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1.
甲玛超大型铜多金属矿床位于冈底斯成矿带东段,矿体主要包括矽卡岩型、斑岩型、角岩型和独立金矿体4种类型。矿床中酸性侵入体中广泛发育岩浆黑云母,部分岩体较发育角闪石。本文在全面开展矿区地质调查和详细的钻孔岩芯编录的基础上,对含矿二长花岗斑岩和含矿花岗闪长斑岩中的岩浆黑云母以及含矿花岗闪长斑岩中的角闪石开展了矿物学及矿物化学研究,以揭示其成岩成矿意义。研究结果表明,二长花岗斑岩和花岗闪长斑岩中的岩浆黑云母为镁质黑云母,具有富镁高钛、高铝低硅、富钾贫钠的特点。与花岗闪长斑岩相比,二长花岗斑岩中的岩浆黑云母具有较低的TiO2、FeOT、MgO、MnO、Na2O、BaO含量,较高的Al2O3和SiO2含量。花岗闪长斑岩中的角闪石属于阳起石,具有高硅低铝钛、富镁钙贫钠钾等特征。黑云母和角闪石温度计计算结果显示,含矿二长花岗斑岩中黑云母结晶温度为740.1~783.8℃,平均为762.4℃;含矿花岗闪长斑岩中黑云母结晶温度为750.3~766.9℃,平均为757.2℃;含矿花岗闪长斑岩中角闪石结晶温度为654.1~698.9℃,平均为680.3℃。黑云母和角闪石矿物化学特征指示,二长花岗斑岩和花岗闪长斑岩为造山带钙碱性岩系、Ⅰ型花岗岩,具有壳幔混源的特征。二长花岗斑岩和花岗闪长斑岩具有较高的氧逸度(NNO以上)及水含量,有利于铜、钼等成矿物质进入成矿流体中。  相似文献   

2.
罗卜岭斑岩铜钼矿床是紫金山Cu-Au-Mo浅成低温-斑岩矿田内新近发现的大型斑岩铜钼矿床,本文在岩芯及光薄片系统观察的基础上,分析了矿化斑岩锆石LA-ICP-MS U-Pb年龄及锆石Ce4/Ce3+比值.罗卜岭赋矿斑岩体可分为两期,早期为角闪黑云母花岗闪长斑岩及黑云母花岗闪长斑岩,晚期为黑云母花岗闪长斑岩.早期角闪黑云母花岗闪长斑岩和黑云母花岗闪长斑岩锆石LA-ICP-MS U-Pb年龄分别为103.7±1.2Ma,MSWD=0.33和103.0±0.9Ma,MSWD=1.00;晚期黑云母花岗闪长斑岩锆石LA-ICP-MS U-Pb年龄为97.6±2.1Ma,MSWD=6.00.罗卜岭成矿斑岩基质普遍发育硬石膏,两期成矿斑岩锆石都具较高的Ce4 +/Ce3平均值,在630 ~770之间,高于区内非成矿花岗岩锆石的Ce4+/Ce3+平均值(182 ~577),显示罗卜岭斑岩矿床成矿岩浆具有高氧逸度的特征.据罗卜岭斑岩矿床的形成时代、高氧逸度岩浆特征,结合华南地区中生代构造背景,我们初步认为罗卜岭斑岩矿床的形成可能和中生代古太平洋向北西西方向俯冲有关.  相似文献   

3.
青藏高原冈底斯斑岩成矿带不同于经典的产于岛弧和大陆边缘的斑岩铜矿,而形成于后碰撞挤压向伸展转变期,显示了极好的成矿前景。本文对冈底斯中段尼木矿田白容、厅宫和冲江斑岩铜矿区斑岩体进行了系统研究,确定出斑岩体演化和侵入序列为:似斑状二长花岗岩→成矿二长花岗斑岩→石英闪长玢岩→花岗闪长斑岩。K-Ar和~(40)Ar/~(39)Ar年代学研究获得白容矿区似斑状二长花岗岩中角闪石的K-Ar年龄为16.9±2.4Ma;石英闪长玢岩中黑云母的K-Ar年龄为12.3±0.2Ma、~(40)Ar/~(39)Ar坪年龄为12.5±0.2Ma;花岗闪长斑岩中黑云母的K-Ar年龄为11.5±0.2Ma、~(40)Ar/~(39)Ar坪年龄为12.4±0.2Ma;厅宫矿区石英闪长玢岩中黑云母的K-Ar年龄为13.8±0.2Ma、~(40)Ar/~(39)Ar坪年龄为14.9±0.2Ma;花岗闪长斑岩中黑云母的K-Ar年龄为13.5±0.3Ma、~(40)Ar/~(39)Ar坪年龄为14.2±0.2Ma,这些年龄表明:石英闪长玢岩晚于似斑状二长花岗岩,略早于花岗闪长斑岩。成矿与二长花岗斑岩有关,其侵位时间晚于似斑状二长花岗岩,早于石英闪长玢岩和花岗闪长斑岩。尼木斑岩铜矿田这种复式杂岩体较充分的分异演化有利于含矿热液的集中与逐渐富集成矿。白容斑岩铜矿蚀变矿化二长花岗斑岩的蚀变绢云母的K-Ar年龄为11.8±0.2Ma,~(40)Ar/~(39)Ar坪年龄为12.0±0.1Ma,代表了中低温蚀变和矿化末期的年龄。白容矿区绢云母化带的蚀变年龄与石英闪长玢岩和花岗闪长斑岩的黑云母~(40)Ar/~(39)Ar年龄基本一致,与厅宫矿区辉钼矿Re-Os年龄及石英闪长玢岩和花岗闪长斑岩的黑云母~(40)Ar/~(39)Ar年龄同样基本一致,暗示两个矿区石英闪长玢岩和花岗闪长斑岩的岩浆结晶冷却与成矿二长花岗斑岩后期热液成矿时间上有重叠。结合前人年龄数据大致确定出白容矿区岩浆-热液活动时限为0.5~5Ma,厅宫为4Ma,冲江为4.5Ma。尼木矿田成矿斑岩~(40)Ar/~(39)Ar年龄晚于冈底斯碰撞后第一次快速隆升时间≈21Ma,15Ma冈底斯中段NS向正断层开始活动,表明含矿斑岩体可能侵位于地壳加厚、冈底斯山大规模隆升到一定程度后出现弱伸展环境的构造背景下,即斑岩铜矿形成于从南北向挤压隆升到东西向伸展初始发育的过渡构造背景。  相似文献   

4.
西藏岗讲斑岩铜钼矿床位于冈底斯斑岩铜矿带尼木斑岩铜矿田中。该区中-酸性岩浆活动较为发育,形成以黑云母二长花岗斑岩为主的含矿斑岩体。为限定冈底斯斑岩铜矿带岗讲铜钼矿床含矿斑岩体的形成时代及成因背景,本次研究对成矿黑云母二长花岗斑岩进行了LA-ICP-MS锆石U-Pb定年和地球化学研究。锆石U-Pb年代学分析揭示,岗讲黑云母二长花岗斑岩形成于中新世(14.47±0.19 Ma)。岩石地球化学研究表明,岗讲黑云母二长花岗斑岩的w(SiO2)为69.12%~72.62%,w(Al2O3)为13.31%~15.57%、K2O/Na2O为0.76~1.66。属于钾玄岩系列-高钾钙碱性系列,为过铝质花岗岩。岩石的ΣREE为83.19×10-6~154.28×10-6,轻、重稀土分异明显,(LREE/HREE)=3.57~14.73,(La/Yb)N值为31.4~39.5,δEu为0.83~1.29,具有较弱的负Eu异常;稀土元...  相似文献   

5.
针对对铜陵桂花冲花岗闪长斑岩进行岩石学、岩石地球化学及锆石U-Pb同位素年代学研究,结果表明该花岗闪长斑岩高硅富碱(w(SiO2)平均为63.60%,w(Na2O+K2O)平均为7.09%,K2O/Na2O为0.51~0.68),属高钾钙碱性系列岩石。岩石稀土总量低(ΣREE在187.43×10-6和209.19×10-6之间),但轻稀土富集而重稀土亏损(ΣLREE/ΣHREE为15.00~16.49,(La/Yb)N为22.37~28.45),且具弱负Eu异常(δEu在0.75~0.83,平均为0.80)。同时,岩石富集大离子亲石元素(Rb,Ba,Th和U),而亏损高场强元素(Nb和Ta)。锆石LA-ICP-MS U-Pb定年测得花岗闪长斑岩年龄为(138.3±1.4)Ma,表明该岩体的形成时代为早白垩世,与铜陵矿集区中生代主要成矿岩体的年龄(137.5 Ma±1.1Ma~151.8Ma±2.6Ma)一致。该花岗闪长斑岩形成于碰撞后构造环境,是由壳幔混合岩浆冷却结晶形成的。  相似文献   

6.
岩背花岗岩黑云母矿物化学研究及其对成矿意义的指示   总被引:4,自引:0,他引:4  
对岩背火山-斑岩型锡矿含黄玉黑云母花岗岩和含黄玉花岗斑岩中黑云母矿物化学研究表明,含黄玉黑云母花岗岩中的黑云母属于富铁黑云母,含黄玉花岗斑岩中的黑云母属于铁叶云母。含黄玉花岗斑岩的成岩温度为720℃~730℃,logfO2为-15.5~-15.7;含黄玉黑云母花岗岩的成岩温度为510℃~550℃,logfO2为-19.2~-18.7。含黄玉花岗斑岩成岩温度、氧逸度高于含黄玉黑云母花岗岩成岩温度和氧逸度。与含黄玉花岗斑共存热液流体log(fH2O/fHCl)fluid值为4.29~4.99,与含黄玉黑云母花岗岩共存热液流体log(fH2O/fHCl)fluid值为3.15~3.67。因此,相对于含黄玉黑云母花岗岩,含黄玉花岗斑岩岩浆演化过程中分异出的流体富F和Sn,即岩背含黄玉花岗斑岩岩浆演化过程分异出的原始流体以富F和Sn为特征,结合有关岩背Sn矿成矿流体的研究结果,进一步揭示出岩背Sn矿成矿流体为岩背含黄玉花岗斑岩岩浆演化过程分异出的岩浆热液,相对于含黄玉黑云母花岗岩,含黄玉花岗斑岩与锡成矿关系更密切。  相似文献   

7.
蒙古国查干苏布尔加大型铜-钼矿床地质特征及成因   总被引:10,自引:2,他引:8  
查干苏布尔加斑岩铜钼矿床位于西伯利亚板块南缘近东西向和北东向深大断裂所夹持的南蒙古构造岩浆带内, 容矿围岩二长花岗斑岩与花岗闪长斑岩主量元素高SiO2(64.69?10?2~73.42?10?2), 高Al2O3 (15.33?10?2~18.35?10?2), 贫MgO(0.13?10?2~0.56?10?2), 微量元素Sr二长花岗斑岩略低(144?10?6~175?10?6), 花岗闪长斑岩表现为高Sr(样品>300?10?6, 476?10?6~720?10?6), 二者均低Y(Y<18?10?6, 2.21?10?6~ 10.20?10?6), 低Yb(Yb<1.9?10?6, 0.30?10?6~1.48?10?6), 高Sr/Y(Sr/Y>20, 21.8~63.52), 稀土元素特征为亏损重稀土, 无明显负铕异常, (87Sr/86Sr)i=0.70154~0.70397, (143Nd/144Nd)i=0.512290~0.512600,εNd(t)为+2.4~+8.5, 二长花岗斑岩和花岗闪长斑岩均具有埃达克质岩特征, 但二长花岗斑岩与花岗闪长斑岩主、微量和稀土元素又存在一定差别, 它们可能是岩浆不同演化阶段的产物。通过年龄测定, 获得辉钼矿Re-Os等时线年龄为(370.0±5.9)Ma, 二长花岗斑岩锆石SHRIMP U-Pb加权平均年龄为(365.7±3.6)Ma, 铜钼矿形成时代与二长花岗斑岩形成时代相近, 均形成于晚泥盆世。铜钼矿床与二长花岗斑岩、花岗闪长斑岩紧密共生, 矿区范围内二长花岗斑岩与花岗闪长斑岩多被蚀变并矿化, 表明二长花岗斑岩、花岗闪长斑岩与铜钼矿化存在密切的时空关系, 为铜钼成矿提供了主要成矿物质和流体来源。  相似文献   

8.
低氧逸度和高岩浆水含量是中酸性岩浆内W元素富集成矿的关键因素。乔仑恩格次黑云母二长花岗斑岩体地处中亚造山带中段北山造山带。近几年,发现微弱的钨矿化,该地区是否具有钨矿的成矿潜力亟需进一步的分析研究。笔者对黑云母二长花岗斑岩中岩浆锆石开展年代学、矿物地球化学的研究,并搜集前人主微量元素的数据共同探讨岩浆结晶温度、氧逸度,最终厘定岩浆内W元素的成矿潜力。结果显示,黑云母二长花岗斑岩体具有较高的Ce~(4+)/Ce~(3+)(均值为98.15)、Ce_N/Ce_N~*(均值为111.55)、Eu_N/Eu_N~*(均值为0.50)、Ce/Nd(均值为54.89)值,暗示岩体具有较高的氧逸度(lg(fO_2)=-12.03;△FMQ+4.53)。而黑云母二长花岗斑岩具无角闪石斑晶、低的Sr/Y值(18.31~38.05)和(La/Yb)N值(13.59~18.71)及明显Eu负异常(Eu_N/Eu_N~*=0.74~0.86)特征,表明黑云母二长花岗斑岩体在岩浆结晶早期贫水(w(H_2O)4%)。以上分析显示黑云母二长花岗斑岩体具有高氧逸度、低含水量的特征,故认为乔仑恩格次黑云母二长花岗斑岩体不具有形成大规模钨矿床的潜力。  相似文献   

9.
中酸性岩浆含矿性差异一直是矿床学的研究热点。滇西北衙超大型金多金属矿床(探明金资源量超过370t)内发育成矿二长花岗斑岩体和非成矿黑云母二长花岗斑岩体、煌斑岩体,是研究岩体含矿性差异、富碱岩浆结晶时物理化学条件及其成矿效应的良好选区。本文在详细的岩相学观察基础上,对成矿的二长花岗斑岩、未成矿的黑云母二长花岗斑岩和煌斑岩中黑云母和锆石开展矿物化学分析,厘定了北衙富碱岩浆的结晶条件。北衙成矿二长花岗斑岩体的锆石结晶温度(843℃)稍高于黑云母二长花岗斑岩体的锆石结晶温度(807℃),鉴于金在熔体中溶解度随温度升高而增大,表明在岩浆演化初期二长花岗斑岩体具有更高的金溶解度。同时,利用锆石微量元素组分估算的二长花岗斑岩体的lg(f_(O_2))(-10. 67)高于黑云母二长花岗斑岩体(-15. 00),表明二长花岗斑岩体具有更高的氧逸度。在岩浆演化过程中高氧逸度会抑制金以硫化物形式沉淀,从而增强了二长花岗斑岩体的成矿潜力。除此之外,二长花岗斑岩具有最低的黑云母结晶温度(二长花岗斑岩、黑云母二长花岗斑岩、煌斑岩依次对应644℃、723℃、766℃)和最浅的侵位深度(1. 46~1. 74km、4. 03~5. 02km、2. 53~2. 72km)。高压条件下母岩浆中出溶的流体几乎没有能量形成裂隙,而且也很难发生对金属富集有重要影响的流体不混溶作用。二长花岗斑岩体侵位深度与矽卡岩中石榴石发育的含石盐子晶的三相包裹体的捕获深度(~2km)近似,进一步暗示二长花岗斑岩体侵位后发生流体沸腾作用。因此,岩浆氧逸度和侵位深度的差异可能是黑云母二长花岗斑岩体和煌斑岩体未成矿的原因。  相似文献   

10.
湖南宝山矿床处于坪宝矿带的北端,是湘南地区最大的铜多金属矿床。为了进一步探讨矿区内花岗质岩石的形成条件及成矿潜力,文章在详细的野外地质和岩相学观察的基础上,对与成矿密切相关的花岗闪长斑岩中的黑云母进行了详细的矿物化学分析。电子探针分析结果表明:宝山花岗闪长斑岩中的黑云母为铁质黑云母和镁质黑云母,其中,Ti介于0.18~0.30,且Mg/(Mg+Fe2+)值介于0.42~0.58,属于典型的岩浆成因黑云母;黑云母的氧化系数为0.16~0.26,w(Mg O)为8.17%~11.72%,平均9.3%,MF值范围为0.38~0.50,指示其岩体属于壳幔混源型的I型花岗岩;岩体中以黑云母的全铝含量计算的结晶压力为97~174 MPa,相应的结晶深度为3.67~6.57 km,平均深度为5.12 km。其log f(O2)变化范围为-14.5~-12.8,表明黑云母是在较高氧逸度条件下结晶形成的,有利于铜矿的形成。  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.
正20142560Hu Hongxia(Regional Geological and Mineral Resources Survey of Jilin Province,Changchun 130022,China);Dai Lixia Application of GIS Map Projection Transformation in Geological Work(Jilin Geology,ISSN1001-2427,CN22-1099/P,32(4),2013,p.160-163,4illus.,2refs.)  相似文献   

20.
GEOCHEMISTRY     
正20140692 Duo Tianhui(No.402 Geological Team,Exploration of Geology and Mineral Resources of Sichuan Authority,Chengdu611730,China);Wang Yongli Computer Simulation of Neptunium Existing Forms in the Groundwater(Computing Techniques for Geophysical and Geochemical Exploration,ISSN1001-1749,CN51-1242/P,35(3),  相似文献   

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