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1.
肯得隆镁铁-超镁铁质岩体位于青海柴达木盆地北缘欧龙布鲁克微陆块中。岩体为半隐伏岩体,地表零星出露。岩体岩石类型丰富,有蛇纹岩、单辉橄榄岩、二辉橄榄岩、橄榄二辉岩、橄榄单辉岩、橄榄苏长辉长岩、橄榄角闪辉长岩、角闪辉长岩、蚀变辉长岩、斜长岩。辉长岩、辉石岩中见稀疏浸染状、星点浸染状钛铁矿。钛铁矿含量以5%~10%为主,个别含量可达10%~20%,具海绵陨铁结构,属岩浆晚期矿化作用产物。岩体中辉长岩锆石U-Pb年龄为491±3Ma(MSWD=0.7)。岩体岩石的化学组成属于拉斑玄武质系列,各岩性岩石的稀土元素配分形式基本一致,均呈轻稀土富集的右倾型。微量元素特征表现为富集大离子亲石元素(Cs、Rb、Ba、Th、U),亏损高场强元素(Nb、Ta、Ti、P)。岩体(87Sr/86Sr)i值为0.704731~0.710280,εNd(t)=-4.49~+0.83。岩浆在冷凝过程中发生了橄榄石-单斜辉石-斜方辉石-斜长石-普通角闪石的分离结晶作用。岩石地球化学特征表明岩体受到同化混染作用。肯得隆岩体的原生岩浆为普通的玄武质岩浆,源自被古生代俯冲熔/流体交代的富集岩石圈地幔。钛铁矿的富集机制是:岩浆在氧逸度低于NNO条件下经历了相对高度的分异演化而最终达到钛铁矿富集。  相似文献   

2.
为研究西伯利亚板块东南缘晚古生代板内伸展开始时间及地幔属性。基于1∶5万野外宏微观调查,采用LA-MC-ICP-MS锆石U-Pb定年法对分布于东乌旗西部的角闪石辉长岩进行了年龄测定和岩石地球化学测试。结果表明:角闪辉长岩主要由斜长石、角闪石和单斜辉石组成,锆石U-Pb年龄为280.8±1.5Ma,属早二叠世。地球化学数据显示:岩石具较高SiO2(48.87%~53.70%)、TiO2(0.73%~2.27%)、Al2O3(15.05%~16.69%)的含量,中等至较高的MgO(4.84%~9.25%)、FeOT(6.91%~10.47%)和较低的CaO(5.80%~7.94%)。富Na2O(2.75%~3.90%),贫K2O(1.01%~1.90%),为铁质—富铁质碱性和拉斑玄武岩系列岩石组合。稀土总量较高(∑REE为97.50×10-6~251.16×10-6),轻重稀土分异程度中等[(La/Yb)N=4.23~7.12],Eu异常不明显(δEu=0.85~0.98)。岩石富集大离子亲石元素(LILE)Ba、Sr、K等,相对亏损高场强元素(HFSE)Nb、Ta、Th等,高的Zr(87×10-6~289×10-6)和Zr/Y(4.03~7.66)比值,与板内幔源岩浆作用的产物一致。综上,我们认为角闪辉长岩为板内伸展构造体制下富集型地幔橄榄岩部分熔融形成的玄武质岩浆岩浆经分离结晶作用后形成的,标志着~280 Ma西伯利亚板块东南缘晚古生代造山过程进入到板内非造山阶段。  相似文献   

3.
王萌  张招崇  侯通  骆文娟 《岩石学报》2011,27(9):2665-2678
大板山镁铁-超镁铁质杂岩体位于攀西地区西北部,受金河-菁河断裂带控制,主要岩石类型有辉长岩、苏长辉长岩和二辉橄榄岩。本次研究集中于苏长辉长岩和二辉橄榄岩,其中,二辉橄榄岩具有明显的堆晶结构,橄榄石Fo值最高可达81.4。二辉橄榄岩SiO2含量为42.93%~44.18%,苏长辉长岩SiO2含量为44.89%~52.76%,稀土总量(∑REE)相对较低(23.2×10-6~61.7×10-6),并均呈现出近平行的、相对平缓的右倾稀土元素配分模式,说明其为同源岩浆演化的关系。此外,大部分样品相对富集大离子亲石元素(LILE;如Rb、Sr、Ba等),适度亏损高场强元素(HFSE;如Nb、Ta、Ti等)。结合其较低的SiO2含量和微量元素比值(如Th/Ta和La/Nb等),表明岩浆未遭受大量的地壳混染。岩相学和岩石地球化学特征均显示了非常明显的分离结晶作用。根据(Tb/Yb)PM-(Yb/Sm)PM图解,大板山岩体的原始岩浆主要来源于岩石圈地幔轻度富集不相容元素的尖晶石相二辉橄榄岩。二辉橄榄岩样品中橄榄石Fo-NiO图解中多数点落在硫化物未熔离的范围,且样品全岩Cu/Zr比值为7.04~103,而苏长辉长岩中Cu/Zr比值为0.88~5.56,反映了二辉橄榄岩-苏长辉长岩可能经历了由S不饱和到过饱和的过程。推测硫化物的熔离可能是岩浆在上地壳岩浆房中发生了以橄榄石和辉石为主的分离结晶作用,造成硫化物达到过饱和。锆石LA-ICP-MS测年表明,岩体年龄为259.69±0.61Ma,与峨眉山大火成岩省其它镁铁-超镁铁质岩体的形成时间基本一致。  相似文献   

4.
骆驼山镁铁--超镁铁岩体主要岩石类型有单辉橄长岩、橄榄辉长苏长岩、橄长岩、辉长苏长岩、辉长岩。橄榄石Fo为76~83,为贵橄榄石。辉石化学特征以及主量元素特征表明其属拉斑玄武岩系列,稀土元素配分曲线总体表现为轻稀土稍富集、重稀土微分异的特征。微量元素具有大离子亲石元素(Rb、Ba、Sr)相对富集,高场强元素Ta、Hf、Th相对亏损的特征。岩浆演化过程中分离结晶作用主要受单斜辉石控制。Nb/U、Ce/Pb值更接近于地壳值以及敏感元素比值协变关系表明岩浆演化过程发生了同化混染作用。Th/Yb-Nb/Yb、La/Ba-La/Nb之间的关系指示岩浆源区可能为流体交代改造的富集型岩石圈地幔。  相似文献   

5.
在中国东部赣东北朱溪矿集区枣林地段发现两条新生代碧玄岩岩脉。地球化学研究表明该碧玄岩具有低SiO2(41.08%~42.94%),高Mg#(0.61~0.65),高TiO2(2.19%~2.43%),高Na2O+K2O(4.95%~6.30%)的特点。∑REE为299.16×10-6~375.00×10-6,LREE/HREE比值为5.45~6.71,表明轻稀土富集,δEu为0.88~0.94,具微弱Eu负异常。微量元素特征表现出较高Ni、Cr、Sc含量,蛛网图显示明显富集Nb、Ta、Th、Zr等元素,亏损Ba、Ti、K、P等。主量元素相关图解和不相容元素比值显示岩石在演化过程中未遭受地壳混染。综合分析岩石微量元素数据及相关图解,文章认为由于太平洋板块俯冲,导致软流圈地幔携带碳酸盐熔体上涌与岩石圈地幔相互作用,使得0.2%~0.5%石榴石相二辉橄榄岩与0.5%~1%尖晶石相二辉橄榄岩发生部分熔融,生成碧玄岩原始岩浆。  相似文献   

6.
大道尔吉蛇绿岩是中祁连地块和南祁连褶皱带之间蛇绿混杂岩带的重要组成部分。出露的岩石单元包括地幔橄榄岩、镁铁–超镁铁质堆晶杂岩和玄武安山岩。其中镁铁–超镁铁质堆晶杂岩包括三个堆晶旋回,单个堆晶旋回底部为含铬尖晶石纯橄岩,向上逐渐变为透辉石岩(辉石橄榄岩)→辉长岩等。堆晶杂岩中辉石橄榄岩Sm-Nd同位素等时线年龄为441±58 Ma,为加里东中期岩浆活动的产物。地球化学特征显示:地幔橄榄岩MgO(40.41%~40.96%)、Cr(3590×10~(–6)~7340×10~(–6))、Ni(1480×10~(–6)~1710×10~(–6))含量高,而Al_2O_3(0.35%~0.59%)、TiO_2(0.03%~0.04%)和∑REE(0.81×10~(–6)~1.84×10~(–6))含量低,具亏损地幔岩的特征;镁铁–超镁铁质堆晶杂岩的主量元素变化大,重稀土元素富集,正Eu异常(δEu=1.22~2.15);玄武安山岩SiO_2为54.90%~57.76%,MgO为3.50%~5.45%,TiO_2为0.72%~1.12%,Na_2O/K_2O1,∑REE为24.9×10~(–6)~53.4×10~(–6),LaN/YbN=1.0~1.7,具平坦稀土配分模式,与E-MORB相似,同时富集Ba、Rb、Th等大离子亲石元素,亏损Nb、Ta、Zr、Ti等高场强元素,具弧后盆地火山岩地球化学特征。综合区域地质、岩石组合和地球化学特征,认为大道尔吉蛇绿岩属构造肢解的蛇绿岩残片,具有俯冲带(SSZ)型蛇绿岩的特征,形成于弧后盆地环境,为奥陶纪柴北缘洋向中祁连地块俯冲,引起弧后扩张形成。  相似文献   

7.
目前关于内蒙古东乌旗晚古生代花岗岩中辉石橄榄包体的精确年代学及其构造意义不清,直接制约了该区晚古生代地幔性质及构造演化的探讨.对东乌旗新发现的辉石橄榄岩进行了岩相学、全岩地球化学和锆石U-Pb定年研究.结果表明,辉石橄榄岩主要由橄榄石、角闪石、斜方辉石及少量斜长石、黑云母、单斜辉石组成;锆石U-Pb年龄为317.8±1.6 Ma,属晚石炭世.地球化学数据显示,岩石SiO2含量为40.28%~44.50%、MgO含量为23.42%~29.44%、Na2O+K2O含量为1.00%~2.12%(小于3.5%),具有低m/f比值(3.13~3.86)和高FeOT含量(11.18%~14.70%)、高Mg#值(75.60~79.26),属铁质超镁铁岩和拉斑玄武岩系列.岩石稀土总量较高(∑REE=31.98×10-6~72.60×10-6),轻稀土(LREE)相对于重稀土(HREE)富集,(La/Yb)N=3.56~7.72,Eu异常不明显(δEu=0.79~1.65),球粒陨石标准化稀土元素配分模式表现为右倾型.岩石富集大离子亲石元素Rb、Sr、K等,相对亏损高场强元素Nb、Ta,具明显的Nb、Ta、Ti负异常;其形成于受俯冲流体改造的岩石圈地幔的减薄作用,并且岩浆在演化过程中遭受了地壳物质的同化混染作用.   相似文献   

8.
单斜辉石是坡北镁铁-超镁铁杂岩体的主要造岩矿物之一,在各岩相中普遍存在。本文对岩体各岩相中单斜辉石的矿物化学组成进行了电子探针和LA-ICPMS分析,以探明岩体性质、形成的构造背景及演化过程。分析表明,单斜辉石主要氧化物含量为:SiO21.05%~54.00%、MgO 13.95%~17.64%、CaO 19.87%~23.56%、FeO3.44%~6.58%、TiO20.13%~1.36%、Al2O32.17%~4.21%、Na2O 0.17%~0.50%、Cr2O30.01%~1.27%。岩石判别图解表明寄主岩浆为亚碱性拉斑玄武岩,形成于岛弧环境。单斜辉石的结晶温度范围介于1 141~1 221℃。∑REE和(Ce/Yb)N值表明从(异剥)橄榄岩和橄榄单辉辉石岩到橄榄辉长岩和角闪辉长岩,岩浆结晶作用增强。与岩浆正常结晶演化相比,(异剥)橄榄岩和橄榄单辉辉石岩中单斜辉石的SiO2、Na2O含量有所增大,角闪辉长岩和橄榄辉长岩中单斜辉石的CaO含量略有富集,结合前人研究成果和围岩性质,初步认为成岩过程中,可能发生过地壳同化混染作用,其中大理岩为角闪辉长岩和橄榄辉长岩提供了部分Ca元素,而黑云母石英片岩则为(异剥)橄榄岩和橄榄单辉辉石岩贡献了Si、Na等。(异剥)橄榄岩和橄榄单辉辉石岩具较低的FeO含量,此外黑云母石英片岩混入其中,这可能是引起硫化物熔离的重要因素。  相似文献   

9.
西藏雅鲁藏布江缝合带东段泽当地幔橄榄岩特征及其意义   总被引:1,自引:1,他引:0  
泽当岩体位于雅鲁藏布江缝合带东段,主要由地幔橄榄岩、辉长辉绿岩和基性火山岩等组成。地幔橄榄岩主要为方辉橄榄岩和二辉橄榄岩,有少量透镜状纯橄岩。地幔橄榄岩经历了强烈的塑性变形作用。地幔橄榄岩中橄榄石的Fo值为89.6~91.8,属镁橄榄石;斜方辉石为顽火辉石,En 87.8~90.3;单斜辉石En 44.1~50.0,主要为顽透辉石和透辉石。铬尖晶石的Cr#值(=100×Cr/(Cr+Al))为17.0~93.6,其中,二辉橄榄岩和方辉橄榄岩中的铬尖晶石为富铝型尖晶石,纯橄岩中的铬尖晶石Cr#最高,为富铬型尖晶石。地幔橄榄岩的部分熔融程度为17%~34%,表明泽当地幔橄榄岩可能经历了多阶段的过程。亏损的主量元素组成和低于原始地幔的稀土元素含量(0.15×10-6~0.61×10-6)指示泽当地幔橄榄岩为经历过部分熔融和熔体抽取的亏损残余地幔岩石。REE配分型式为中稀土亏损的"V"型或"U"型,原始地幔标准化元素比值(La/Sm)N为0.5~8.0,表明泽当地幔橄榄岩经历过交代作用。矿物化学与地球化学数据表明泽当地幔橄榄岩形成于MOR环境,后受到SSZ环境的改造。  相似文献   

10.
何琦  肖龙  魏启荣  倪平泽 《岩石学报》2009,25(12):3229-3240
滇西吉义独蛇绿混杂岩位于金沙江缝合带的南端,岩石组合出露较齐全,包括堆晶橄榄岩、堆晶辉石岩、堆晶辉长岩以及玄武岩等,它们呈构造岩片的形式产出并与外来岩块组成蛇绿混杂岩.堆晶橄榄岩和辉石岩具低Al_2O_3,低TiO_2,而高Mg~#值(Mg~#=0.88~0.92),富集Cr和Ni,稀土总量偏低(∑REE=14.82×10~(-6)~27.75×10~(-6)),倒"U"型的稀土元素分布特征.堆晶辉长岩和玄武岩的Mg~#值较低,分别为0.70~0.79和0.51~0.66,具拉斑系列的演化趋势.玄武岩可以细分为2组:第一组玄武岩以平坦型稀土配分模式,低Mg~#(Mg~#=0.44~0.46),低稀土总量(∑REE=52.29×10~(-6)~60.26×10~(-6))为特征;第二组玄武岩则为LREE弱富集型的稀土配分模式,其Mg~#较高(Mg~#=0.54~0.68),稀土总量也较高(∑REE=62.13×10~(-6)~101.87×10~(-6)).在原始地幔标准化的微量元素配分图解中,两组玄武岩均相对富集大离子亲石元素而亏损Nb、Ta和Ti,与岛弧岩浆岩类似,明显不同于N-MORB.岩石的Sr-Nd同位素组成较为均一和稳定,堆晶橄榄岩和辉石岩的(~(87)Sr/~(86)Sr)_i=0.7051~0.7056,5_(Nd)(t)=2.8~4.1,玄武岩的(~(87)Sr/~(86)Sr)_i=0.7050~0.7056,ε_(Nd)(t)=5.1~5.8,且显示出原始地幔的同位素组成特征,暗示这些岩石为同源岩浆分异演化而成的岩浆产物.岩浆演化的主要方式为分离结晶作用,受地壳混染不明显.岩浆结晶形成岩石的顺序为:堆晶橄榄岩→堆晶辉石岩→堆晶辉长岩→玄武岩2组→玄武岩1组.岩石地球化学特征表明,吉义独蛇绿岩的形成与俯冲作用有关,且形成于金沙江洋内俯冲的消减环境.  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   

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