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1.
哈密头苏泉哈尔欣巴A型花岗岩厘定   总被引:1,自引:0,他引:1  
初步研究表明新疆哈密头苏泉地区哈尔欣巴花岗岩为A型花岗岩.该岩体富硅(SiO2=71.87%~76.80%)和碱(K2O+N2O=7.39%~8.94%),贫铁、锰、镁(FeOt 0.67%~2.04%;MnO 0.03%~0.06%;MgO 0.10%~0.61%),具较高FeOt/MgO比值,A/NKC=0.78~1.02,属准铝质花岗岩石.在微量元素和稀土元素组成上,岩石富Zr,Rb,Ce等不相容元素,亏损Ni,Co,Cr等元素.10000×Ga/Al为3.12~4.1,大于A型花岗岩下限值(2.6).在Zr,Ce,Nb,Y与10000×Ga/Al,及(Nb+Zr+Ce+Y)/(FeOt/MgO)、SiO2/( FeOt/MgO)图解中大多数点都落在A型花岗岩区域.在A1-A2构造环境判别图上显示后造山花岗岩特征.对头苏泉地区哈尔欣巴A型花岗岩的厘定,为研究该区地壳物质组成及构造演化具重要意义.  相似文献   

2.
东准噶尔贝勒库都克铝质A型花岗岩的厘定及意义   总被引:7,自引:0,他引:7  
初步研究表明,长期以来被认为S型花岗岩的贝勒库都克黑云母花岗岩应为铝质A型花岗岩.该岩体以富硅(SiO2=75.25%~76.67%)和碱(Na2O+K2O=8.08%~8.97%),贫镁(MgO=0.02%~0.18%)和钙(CaO =0.39%~0.89%),氧化指数变化较大(W=0.02~0.15)以及高FeOT/MgO比值(12.71~84.51,平均34.55)为特征.其K2O>Na2O,NK/A=0.86~0.95(平均0.92),A/CNK=0.97~1.02(>0.95),属偏铝-过铝质钙碱-弱碱性岩石.在微量元素和稀土元素组成上,岩石富Ga、Zr和Hf等高场强元素,亏损Ba、Nb、Sr等元素.10 000 Ga/Al比值(2.97~4.20)均大于A型花岗岩的下限值(2.6),明显高于I型和S型花岗岩的平均值(分别为2.10和2.28).在Zr、Ce、Nb对10 000 Ga/Al以及FeOT/MgO对(Zr+Nb+Ce+Y)、SiO2等A型花岗岩多种判别图上,投影点均落在A型花岗岩区,而与高分异的I、S型花岗岩明显不同.这些特征表明,贝勒库都克黑云母花岗岩与国内外铝质A型花岗岩(如福建沿海、东西准噶尔和澳大利亚Lachlan褶皱带铝质A型花岗岩)十分相似.在Nb-Y-Ce、R1-Ga/Al和R1-R2构造环境判别图上,显示出造山后花岗岩的特征.贝勒库都克铝质A型花岗岩的厘定,不仅对探讨卡拉麦里地区地壳物质组成及构造演化有着重要的地质意义,还为我国新疆北部寻找与铝质A型花岗岩有关的锡矿资源开辟了方向.  相似文献   

3.
新疆东准噶尔卡拉麦里地区是一个重要的锡成矿带,分布有多种类型花岗岩。贝勒库都克岩体位于锡成矿带中部,由黑云母正长花岗岩和黑云母二长花岗岩组成。本文通过精确的LA-ICP-MS锆石U-Pb测年获得贝勒库都克含锡黑云母正长花岗岩年龄为283±2Ma,MSWD=0.14(95%置信度),时代属于早二叠世,这与东准噶尔后碰撞深成岩浆活动的范围(330~265Ma)相吻合。岩石地球化学研究表明,贝勒库都克岩体富硅(SiO2=75.25%~76.67%),低铝(Al2O3=11.91%~12.86%),贫镁(MgO=0.02%~0.18%)和钙(CaO=0.39%~0.89%),富碱(Na2O+K2O=8.08%~8.97%),K2ONa2O,NK/A=0.86~0.95(平均0.92),A/NCK=0.97~1.02,富集Rb、K等大离子亲石元素及Zr、Hf等高场强元素,Ba、Nb、Sr强烈亏损,δEu=0.01~0.11,其FeOt/MgO(12.71~84.51,平均34.55)和10000Ga/A1(2.97~4.20)值大,HFSE元素(Zr+Nb+Ce+Y=191.8×10-6~353.3×10-6)含量高,明显不同于典型的I型和S型花岗岩,基本属于典型的铝质A型花岗岩。年代学和地球化学综合研究表明,贝勒库都克铝质A型花岗岩是壳幔混合成因,是准噶尔地区后碰撞幔源岩浆底侵作用导致大陆地壳垂向生长过程的记录者。  相似文献   

4.
湖南金鸡岭铝质A型花岗岩的厘定及构造环境分析   总被引:47,自引:4,他引:43  
湘南九嶷山中生代金鸡岭复式花岗岩体出露面积约 390 km2,由螃蟹木和金鸡岭岩体组成.该岩体以富 Si(SiO2 75.00%~ 76.86% )、富碱 (ALK 6.60%~ 8.88% )、贫 Mg (MgO 0.01%~ 0.19% )和 Ca (CaO 0.30%~ 0.93% )以及高 FeO /MgO比值 (7~ 86,平均 39)为特征.其 K2O/Na2O > 1、 NK/A=0.70~ 0.92(平均 0.86),A/CNK=1.00~ 1.20,属偏铝-过铝质钙碱-弱碱性岩石. 在微量元素和同位素组成上,岩石富 Ga、 Th、 Y、 Zr、 U和 Nb等高场强元素及亏损 Ni、 Cr、 Eu、 Ti、 V、 P和 Sr等元素. 10 000× Ga/Al比值 (2.9~ 4.9,平均 3.3)较高, Isr值 (0.713 01~ 2.957 41)变化大.在 Zr、 Nb、 Ce和 Y对 Ga/Al以及 FeO /MgO 和 (Na2O K2O)/CaO对 (Zr Nb Ce Y)等 A型花岗岩多种判别图上,投影点主要落在 A型花岗岩区,而与高分异的 I、 S型花岗岩明显不同.上述特征表明,金鸡岭复式花岗岩与国内外铝质 A型花岗岩 (如广东南昆山、江苏苏州和澳大利亚 Lachlan褶皱带铝质 A型花岗岩 )十分相似.与一般 A型花岗岩相比,金鸡岭复式花岗岩的ε Nd(t)(- 6.7~- 7.5)较低, Nd模式年龄 (1 486~ 1 556 Ma)小于区域上变质基底和中国东南部中生代花岗岩类的平均 Nd模式年龄,表明其主要来源于地壳物质的熔融,但可能有少量新生地幔物质加入.区域岩石地球化学和岩石组合特点显示 ,研究区铝质 A型花岗岩形成于大陆边缘裂谷环境.  相似文献   

5.
琼北地区花岗岩出露较少,多零星分布在翁田镇至大致坡镇一带。本次研究选取该区域的翁田岩体为研究对象,通过LA-ICP-MS锆石U-Pb定年,限定该岩体形成时代为245.1±2.4Ma,属于中三叠世。翁田岩体主要岩性为中粒斑状黑云母正长花岗岩,属于高钾钙碱性系列,具有高SiO2(74.57~76.15wt%)、高碱(Na2O+K2O=7.15~8.48wt%)、低MgO(0.19~0.31wt%)的特征,属于准铝质-过铝质花岗岩。岩石轻稀土富集,重稀土亏损,具强的负Eu异常,富集大离子亲石元素如Rb、Th、U、K等,明显亏损Nb、Ta,强烈亏损Ba、Ti、Sr、P,具高10^4Ga/Al、FeOt/MgO、K2O/Na2O比值和高(Zr+Nb+Ce+Y)含量,具有铝质A型花岗岩特征。结合区域资料,翁田铝质A型花岗岩的出现,表明海南岛在中三叠世处于伸展环境。  相似文献   

6.
杨高学  李永军  司国辉  吴宏恩  金朝 《地质学报》2010,84(12):1759-1769
新疆东准噶尔卡拉麦里地区是一个重要的锡成矿带,分布有多种类型花岗岩。贝勒库都克岩体位于锡成矿带中部,由黑云母正长花岗岩和黑云母二长花岗岩组成。本文通过精确的LA-ICP-MS锆石U-Pb测年获得贝勒库都克含锡黑云母正长花岗岩年龄为283±2Ma,MSWD=0.14(95%置信度),时代属于早二叠世,这与东准噶尔后碰撞深成岩浆活动的范围(330~265Ma)相吻合。岩石地球化学研究表明,贝勒库都克岩体富硅(SiO2=75.25%~76.67%),低铝(Al2O3=11.91%~12.86%),贫镁(MgO=0.02%~0.18%)和钙(CaO=0.39%~0.89%),富碱(Na2O+K2O=8.08%~8.97%),K2O>Na2O,NK/A=0.86~0.95(平均0.92),A/NCK=0.97~1.02,富集Rb、K等大离子亲石元素及Zr、Hf等高场强元素,Ba,Nb,Sr强烈亏损,δEu=0.01~0.11,其FeOt/MgO(12.71~84.51,平均34.55)和10000Ga/A1(2.97~4.20)值大,HFSE元素(Zr+Nb+Ce+Y=191.8×10-6~353.3×10-6)含量高,明显不同于典型的I型和S型花岗岩,基本属于典型的铝质A型花岗岩。年代学和地球化学综合研究表明,贝勒库都克铝质A型花岗岩是壳幔混合成因,是准噶尔地区后碰撞幔源岩浆底侵作用导致大陆地壳垂向生长过程的记录者。贝勒库都克铝质A型花岗岩Sn的含量高(6.0×10-6~19.5×10-6,个别为80.0×10-6),铝质A型花岗岩是成矿热液的直接母体,而富Sn的流体相最终形成了贝勒库都克锡矿床,锡矿与铝质A型花岗岩是同期地质事件的产物。  相似文献   

7.
随州北部正长花岗岩体呈岩脉出露,年代学研究表明,正长花岗岩中岩浆锆石SHRIMP U-Pb加权平均年龄为648.8±1.9Ma(MSWD=0.86),属新元古代。岩石地球化学成分显示其属于高钾钙碱性、准铝质系列花岗岩。岩体高硅(SiO_2=70.67%~75.75%)、富碱(K_2O+Na_2O=7.28%~8.53%)、铁镁比(FeO~T/MgO=26.37~35.50)较高、钙镁含量较低(CaO=0.60%~1.53%,MgO=0.07%~0.12%);稀土元素配分曲线呈右倾斜型,显示Eu负异常(δEu=0.33~0.56);1000Ga/Al值介于2.60~3.41,Zr+Nb+Ce+Y=552.48×10~(-6)~648.87×10~(-6);微量元素原始地幔标准化蛛网图显示,Rb、K和Th等大离子亲石元素明显富集,相对富集Zr、Hf、Nb、Ta等高场强元素,相对亏损Sr、P和Ti,以上特征表明随州北部正长花岗岩为A1型花岗岩。结合区域构造演化,认为随州北部正长花岗岩形成于板内伸展的构造环境,新元古代晚期,秦岭-桐柏-大别地区构造体制经历了重要的转变,在南秦岭东段由古秦岭洋的俯冲导致的挤压作用转换为弧后拉伸减薄作用。在伸展体制下,岩浆上涌形成本区A1型正长花岗岩。  相似文献   

8.
报道了东昆仑群力地区正长花岗岩体的锆石U-Pb年龄和岩石地球化学特征,并对岩石成因及其构造意义进行了讨论。锆石LA-ICP-MS U-Pb定年结果表明群力正长花岗岩体的形成时代为376.2Ma(MSWD=0.25),属晚泥盆世。岩石地球化学成分显示其属于高钾钙碱性、准铝质-弱过铝质系列花岗岩。岩体富硅(SiO_2=74.61%~77.85%)、富碱(Na_2O+K_2O=7.03%~7.94%)、高铁镁比(FeO~T/MgO=11.39~36.93)、贫钙(CaO=0.50%~1.01%)、贫镁(MgO=0.06%~0.20%);稀土配分模式表现为"海鸥型"分布特点,具有强烈的负铕异常(δEu=0.08~0.09);高镓含量(Ga=22.86×10~(-6)~27.06×10~(-6)),富集高场强元素组合(Zr+Ce+Nb+Y=720×10~(-6)~891×10~(-6))、亏损Ba、Sr、P、Nb、Ta、Ti等;同时岩体具有高的锆石饱和温度(991℃~1 201℃)。综合岩石地球化学特征表明群力正长花岗岩体属于A型花岗岩中的A_2型花岗岩,结合区域研究成果,认为群力正长花岗岩形成于始特提斯洋闭合后的伸展构造背景。这一结果将始特提斯洋闭合后的伸展作用时限从中泥盆世延长到晚泥盆世。  相似文献   

9.
本文对武夷山中段的司前岩体进行了系统的岩石学、地球化学、年代学及Lu-Hf同位素研究。结果表明,司前岩体形成于(140±1)Ma,主要由黑云母二长花岗岩组成,富碱(K_2O+Na_2O=6.67 wt%~8.25 wt%),富钾(K_2O/Na_2O=1.16~2.41),A/CNK值介于1.01~1.25之间。岩体具有较高的∑REE(177.73×10~(-6)~427.88×10~(-6))、Zr+Nb+Y+Ce含量(262.6×10~(-6)~581.5×10~(-6))和Zr饱和温度(平均824°C),FeOt/MgO(3.06~3.93)和10 000×Ga/Al(2.64~3.28)比值均较高,属典型的铝质-过铝质A型花岗岩。岩体的锆石εHf(t)值均为负值(–18.6~–7.9),暗示其源于古老的地壳物质重熔。综合上述结果和区域背景推测,司前岩体的源岩为新元古代麻源群变质火山-碎屑岩,源岩可能经历早古生代和白垩纪两期熔融事件,地幔岩浆为花岗岩的形成提供了热源,但并未贡献物质,岩体的形成与古太平洋板块俯冲过程中因俯冲板片后撤诱发的弧后扩张作用有关。  相似文献   

10.
浙江洪公铝质A型花岗岩类的岩石地球化学及其构造环境   总被引:8,自引:0,他引:8  
初步研究表明,以往被认为是典型的I型花岗岩质岩石的浙江洪公岩体应为铝质A型花岗岩质岩石。该岩体以高钾为特征,K2O 达5%以上,K2O/ Na2O>1.2,准铝-过铝质(A/NKC=0.80 ~1.14);FeO*/MgO比值大(平均14.20),高于M型、S型和I型花岗岩;富含稀土元素(ΣREE=313.09×10-6~523.73×10-6),具有较高的Ga/Al(′104)值(2.92~4.29)和(Zr+Nb+Ce+Y)元素组合值(551.5′10-6~987.4′10-6),而亏损Ba、Sr、P、Ti等;Nd同位素模式年龄为1.3—1.6Ga,反映洪公岩体主要起源于地壳物质的部分熔融。区域背景、构造被动定位特点和地球化学综合分析表明,洪公岩体形成于拉张的构造环境。  相似文献   

11.
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   

12.
Well investigated platforms have been selected in each continent, and the history of Cretaceous transgressions and regressions there is concisely reviewed from the available evidence. The factual records have been summarized into a diagram and the timing of the events correlated between distant as well as adjoining areas.On a global scale, major transgressions were stepwise enlarged in space and time from the Neocomian, via Aptian-Albian, to the Late Cretaceous, and the post-Cretaceous regression was very remarkable. Minor cycles of transgression-regression were not always synchronous between different areas. Some of them were, however, nearly synchronous between the areas facing the same ocean.Tectono-eustasy may have been the main cause of the phenomena of transgression-regression, but certain kinds of other tectonic movements which affected even the so-called stable platforms were also responsible for the phenomena. The combined effects of various causes may have been unusual in the Cretaceous, since it was a period of global tectonic activity. The slowing down of this activity followed by readjustments may have been the cause of the global regression at the end of the Cretaceous.  相似文献   

13.
The Afyon stratovolcano exhibits lamprophyric rocks, emplaced as hydrovolcanic products, aphanitic lava flows and dyke intrusions, during the final stages of volcanic activity. Most of the Afyon volcanics belong to the silica-saturated alkaline suite, as potassic trachyandesites and trachytes, while the products of the latest activity are lamproitic lamprophyres (jumillite, orendite, verite, fitztroyite) and alkaline lamprophyres (campto-sannaite, sannaite, hyalo-monchiquite, analcime–monchiquite). Afyon lamprophyres exhibit LILE and Zr enrichments, related to mantle metasomatism.  相似文献   

14.
正20140751 Guo Xincheng(Geological Party,BGMRED of Xinjiang,Changji 831100,China);Zheng Yuzhuang Determination and Geological Significance of the Mesoarchean Craton in Western Kunlun Mountains,Xinjiang,China(Geological Review,ISSN0371-5736,CN11-1952/P,59(3),2013,p.401-412,8  相似文献   

15.
正20141058 Chen Ling(Key Laboratory of Mathematical Geology of Sichuan Province,Chengdu University of Technology,Chengdu610059,China);Guo Ke Study of Geochemical Ore-Forming Anomaly Identification Based on the Theory of Blind Source Separation(Geosci-  相似文献   

16.
SEISMIC GEOLOGY     
正20141334 Chen Kun(Institute of Geophysics,China Earthquake Administration,Beijing100081,China);Yu Yanxiang Shakemap of Peak Ground Acceleration with Bias Correction for the Lushan,Sichuan Earthquake on April20,2013(Seismology and Geology,ISSN0253-4967,CN11-2192/P,35(3),2013,p.627-633,2 illus.,1 table,9 refs.)Key words:great earthquakes,Sichuan Province  相似文献   

17.
正20141624 Cai Xiongfei(Key Laboratory of Geobiology and Environmental Geology,Ministry of Education,China University of Geosciences,Wuhan 430074,China);Yang Jie A Restudy of the Upper Sinian Zhengmuguan and Tuerkeng Formations in the Helan Mountains(Journal of Stratigraphy,ISSN0253-4959CN32-1187/P,37(3),2013,p.377-386,5 illus.,2 tables,10 refs.)  相似文献   

18.
PALEONTOLOGY     
正20142263Lü Shaojun(Geological Survey of Jiangxi Province,Nanchang 330030,China)Early-Middle Permian Biostratigraphical Characteristics in Qiangduo Area,Tibet(Resources SurveyEnvironment,ISSN1671-4814,CN32-1640/N,34(4),2013,p.221-227,2illus.,2tables,22refs.)Key words:biostratigraphy,Lower Permian,Middle Permian,Tibet  相似文献   

19.
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