首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 312 毫秒
1.
大别造山带花岗岩类和正片麻岩的Rb/Sr分区   总被引:2,自引:0,他引:2  
金成伟  郑祥身 《岩石学报》2000,16(3):420-424
根据花岗岩类和片麻岩的Rb/Sr比值和其他岩相学和地球化学性质,大别造山带可以分为下列四个带:(1)北大别北带:是一个灰色片麻岩和基性、超基性岩带,其灰色片麻岩的Rb/Sr比值为0.01~0.09;(2)北大别南带:为中酸性岩浆活动和强裂混合岩化的区域,其片麻岩的Rb/Sr比值为0.11%~0.40,花岗岩类为0.3%~0.9;(3)南大别带:为一构造混杂带,超高压变质作用和岩浆活动和混合岩化均有  相似文献   

2.
对青海锡铁山矿区几个关键地质问题的认识   总被引:6,自引:0,他引:6  
锡铁山矿区晚奥陶世滩间山群与早元古代达肯大坂群间的接角关系为隐蔽不整合,其间发育基底剥离断层(F1),基底剥离断层之下的“过渡带”实际上是一条退条质的下滑型韧性剪切带。而滩间山群则被构造肢解为O3tm^a-b褶叠层与O3tn^c-d褶皱冲断岩片,其间发育上剥离断层(F2),两条剥离断层面上、下因构造剥蚀充失了大厌地层。并认为和里东晚期的伸展构造体制形成锡铁山变质核杂岩,海西期的抗日压构造体制形成褶  相似文献   

3.
南祁连拉脊山口增生楔的结构与组成特征   总被引:2,自引:1,他引:1  
造山带内增生楔/增生杂岩结构与组成的精细研究可为古洋盆演化和古板块构造格局重建提供最直接证据。北祁连构造带发育多条增生杂岩带,记录了阿拉善和中祁连地块之间原特提斯洋的俯冲和闭合过程,然而南祁连构造带大地构造演化长期存在争议。地质填图结果表明,南祁连构造带拉脊山口地区存在一套强烈片理化的玄武岩、灰黑色和红色硅质岩、砂岩和泥岩组合,它们与一套呈现"块体裹夹于基质"结构特征的混杂岩共同构成了增生杂岩,发育双重逆冲构造、逆冲断层、无根褶皱、紧闭褶皱和透入性面理。该增生杂岩与蛇绿岩之间为断层接触,并位于断层下盘。混杂岩是由斜长花岗岩(561Ma)、斜长岩(507Ma)、辉绿岩、玄武岩、硅质岩和砂岩等外来或原地岩块与浊流成因的细碎屑岩基质共同组成;基质和砂岩块体均发育同沉积构造,呈现出滑塌堆积典型特征。空间上,拉脊山口增生杂岩与上覆蛇绿岩被断层所分割且共同仰冲于中祁连南缘青石坡组浊积岩之上,具有与东侧昂思多地区增生杂岩和蛇绿岩相似的岩石组成、构造变形和时空结构特征。它们与南侧的岛弧带共同构成了南祁连构造带寒武纪-早奥陶世沟-弧体系,指示了寒武纪-早奥陶世时期南祁连洋盆向南俯冲。  相似文献   

4.
福建省花岗岩类Nd-Sr同位素特征及其意义   总被引:19,自引:8,他引:11  
凌洪飞  沈渭洲 《岩石学报》1999,15(2):255-262
本文报道了福建省范围内前人分析数据稀疏或空白区域内的18个古生代-中生代花岗岩体的Nd、Sr同位素组成:εNd(t)=-3.6~-16.4,(87Sr/86Sr)i=0.7055~0.7318,tDM=1.2~2.3Ga。结合前人分析数据,区分出三个地域区带:福安-南靖断裂以东的沿海带:εNd(t)=-1.5~-6.8,(87Sr/86Sr)i=0.7056~0.7099,tDM=1.1~1.45Ga,弧后伸展构造背景下的幔-壳岩浆混合是该带花岗岩的主要成岩方式;福安-南靖断裂以西的内陆区域:εNd(t)=-4.0~-16.4,(87Sr/86Sr)i=0.7064~0.7410,tDM=1.3~2.3,其中加里东-印支期花岗岩主要由与麻源群相当之地壳物质部分熔融形成,而燕山期花岗岩,一部分由与麻源群相当或较年轻的地壳物质部分熔融产生,也有一部分可能由壳-幔岩浆混合形成;福建省南部的纬向带:εNd(t)=-3.6~-7.5,(87Sr/86Sr)i=0.7055~0.7099,tDM=1.2~1.55,同位素特征与沿海带相似,但该带构造拉张发育时间较沿海带略早  相似文献   

5.
基于新疆塔北地区30余条层滑断裂带的地质,地球物理和岩石物性参数的详细观察,发现由主干断裂派生的相关断裂叠次出现,有序展布,不论在野外露头或是在地震剖面上均表现得很清楚。综合其主干断裂从下盘至上盘的各种特征,层滑冲断带的细结构被划分出五个带,邓(1)下盘短切冲断层带;(2)主干冲断层带;(3)毗邻冲断层带;(4)外延冲断层带;(5)尾随张裂构造带。最后还叙及了层滑动冲断带细结构研究的石油地质意义。  相似文献   

6.
对豫北煤田焦作、鹤壁和安阳矿区二1煤层的对比样(构造煤和原生结构煤)进行了显微镜和扫描电镜下观察、镜质组反射率测试、X射线衍射分析和化学分析等。研究结果表明,构造煤因发生了断裂构造地球化学作用,其化学成分、元素成分和煤分子结构与原生结构煤明显不同:构造煤的挥发分含量(%)比原生结构煤一般要小0.55~3.48,平均要小1.59;构造煤和原生结构煤相比,碳含量(%)平均增加了3.1,氢含量(%)平均  相似文献   

7.
中国三叠纪中晚期—早更新世构造应力值的估算   总被引:13,自引:0,他引:13       下载免费PDF全文
万天丰  曹秀华 《地球科学》1997,22(2):145-152
选用具有测年数据的含石英或橄榄石的岩石,在透射电镜下观测位错密度,从而估算了中国三叠纪中、晚期—早更新世432个构造应力值(差应力值),初步发现在板块碰撞带或大断层带附近差应力值增大,而在板块内部则逐渐变小.在各构造期的晚期地壳上部平均差应力值也是不同的,印支期(230~208Ma)为105.5MPa;燕山期(170~135Ma)为99.4MPa;四川期(100~52Ma)为107.4MPa;华北期(30~23.3Ma)为76.7MPa;喜马拉雅期(10~0.73Ma)为92.6MPa.  相似文献   

8.
为厘定库车坳陷西段盐岩沉积边界盐构造演化特征及影响因素,利用野外地质调查、工业地震剖面解析和三维沙箱物理模拟实验对阿瓦特构造带进行了综合分析.结果表明:(1)阿瓦特构造带是库车坳陷西段典型挤压构造转换带,由乌什凹陷至阿瓦特凹陷,形成了由叠瓦逆冲断层向盐相关褶皱过渡的构造转换特征;(2)塔拉克走滑断层发育于乌什凹陷和阿瓦特凹陷交界处,是一条发育于盐上覆层的滑脱形成调节性横断层.受该断层影响,在盐上覆地层中形成塔拉克向斜、塔拉克背斜等拖曳式盐相关构造.越靠近塔拉克走滑断层,褶皱拖曳揉皱作用越强,甚至容易发育褶皱相关断层,促使盐岩出露地表;(3)阿瓦特构造转换带新生代变形主要受区域挤压作用、盐层分布及基底断裂活动共同控制.  相似文献   

9.
夏元  陈家驹  徐先兵 《地质论评》2022,68(2):2022030025-2022030025
北北东向鹰扬关构造带位于华南板块西南部,其大地构造属性尚存在蛇绿混杂岩、裂谷带与陆内构造变形带之争。笔者等在物质组成与年代学综述的基础之上开展了详细的构造解析,厘定了鹰扬关构造带的大地构造属性和构造演化过程。鹰扬关构造带主体由新元古代中—晚期岛弧型安山岩和玄武岩、裂谷型双峰式火山岩、盖帽碳酸盐岩与泥砂岩等物质组成。不同时代和不同岩性的混杂是新元古代晚期裂谷和伸展构造背景下重力作用的产物。新元古代沉积混杂岩在显生宙经历了广西期、印支晚期与燕山期造山作用的叠加,导致了不同岩块之间往往呈断层接触。广西期(450~415 Ma)造山作用使新元古代沉积混杂岩发育近E—W向紧闭褶皱和逆断层并被花岗岩侵位。印支晚期(227~220 Ma)造山作用导致NNE向鹰扬关构造带的形成,表现为NNE—SSW向褶皱、逆断层与左旋韧性剪切带。燕山期造山作用使鹰扬关构造带中NNE—SSW向断裂发生构造活化,强烈的正断作用和右行走滑控制了白垩纪上叠盆地的发育。综合物质组成、年代学和构造解析证据,鹰扬关构造带不是新元古代或早古生代蛇绿混杂岩,而是印支晚期陆内构造变形带,不具有板块缝合带的大地构造属性。  相似文献   

10.
夏元  陈家驹  徐先兵 《地质论评》2022,68(6):2006-2020
北北东向鹰扬关构造带位于华南板块西南部,其大地构造属性尚存在蛇绿混杂岩、裂谷带与陆内构造变形带之争。笔者等在物质组成与年代学综述的基础之上开展了详细的构造解析,厘定了鹰扬关构造带的大地构造属性和构造演化过程。鹰扬关构造带主体由新元古代中—晚期岛弧型安山岩和玄武岩、裂谷型双峰式火山岩、盖帽碳酸盐岩与泥砂岩等物质组成。不同时代和不同岩性的混杂是新元古代晚期裂谷和伸展构造背景下重力作用的产物。新元古代沉积混杂岩在显生宙经历了广西期、印支晚期与燕山期造山作用的叠加,导致了不同岩块之间往往呈断层接触。广西期(450~415 Ma)造山作用使新元古代沉积混杂岩发育近E—W向紧闭褶皱和逆断层并被花岗岩侵位。印支晚期(227~220 Ma)造山作用导致NNE向鹰扬关构造带的形成,表现为NNE—SSW向褶皱、逆断层与左旋韧性剪切带。燕山期造山作用使鹰扬关构造带中NNE—SSW向断裂发生构造活化,强烈的正断作用和右行走滑控制了白垩纪上叠盆地的发育。综合物质组成、年代学和构造解析证据,鹰扬关构造带不是新元古代或早古生代蛇绿混杂岩,而是印支晚期陆内构造变形带,不具有板块缝合带的大地构造属性。  相似文献   

11.
Pant-y-ffynnon Quarry in South Wales yielded a rich cache of fossils in the early 1950s, including articulated specimens of new species (the small sauropodomorph dinosaur Pantydraco caducus and the crocodylomorph Terrestrisuchus gracilis), but no substantial study of the wider fauna of the Pant-y-ffynnon fissure systems has been published. Here, our overview of existing specimens, a few described but mostly undescribed, as well as freshly processed material, provides a comprehensive picture of the Pant-y-ffynnon palaeo-island of the Late Triassic. This was an island with a relatively impoverished fauna dominated by small clevosaurs (rhynchocephalians), including a new species, Clevosaurus cambrica, described here from a partially articulated specimen and isolated bones. The new species has a dental morphology that is intermediate between the Late Triassic Clevosaurus hudsoni, from Cromhall Quarry to the east, and the younger C. convallis from Pant Quarry to the west, suggesting adaptive radiation of clevosaurs in the palaeo-archipelago. The larger reptiles on the palaeo-island do not exceed 1.5?m in length, including a small carnivorous crocodylomorph, Terrestrisuchus, and a possible example of insular dwarfism in the basal dinosaur Pantydraco.  相似文献   

12.
Lithostratigraphy, physicochemical stratigraphy, biostratigraphy, and geochronology of the 77–70 Ma old series bracketing the Campanian–Maastrichtian boundary have been investigated by 70 experts. For the first time, direct relationships between macro- and microfossils have been established, as well as direct and indirect relationships between chemo-physical and biostratigraphical tools. A combination of criteria for selecting the boundary level, duration estimates, uncertainties on durations and on the location of biohorizons have been considered; new chronostratigraphic units are proposed. The geological site at Tercis is accepted by the Commission on Stratigraphy as the international reference for the stratigraphy of the studied interval. To cite this article: G.S. Odin, C. R. Geoscience 334 (2002) 409–414.  相似文献   

13.
Robert L. Linnen   《Lithos》2005,80(1-4):267-280
The solubilities of columbite, tantalite, wolframite, rutile, zircon and hafnon were determined as a function of the water contents in peralkaline and subaluminous granite melts. All experiments were conducted at 1035 °C and 2 kbar and the water contents of the melts ranged from nominally dry to approximately 6 wt.% H2O. Accessory phase solubilities are not affected by the water content of the peralkaline melt. By contrast, solubilities are affected by the water content of the subaluminous melt, where the solubilities of all the accessory phases examined increase with the water content of the melt, up to 2 wt.% H2O. At higher water contents, solubilities are nearly constant. It can be concluded that water is not an important control of accessory phase solubility, although the water content will affect diffusivities of components in the melt, thus whether or not accessory phases will be present as restite material. The solubility behaviour in the subaluminous and peralkaline melts supports previous spectroscopic studies, which have observed differences in the coordination of high field strength elements in dry vs. wet subaluminous granitic glasses, but not for peralkaline granitic glasses. Lastly, the fact that wolframite solubility increases with increasing water content in the subaluminous melt suggests that tungsten dissolved as a hexavalent species.  相似文献   

14.
Some olistolites reworked in a Tertiary flysch of Mount Parnon (Peloponnesus, Greece) exhibit a Late Permian assemblage, dominated by Paradunbarula (Shindella) shindensis, Hemigordiopsis cf. luquensis and Colaniella aff. minima. This association corresponds to the Late Wuchiapingian (=Late Dzhulfian), a substage whose algae and foraminifera are generally little known. Contemporaneous limestones crop out in the middle part of the Episkopi Formation in Hydra, but they are rather commonly reworked in Mesozoic and Cainozoic sequences. The palaeobiogeographical affinities shared by the foraminiferal markers of Greece, southeastern Pamir, and southern China, are very strong (up to the specific level), and are congruent with the Pangea B reconstructions. To cite this article: E. Skourtsos et al., C. R. Geoscience 334 (2002) 925–931.  相似文献   

15.
PALEONTOLOGY     
正20141596 Liu Yunhuan(School of Earth Sciences and Resources,Chang’an University,Xi’an 710054,China);Shao Tiequan Early Cambrian Quadrapyrgites Fossils of Xixiang Boita in Southern Shaanxi Province(Journal of Earth Sciences and Environment,ISSN1672-6561,CN61-1423/P,35(3),2013,p.39-43,3 illus.,20 refs.)  相似文献   

16.
正20141719 Chen Zhijun(State Key Laboratory of Geological Processes and Mineral Resources,China University of Geosciences,Wuhan 430074,China);Chen Jianguo Automated Batch Mapping Solution for Serial Maps:A Case Study of Exploration Geochemistry Maps(Journal of Geology,ISSN1674-3636,CN32-1796/P,37(3),2013,p.456-464,2 illus.,2 tables,10 refs.)  相似文献   

17.
正20140962 Chen Fenning(Xi’an Institute of Geology and Mineral Resources,Xi’an710054,China);Chen Ruiming Late Miocene-Early Pleistocene Ostracoda Fauna of Gyirong Basin,Southern Tibet(Acta Geologica Sinica,ISSN0001-5717,CN11-1951/P,87(6),2013,p.872-886,6illus.,56refs.)  相似文献   

18.
PETROLOGY     
正1.IGNEOUS PETROLOGY20142008Cai Jinhui(Wuhan Center,China Geological Survey,Wuhan 430205,China);Liu Wei Zircon U-Pb Geochronology and Mineralization Significance of Granodiorites from Fuzichong Pb-Zn Deposit,Guangxi,South China(Geology and Mineral Resources of South China,ISSN1007-3701,CN42-1417/P,29(4),2013,p.271-281,7illus.,  相似文献   

19.
正20141205Cheng Weiming(State Key Laboratory of Resources and Environmental Information System,Institute of Geographic Sciences and Natural Resources Research,CAS,Beijing 100101,China);Xia Yao Regional Hazard Assessment of Disaster Environment for Debris Flows:Taking Jundu Mountain,Beijing as an  相似文献   

20.
正20141266Fan Chaoyan(Guangdong Provincial Key Laboratory of Mineral Resources and Geological Processes,Guangzhou 510275,China);Wang Zhenghai On Error Analysis and Correction Method of Measured Strata Section with Wire Projection Method(Journal of  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