岩浆岩也为该地层提供了有限的物质.此次获得的碎屑锆石年龄较为集中,反映的皆为青白口纪到南华纪的年龄信息,结合前人对该区沉积地层的研究资料,认为其可能为一套裂谷环境的沉积地层.   相似文献   

4.
共和盆地西缘原划古元古代金水口岩群中发育一套低级变质的灰色绢云石英片岩、绢云石英岩及黑云石英片岩组合,该套变质岩系原岩沉积时代及变质基底构造属性存在争议。本文对采自青海省兴海县柔起岗地区的两件片岩样品开展了系统的岩石学及LA-ICP-MS锆石U-Pb年代学研究,对其原岩沉积时代、沉积物源及基底构造亲缘性进行了探讨。结果表明,该套片岩两件样品的碎屑锆石U-Pb年龄谱可明显分为新元古代和古元古代两个主年龄谱以及中元古代的两个次年龄谱,新元古代主年龄谱分别为688~908 Ma和711~841 Ma,峰值年龄为788 Ma和780 Ma,古元古代主年龄谱分别为1871~2174 Ma和1832~2194 Ma,峰值年龄为2140 Ma和2072 Ma,中元古代两个次年龄谱分别为1520~1638 Ma和1271~1276 Ma,峰值年龄为1635 Ma和1275 Ma。片岩最小碎屑锆石年龄值688 Ma限定了其原岩的最老沉积时代。塔洞片岩碎屑锆石U-Pb年龄谱特征表明其碎屑物质来源较为复杂,物源主体来自周邻造山带的西秦岭、东昆仑和柴达木盆地北缘构造带的前寒武纪块体,扬子板块对其沉积物源亦有部分贡献,而华北板块没有对其提供沉积物源。更为重要的是,该套片岩锆石U-Pb年龄谱突出显示新元古代早期的构造-岩浆-热事件年龄信息,而没有华北板块典型的1850Ma和2500Ma左右的特征,结合区域资料认为西秦岭源区基底与东昆仑地块、柴达木盆地北缘、祁连地块等一样表现出扬子板块的构造亲缘性,源区基底固结时代为新元古代早期。  相似文献   

5.
云南新平地区大红山群出露于扬子地块西南缘,主要由低绿片岩相-角闪岩相变质的火山-沉积岩组成。大红山群的岩石成因、年代格架及其形成的构造背景缺乏系统研究,制约了地质学家们全面认识和理解扬子西南缘<~1.75 Ga的构造演化历史。本文以大红山群底部老厂河组变沉积岩及其内部变火山岩夹层为重点研究对象,开展岩相学、全岩地球化学和锆石U-Pb定年等综合研究。岩石地球化学研究结果表明,变沉积岩的化学成分与大陆上地壳沉积物成分接近,原岩为成熟度较高的泥岩/页岩,未经历沉积再循环,形成于被动大陆边缘的构造背景;变火山岩原岩化学成分相当于钙碱性过铝质A型流纹岩,形成于造山后的大陆裂谷拉张环境。锆石U-Pb定年结果显示,老厂河组变沉积岩的碎屑锆石记录了2.3~2.2 Ga和1.9~1.75 Ga两个主年龄峰以及2.7~2.6 Ga次年龄峰。结合前人研究结果,表明大红山群物源主要来源于扬子地块西南缘的太古宙-古元古代基底岩石。变火山岩样品的岩浆锆石核部记录了1 713~1 711 Ma的年龄,应代表老厂河组原岩的形成时代,锆石的变质增生边限定峰期变质时代为约843 Ma。综合前人研究结果表明,大红山群普遍经历了849~837 Ma的新元古代变质事件。综上所述,扬子地块西南缘的大红山群完好记录了与Columbia超大陆裂解有关的非造山岩浆活动,新元古代变质事件可能与Rodinia超大陆裂解和聚合过程密切相关。  相似文献   

6.
对东昆仑东段布青山得力斯坦地区出露的上二叠统格曲组砾岩层进行砾石成分、砾度统计及系统的LA-ICP-MS锆石UPb年龄谱分析。结果表明,格曲组砾岩层砾石成分以石英岩和花岗岩为主,硅质岩和基性岩次之,砂岩和灰岩较少,砾石的分散系数为1.54~2.02,该套砾岩为近源快速堆积的产物。砾岩碎屑锆石U-Pb年龄可分为3组:1早奥陶世—晚志留世年龄组为499~409Ma,峰值年龄为426Ma,对应早古生代末期原特提斯洋向北俯冲碰撞产生的一系列构造岩浆事件;2新元古代年龄组为744~619Ma,峰值年龄为744Ma,对应于全球Rodinia超大陆裂解事件;3古元古代年龄组为2443Ma,对应东昆仑地区古元古代构造岩浆热事件。结合碎屑锆石年龄及沉积学特征综合分析,花岗质砾石来源于北侧东昆仑造山带加里东期岩浆弧,沉积岩砾石则可能来自造山带早期的沉积地层,石英岩及其他变质岩砾石则多来自东昆仑基底变质岩系。综合判别,格曲组为一套沉积于活动大陆边缘环境的滨浅海相磨拉石建造,代表南侧古特提斯洋向北俯冲开始的构造阶段,是初始俯冲的沉积构造响应。  相似文献   

7.
云开地块北缘构造混杂岩的岩石成因探讨   总被引:1,自引:0,他引:1  
华南云开地块北缘的信宜贵子地区见大量变玄武岩与变沉积岩混杂产出。变玄武岩多以构造岩块或透镜体产出,地球化学以中等Mg#、富钠贫钾为特征,属亚碱性的拉斑玄武岩系列。轻稀土元素中等富集,无Eu异常,微量元素以富Nb、显著的Sr-Nb-Ta弱亏损为特征。143Nd/144Nd变化于0.512513~0.512655之间,对应的εNd(t)值介于2.89~4.90之间。构造环境判别表明,变玄武岩原岩可能为弧后盆地玄武岩。2个变玄武岩样品的锆石U-Pb年龄为1031±28Ma、1025±39Ma。变沉积岩基质以片岩、变砂岩和石英岩为主,表现为陆缘碎屑沉积特征。2个石英岩样品的碎屑锆石U-Pb年龄显示变沉积岩原岩具有~1.0Ga的物源峰,其最年轻锆石为777Ma和571Ma,原岩沉积时间大致为南华纪-震旦纪。本次研究认为,信宜贵子构造混杂岩是Grenville期弧后盆地玄武岩与新元古代晚期陆缘碎屑沉积物构造混杂堆积的结果,构造混杂的时间可能为奥陶纪-志留纪。  相似文献   

8.
本文应用LA-ICP-MS对浙江浦江地区平水群陈塘坞组砂岩样品进行碎屑锆石U-Pb定年,获得最年轻锆石峰值年龄为828±3.8 Ma,代表了该套地层沉积时代的下限,结合陈塘坞组凝灰岩中获得的SHRIMP锆石UPb年龄825.3±8.1 Ma和830±6 Ma,将浦江地区平水群地层时代限定于新元古代中期,并置于富阳地区的双溪坞群和绍兴地区的平水组之上。浦江地区平水群主体为一套浅变质、弱变形的海相火山熔岩、火山碎屑岩和沉积火山碎屑岩,陈塘坞组沉积岩骨架颗粒统计结果表明,火山岩屑含量在60%~80%,沉积岩屑含量在10%~30%之间,长石含量一般在15%~20%之间,石英含量很少,呈次棱角状,无分选,磨圆差,显示了近源特征。其物源为岩浆弧,沉积岩碎屑锆石年龄集中在850~800Ma之间,缺少1000Ma左右及更老的的碎屑锆石,表明陈塘坞组火山碎屑源于沉积同期的火山岩,同时也说明平水群形成于一个新岩浆弧邻近地区。浦江地区平水群与双桥山群无论在时空上还是构造属性上都显示出配套的弧盆体系特征,表明两者存在一定的成因联系。  相似文献   

9.
为研究东昆仑南缘中下二叠统马尔争组沉积物源及沉积构造背景,对东昆仑南缘哥日卓托地区中下二叠统马尔争组进行了详细的沉积地层划分、沉积环境及碎屑锆石U-Pb年代学进行了研究。结果表明,马尔争组为一套形成于大陆斜坡半深海-深海环境的浊积岩系。碎屑锆石U-Pb年龄谱可明显划分为早古生代和新元古代两个主年龄谱及古、中元古代两个次级年龄谱。主年龄谱分别为396~573Ma和727~947Ma,峰值年龄分别为421 Ma和862Ma。次级年龄谱分别为1117~1993Ma和2319~3063Ma,峰值年龄不明显。本文认为东昆仑南缘哥日卓托地区马尔争组物质来源较为复杂,显示早古生代、新元古代、中元古代和古元古代多个时代物源共同供给的特征。东昆仑造山带早古生代岩浆岩和新元古代岩浆岩为其提供了约60~65%的沉积物源,而古老的变质基底为其提供了仅约30~35%的沉积碎屑。综合区域资料认为马尔争组形成于相对稳定的被动大陆边缘沉积构造背景,该期阿尼玛卿古特提斯洋还未开始向北俯冲。  相似文献   

10.
共和盆地西缘原划古元古代金水口岩群中发育一套低级变质的灰色绢云石英片岩、绢云石英岩及黑云石英片岩组合,该套变质岩系原岩沉积时代及变质基底构造属性存在争议。本文对采自青海省兴海县柔起岗地区的两件片岩样品开展了系统的岩石学及LA-ICP-MS锆石 U-Pb年代学研究,对其原岩沉积时代、沉积物源及基底构造亲缘性进行了探讨。结果表明,该套片岩两件样品的碎屑锆石U-Pb年龄谱可明显分为新元古代和古元古代两个主年龄谱以及中元古代的两个次年龄谱,新元古代主年龄谱分别为688-908 Ma和711-841 Ma,峰值年龄为788 Ma和780 Ma,古元古代主年龄谱分别为1871-2174 Ma和1832-2194 Ma,峰值年龄为2140 Ma和2072 Ma,中元古代两个次年龄谱分别为1520-1638 Ma和1271-1276 Ma,峰值年龄为1635 Ma和1275 Ma。片岩最小碎屑锆石年龄值688 Ma限定了其原岩的最大沉积时代。塔洞片岩碎屑锆石U-Pb年龄谱特征表明其碎屑物质来源较为复杂,物源主体来自周邻造山带的西秦岭、东昆仑和柴达木盆地北缘构造带的前寒武纪块体,扬子板块对其沉积物源亦有部分贡献,而华北板块没有对其提供沉积物源。更为重要的是,该套片岩锆石U-Pb年龄谱突出显示新元古代早期的构造-岩浆-热事件年龄信息,而没有华北板块典型的1850 Ma 和2500 Ma左右的特征,结合区域资料认为西秦岭源区基底与东昆仑地块、柴达木盆地北缘、祁连地块等一样表现出扬子板块的构造亲缘性,源区基底固结时代为新元古代早期。  相似文献   

11.
The Neoproterozoic Tonian strata(ca.870-725 Ma)in the western Jiangnan Orogen archive the records of sedimentary provenance and tectonic setting which can be used to understand the geological evolution of the South China Continent.These strata are separated into the basement and cover sequences by a regional angular unconformity.The basement sequence can be subdivided into the lower and the upper parts by the widespread interbedded ca.840 Ma basalt with pillow structure.In the present work,234 concordant detrital zircon analyses are obtained from three Tonian sandstone samples in the Fanjingshan district,Guizhou Province.Combined with previous results,a total of 1736 analyses of detrital zircon U-Pb ages derived from 12 formations of Tonian strata in the western Jiangnan Orogen are used to decipher the integrated sedimentary and tectonic histories.The zircons from the lowermost part of the basement sequence(the Yujiagou Formation)show oval morphology and display two Paleoproterozoic age peaks at 2325 Ma and 1845 Ma which are similar with the detrital zircon age peaks from the Late Paleoproterozoic to Early Mesoproterozoic Dongchuan/Dahongshan/Hekou groups,suggesting a passive margin basin in which the sediments were mainly sourced from the southwestern Yangtze Block.However,the zircon age population of the lower part of the basement sequence(the Xiaojiahe,Huixiangping formations and their equivalents)indicates the sedimentary derivation from bidirectional sources(the ca.870 Ma arc materials in the south and the old detritus from the southwestern Yangtze Block)which is consistent with a back arc setting for the deposition of the sediments.Zircons from the upper part of the basement sequence(the Duyantang Formation and its equivalent)show euhedral and subangular morphology and display a unimodal age peak at ca.835 Ma.This sequence was possibly deposited in a convergent setting and the detritus were came from the locally distributed syn-collisional igneous rocks.The lower part of the cover sequence(the Xinzhai and Wuye formations and their equivalents)shows a distinct zircon age peak at 815—809 Ma and two subordinate peaks at 2485 Ma and 2018 Ma,suggesting that the basin had gradually transformed into a continental rift basin and received the detritus from the ca.815 Ma post-collisional magmatic rocks as well as from different Paleoproterozoic source rocks in the northern Yangtze Block.We propose a tectonic evolution model that envisages eruption of ca.840 Ma basalt in a back arc basin that existed during ca.870-835 Ma,an angular unconformity was formed during amalgamation of the Yangtze Block and the Cathaysia Block at ca.835-820 Ma and the rifting of the South China Continent was initiated at ca.800 Ma.Our study concludes that the South China Continent was formed on the periphery of the Rodinia supercontinent.  相似文献   

12.
黄亮  王冬兵  王晓林  刘小春  丛峰  朱勋早  方雄 《地球科学》2021,46(11):3861-3879
滇西崇山变质杂岩带位于三江造山带"峰腰"的北段,带内构造挤压变质作用强烈,主体由一套中-深变质岩系(崇山岩群)和晚期花岗岩组成.其中崇山岩群历来被认为是元古代的结晶基底,但至今无精确的年龄依据,其形成时代和构造属性存在较大争议,严重制约了对区域构造演化的认识.对滇西漕涧地区崇山岩群中的岩石组分开展了碎屑锆石U-Pb年代学及岩石地球化学研究,结果显示副变质岩中的锆石均具明显的磨圆特征和较大的岩浆核,其中3件样品的最小一组碎屑锆石年龄分别为366~412 Ma(平均值为395 Ma)、435~508 Ma(平均值为473 Ma)和673~704 Ma(平均值为689 Ma),指示了其原始沉积时代应不早于395 Ma;岩石地球化学表明,副变质岩是一套活动大陆边缘或被动大陆边缘构造背景有关的大陆岛弧碎屑岩,变质基性岩和变质中性岩为同源异相,均具活动大陆边缘的弧火山岩特征.结合副变质岩和两类正变质岩的构造属性相同以及普遍具相互伴生关系的特点,该3类岩石应属同一套地层系统的不同物质组分,崇山岩群主体为一套成岩于晚古生代(236~395 Ma)和形成于陆缘弧环境的火山-沉积地层单元;并与南东侧澜沧增生杂岩的志留纪弧火山岩组合成原-古特提斯洋盆东侧不同时代多岛弧的构造格局.综合研究认为,崇山变质杂岩带内的中-深变质岩系(崇山岩群)不(全)是前人认为的元古代结晶基底建造,应为原-古特提斯洋盆向东俯冲在兰坪-思茅地块西缘形成的一套火山-沉积地层系统;崇山岩群主要由年轻的(晚古生代)地层岩石组成,由于后期遭受中生代和新生代变质变形作用后形成了现今所见的"古老"岩石面貌的中-深变质系.   相似文献   

13.
Early Paleozoic evolution of the northern Gondwana margin is interpreted from integrated in situ U-Pb and Hf-isotope analyses on detrital zircons that constrain depositional ages and provenance of the Lancang Group, previously assigned to the Simao Block, and the Mengtong and Mengdingjie groups of the Baoshan Block. A meta-felsic volcanic rock from the Mengtong Group yields a weighted mean 206Pb/238U age of 462 ± 2 Ma. The depositional age for the previously inferred Neoproterozoic Lancang and Mengtong groups is re-interpreted as Early Paleozoic based on youngest detrital zircons and meta-volcanic age. Detrital U-Pb zircon analyses from the Baoshan Block define three distinctive age peaks at older Grenvillian (1200–1060 Ma), younger Grenvillian (~ 960 Ma) and Pan-African (650–500 Ma), with εHf(t) values for each group similar to coeval detrital zircons from western Australia and northern India. This suggests that the Baoshan Block was situated in the transitional zone between northeast Greater India and northwest Australia on the Gondwana margin and received detritus from both these cratons. The Lancang Group yields a very similar detrital zircon age spectrum to that of the Baoshan Block but contrasts with that for the Simao Block. This suggests that the Lancang Group is underlain by a separate Lancang Block. Similar detrital zircon age spectra suggest that the Baoshan Block and the Lancang Block share common sources and that they were situated close to one another along the northern margin of East Gondwana during the Early Paleozoic. The new detrital zircon data in combination with previously published data for East Gondwana margin blocks suggests the Early Paleozoic Proto-Tethys represents a narrow ocean basin separating an “Asian Hun superterrane” (North China, South China, Tarim, Indochina and North Qiangtang blocks) from the northern margin of Gondwana during the Late Neoproterozoic-Early Paleozoic. The Proto-Tethys closed in the Silurian at ca. 440–420 Ma when this “Asian Hun superterrane” collided with the northern Gondwana margin. Subsequently, the Lancang Block is interpreted to have separated from the Baoshan Block during the Early Devonian when the Paleo-Tethys opened as a back-arc basin.  相似文献   

14.
为了通过碎屑岩的物源对比讨论古亚洲洋的闭合过程,笔者选择西拉木伦河北侧林西双井子地区和南侧奈曼旗下石碑地区的志留纪地层进行碎屑岩锆石U-Pb年代学研究。北侧样品LX0831-11为粉砂质板岩,采于西拉木伦河北岸上志留统杏树洼组。碎屑锆石年龄分为三组:385~531Ma(N=52)、872~1097Ma(N=11)、1344~1901Ma(N=11),碎屑锆石的最小年龄限定地层沉积下限为中-晚泥盆世。南侧样品130417-06为石英岩屑砂岩,采于奈曼旗下石碑组顶部砂岩中。碎屑锆石年龄分为四组:370~523Ma(N=34)、884~1481Ma(N=21)、1573~1900Ma(N=6)、2369~2588Ma(N=8),碎屑锆石的最小年龄限定地层沉积下限为晚泥盆世。这两个分别来自西拉木伦河南、北两侧原志留纪样品,显示一致的志留-泥盆纪及晚元古代碎屑锆石年龄谱,表明两者从泥盆纪开始即具有相同的沉积物源;而代表兴蒙造山带的元古代碎屑锆石在奈曼旗地区的出现,说明泥盆纪以来兴蒙造山带的剥蚀物已到达华北板块北缘。因此,本次碎屑锆石年代学研究暗示华北板块与其北部松辽地块在中-晚泥盆世之前已经完成拼合过程,即此时两者间已不存在古亚洲洋。  相似文献   

15.
《International Geology Review》2012,54(16):2044-2064
The Neoproterozoic succession in the Aksu region of northwestern China forms an unconformable boundary with the lower Precambrian Aksu basement group and consists of the Qiaoenbrak, Yuermeinak, Sugetbrak, and Chigebrak Formations. The two lowermost units include distinct glaciogenic diamictites that indicate distinct episodes of glaciation. In this study, we report the LA-ICP-MS U–Pb ages of detrital zircons and geochemical data from the lower Neoproterozoic strata. The age of the detrital zircon constrains the maximum depositional age to between 769 ± 10 and 727 ± 8 Ma for the Qiaoenbrak diamictites, which are associated with the Kaigas glaciation that occurred during the early Cryogenian period. The youngest detrital zircon age of 719 ± 9 Ma corresponds to the maximum depositional age of the Yuermeinak diamictites, which are associated with the Sturtian glaciation. The detrital zircons from the lower Neoproterozoic strata in the Aksu area indicated four peak ages of 2484, 1948, 861, and 647–581 Ma, which are consistent with the major tectonic episodes in the Tarim Block. The peak age of 2484 Ma represents an Archaean basement, which participated in the worldwide continental nuclei growth event from the late Neoarchaean to the early Palaeoproterozoic. The peak age of 1948 Ma may be associated with the assembly of the Columbia supercontinent, and the 861 and 647–581 Ma are likely associated with the break-up of the Rodinia supercontinent. The combination of geological and geochemical characteristics between the Qiaoenbrak Formation and Aksu Group indicates that the Qiaoenbrak Formation may be penecontemporaneous with the Aksu Group in an active continental margin tectonic setting. Following the break-up of the Rodinia supercontinent, the margin of the Aksu evolved into a passive margin and the Yuermeinak and Sugetbrak Formations were deposited.  相似文献   

16.
UPb dating of detrital zircons from metamorphic and unmetamorphosed siliciclastic units in northern, central, and southern parts of the late Paleozoic South Tianshan (STS) orogen allows us to elucidate depositional ages and provenances of studied deposits and provide important insights into Paleozoic tectonics and evolution of the southwest Central Asian Orogenic Belt (CAOB). In the northern flank of the orogen, the depositional age of metasandstones of the Kembel Complex has been constrained to 446–417 Ma. Greenschist-facies metasandstones of the Kan Complex, associated with the Turkestan suture and previously related to Proterozoic, yielded maximum depositional ages of 438–428 Ma based on the youngest clusters of detrital zircons, although the occurrence of a few younger grains implies, that these rocks may be late Silurian to Devonian in age. Greenschists of the Kan Complex were likely metamorphosed during the Mississippian (>330 Ma), based on the early Serpukhovian age of overlying strata. A similar depositional age has been proven for sandstones of the Balykty Formation, east of the Talas-Ferghana Fault. Detrital zircons ages for these metasediments suggest clastic provenances within Northern and Middle Tianshan. In the axial parts of the STS, coarse-grained turbidite sandstones yielded Silurian to Early Devonian maximum ages. The axial part of the STS was separated from continental domains in the north and south by deep-marine basins; therefore, these turbidite sandstones must have been derived from a local provenance in the STS. This local provenance is comprised of Precambrian crustal fragments, as indicated by high concentration of Precambrian magmatic zircons in detrital populations, along with Silurian and Devonian arc magmatic rocks. Precambrian crust can be inferred in the basement of the Alai microcontinent and Baubashata carbonate platform, which represented the likely provenance areas. Detrital zircons with Ediacaran 650–550 Ma ages in turbidites suggest that during the Neoproterozoic, these crustal fragments may have comprised a single continental domain with the Karakum-Tajik (Garm massif) and Tarim microcontinents, where magmatic rocks and detrital zircons with such ages have been also previously dated. Devonian slope turbidite facies of the Tarim Craton in the south Ferghana Range contain Precambrian detrital zircons with ages matching those of the Tarim, and numerous Paleozoic zircons clustering at 446 and 441 Ma. Paleozoic zircon ages indicate the occurrence of unidentified Ordovician and early Silurian magmatic rocks in northern and western Tarim. New data provide further evidence that Paleozoic evolution of CAOB was controlled by northward motion of the Precambrian terranes rifted off the Gondwana and colliding with the continental masses of Kazakhstan and Siberia in the north.  相似文献   

17.
滇西允沟岩组为一套低绿片岩相的泥质浅变质岩,岩性以云母石英片岩、云母石英千枚岩、云母片岩、细晶灰岩为主,局部夹硅质岩,一直以来被认为是前寒武纪变质基底的重要组成部分。其原岩以碎屑岩为主,含有部分灰岩、白云岩,是一套形成于特提斯洋被动大陆边缘的半深海-深海沉积物,因此,是研究特提斯洋构造演化的重要窗口。但是,对允沟岩组的形成时代至今仍存在较大争议,为此本文选取允沟岩组中的片岩进行了碎屑锆石U-Pb精确定年。分析结果表明,允沟岩组原岩沉积时代为新元古代晚期-寒武纪期间(551~491Ma),主要由新太古代、新元古代及少量古元古代碎屑物质组成。其中,大量太古宙晚期碎屑锆石表明其源区有太古宙基底的存在,而1749Ma这组碎屑锆石可能与哥伦比亚超大陆聚散有关,956Ma和848Ma这两组锆石记录的事件可能是对罗迪尼亚超大陆三阶段裂离事件的前两期的响应。此外,还含有少量泛非运动信息,但泛非运动对其源区的影响极其有限。结合前人研究成果和本文碎屑锆石年龄谱,显示允沟岩组形成于原特提斯洋的被动陆缘,与印度板块、南羌塘地块具有显著的亲缘性。  相似文献   

18.
羌塘地块作为近年地质研究的热点,其构造属性及是否存在太古宙-元古宙基底等问题一直存在争议。文中采用LA ICP MS锆石U Pb法对西藏荣玛牛山上三叠统日干配错组碎屑锆石进行年代学研究,结果表明:(1)日干配错组沉积岩中最年轻碎屑锆石年龄为(215±2) Ma,表明日干配错组的最大沉积年限为该时间,结合区域地质资料可将其沉积时代限定为晚三叠世诺利期-瑞替期。(2)年龄介于(580±6)~(212±2) Ma,峰值为(298±2) Ma,表明在晚古生代早期受古特提斯洋发育早期地壳减薄伸展阶段岩浆活动影响,冈瓦纳古陆为其物源区;峰值为(442±3) Ma,表明在中古生代受加里东期扬子板块和华夏板块碰撞、拼合而形成的岩浆活动的影响,物源区为扬子大陆周缘;只获得1颗锆石650~500 Ma年龄,表明源区基本未受到泛非运动岩浆活动的影响。(3)碎屑锆石出现相对少量介于(1 091±6)~(757±6) Ma的年龄,表明在中-新元古代受格林威尔-晋宁构造岩浆热事件的影响,物源区与羌南地块一致。(4)日干配错组沉积岩碎屑锆石测年得到大量介于(3 214±7)~(1 380±15) Ma年龄值,占总量的近60%,峰值为(1 875±5) Ma和(2 531±6) Ma,表明羌塘地块受元古宙羌塘结晶基底主期构造热事件和太古宙末全球超大陆拼合事件影响显著,且羌塘地块存在太古宙-元古宙基底。  相似文献   

19.
选取西秦岭两当地区太阳寺岩组的变质碎屑岩为研究对象,依据CL图像,采用LA-ICP-MS锆石U-Pb同位素定年方法,探讨两当地区太阳寺岩组的形成时代与物源。两当地区太阳寺岩组的锆石U-Pb年龄及与邻近地层的变质变形关系和时代对比表明,太阳寺岩组的沉积时代为426~420Ma,为晚志留世—末志留世。太阳寺岩组的碎屑锆石年龄谱可分为4组:500~420Ma、955~550Ma、1866~1227Ma和3039~2132Ma。早古生代年龄组呈现最强的烈峰值特征,峰值为438Ma,该组锆石物源以西秦岭北缘构造带为主;新元古代年龄组的碎屑锆石物源为西秦岭北缘构造带和北祁连造山带;中元古代和古元古代—新太古代年龄组的碎屑锆石物源主要来自于北祁连造山带和西秦岭北缘构造带基底岩系。综合分析认为,西秦岭北缘构造带为天水两当地区太阳寺岩组碎屑沉积物的主要源区。  相似文献   

20.
选取西秦岭两当地区太阳寺岩组的变质碎屑岩为研究对象,依据CL图像,采用LA-ICP-MS锆石U-Pb同位素定年方法,探讨两当地区太阳寺岩组的形成时代与物源。两当地区太阳寺岩组的锆石U-Pb年龄及与邻近地层的变质变形关系和时代对比表明,太阳寺岩组的沉积时代为426~420Ma,为晚志留世—末志留世。太阳寺岩组的碎屑锆石年龄谱可分为4组:500~420Ma、955~550Ma、1866~1227Ma和3039~2132Ma。早古生代年龄组呈现最强的烈峰值特征,峰值为438Ma,该组锆石物源以西秦岭北缘构造带为主;新元古代年龄组的碎屑锆石物源为西秦岭北缘构造带和北祁连造山带;中元古代和古元古代—新太古代年龄组的碎屑锆石物源主要来自于北祁连造山带和西秦岭北缘构造带基底岩系。综合分析认为,西秦岭北缘构造带为天水两当地区太阳寺岩组碎屑沉积物的主要源区。  相似文献   

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