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1.
The Dawan Mo–Zn–Fe deposit located in the Northern Taihang Mountains in the middle of the North China Craton (NCC) contains large Mo‐dominant deposits. The mineralization of the Dawan Mo–Zn–Fe deposit is associated with the Mesozoic Wanganzhen granitoid complex and is mainly hosted within Archean metamorphic rocks and Proterozoic–Paleozoic dolomites. Rhyolite porphyry and quartz monzonite both occur in the ore field and potassic alteration, strong silicic–phyllic alteration, and propylitic alteration occur from the center of the rhyolite porphyry outward. The Mo mineralization is spacially related to silicic and potassic alteration. The Fe orebody is mainly found in serpentinized skarn in the external contact zone between the quartz monzonite and dolomite. Six samples of molybdenite were collected for Re–Os dating. Results show that the Re–Os model ages range from 136.2 Ma to 138.1 Ma with an isochron age of 138 ± 2 Ma (MSWD = 1.2). U–Pb zircon ages determined by laser ablation inductively coupled plasma mass spectrometry yield crystallization ages of 141.2 ± 0.7 (MSWD = 0.38) and 130.7 ± 0.6 Ma (MSWD = 0.73) for the rhyolite porphyry and quartz monzonite, respectively. The ore‐bearing rhyolite porphyry shows higher K2O/Na2O ratios, ranging from 58.0 to 68.7 (wt%), than those of quartz monzonite. All of the rock samples are classified in the shoshonitic series and characterized by enrichment in large ion lithophile elements; depletion in Mg, Fe, Ta, Ni, P, and Y; enrichment in light rare earth elements with high (La/Yb)n ratios. Geochronology results indicate that skarn‐type Fe mineralization associated with quartz monzonite (130.7 ± 0.6 Ma) formed eight million years later than Mo and Zn mineralization (138 ± 2 Ma) in the Dawan deposit. From Re concentrations in molybdenite and previously presented Pb and S isotope data, we conclude that the ore‐forming material of the deposit was derived from a crust‐mantle mixed source. The porphyry‐skarn type Cu–Mo–Zn mineralization around the Wanganzhen complex is related to the primary magmatic activity, and the skarn‐type Fe mineralization is formed at the late period magmatism. The Dawan Mo–Zn–Fe porphyry‐skarn ores are related to the magmatism that was associated with lithospheric thinning in the NCC.  相似文献   

2.
The Cihai iron skarn deposit is located in the southern part of the eastern Tianshan, Xinjiang, northwestern China. The major iron orebodies are banded and nearly parallel to each other. The iron ores are hosted in an early diabase dike and in skarn. Post-ore diabase dikes cut the iron ores and their hosting diabase. Hydrothermal activity can be divided into four stages based on geological and petrographic observations: initial K–Na alteration (stage I), skarn-minor magnetite event (II), retrograde skarn-magnetite main ore event (III), and quartz–calcite–sulfide veining (IV). Zircon U–Pb dating yields ages of 286.5 ± 1.8 Ma for early diabase and 275.8 ± 2.2 Ma for post-ore diabase dikes. Amphibole separated from massive magnetite ore gives a 40Ar–39Ar plateau age of 281.9 ± 2.2 Ma and is the time of ore formation. Formation of the Cihai iron deposit is closely related to post-collisional magmatism and associated Cu–Ni–Au polymetallic mineralization in the eastern Tianshan.  相似文献   

3.
The Awulale iron metallogenic belt (AIMB) hosts the majority of rich iron ores in Tianshan Orogen and has attracted much attention. However, a hot debate exists about the genesis of these iron deposits. Geochronological data are among the few critical evidences to solve the dispute. This study chooses the Beizhan iron deposit to carry out a geochronological research. The Beizhan magnetite deposit, with total iron ore reserves of 468 Mt at an average grade of 41% TFe, is the largest iron deposit in the AIMB. The orebodies of the Beizhan deposit are hosted in Carboniferous dacite and crystal tuff. Four stages of mineral formation can be recognized: an early skarn mineral stage, followed by the magnetite stage, the sulphide stage, and the carbonate stage in order. Pyrite separated from pyrite-rich ore samples yields an isochron age of 302.5 ± 8.2 Ma. Muscovite separated from muscovite-rich ore samples yields 40Ar/39Ar plateau ages of 304.7 ± 1.8 Ma, 304.5 ± 1.9 Ma, 308.1 ± 1.9 Ma, and 307.2 ± 1.8 Ma, and isochron ages of 306.1 ± 3.5Ma, 304.0 ± 3.0Ma, 308.2 ± 3.1Ma, and 308.7 ± 3.1Ma, respectively. These ages are consistent within the error range and are interpreted as the age of the Beizhan iron deposit. The results, combined with the other latest precise dating and geologically inferred ages, demonstrate that the iron deposits in the AIMB were formed in the Late Carboniferous. These iron deposits are considered to be iron skarn or medium–low -temperature hydrothermal origin and have genetic linkages between each other. They may be different mineralizing manifestations proximal to or distal from a pluton. The Late Carboniferous iron ores and the related magmatic rocks in the AIMB were produced when upwelling of the asthenosphere causes the partial melting of various sources and the formation of a narrow linear extension in the upper crust. The upwelling of the asthenosphere may be triggered by the detachment of an orogenic root zone.  相似文献   

4.
新疆和静县备战铁矿地质特征及找矿标志   总被引:7,自引:2,他引:5  
新疆和静备战铁矿位于伊犁微板块伊犁石炭纪裂谷带,矿体产于晚石炭世石英二长斑岩与大哈拉军山组灰岩接触带,矿体地表露头较少,基本呈隐伏状态.经钻探普查,矿床规模已达中型.成因属与火山活动有关的火山沉积叠加岩浆侵入接触交代改造富集成矿的复合成因磁铁矿矿床.  相似文献   

5.
吐拉苏一也里莫墩火山岩带是西天山北段晚古生代构造一岩浆成矿带的重要组成部分,它严格控制着矿带内金矿床的时空分布.在充分研究前人资料的基础上,本文实测了也里莫墩地区加曼特金矿围岩大哈拉军山组火山岩剖面,发现火山岩地层与矿化关系密切.利用LA-ICP-MS锆石U-Pb方法测定了金矿赋矿围岩(英安岩)的形成时代,其206pb...  相似文献   

6.
查岗诺尔大型磁铁矿床位于西天山阿吾拉勒东段,赋存于下石炭统大哈拉军山组安山岩及安山质火山碎屑岩之中,主体矿底板夹透镜状的大理岩,矿体主要为层状、似层状、透镜状。根据矿石组构和矿物共生特征,可以划分为岩浆期和热液期两个成矿期,后者包括矽卡岩和石英-硫化物两个亚成矿期,进一步可以细分为6个成矿阶段。岩浆期的磁铁矿∑REE很低,稀土配分模式大致呈轻稀土、重稀土较富集而中稀土亏损的U型,富Ti、V、Cr,表明铁质可能来自安山质岩浆的结晶分异作用; 矽卡岩亚成矿期的磁铁矿∑REE极低,略微富集LREE,其它稀土元素亏损强烈,贫Ti、V,略富集Ni、Co和Cu。矽卡岩亚期的含矿和无矿矽卡岩中的石榴石的稀土配分模式类似,∑REE含量相对较高,呈HREE富集、LREE亏损、弱正Eu异常的分布型式,显示了交代成因石榴石的特征,暗示与其共生的磁铁矿也是通过热液流体与围岩地层的交代反应生成的,铁质来自围岩。结合矿床地质与微量元素地球化学,认为查岗诺尔铁矿可能是岩浆型和矽卡岩型(主要)的复合叠加矿床。  相似文献   

7.
龙桥铁矿床是庐枞盆地一个大型层控矽卡岩型铁矿床,顺层产于沉积岩地层中,受地层控制特征明显,具有显著的成矿特色。龙桥铁矿床赋矿层位时代确定对于该类矿床的成因研究和找矿勘探有着重要的意义。龙桥铁矿床赋矿地层为一套厚度20~150m的泥灰岩、角砾状灰岩、白云岩、泥质粉砂岩和石英杂砂岩,由于缺乏标志性化石和岩性标志层,赋矿地层的时代归属长期存在争议。本文在野外研究的基础上,对龙桥铁矿床主矿体顶底板不同位置的4组砂岩样品(ZK109,ZK309,ZK007和ZK1603)和矿区外围侏罗系罗岭组砂岩(LQWW)开展了系统碎屑锆石年代学研究,定年结果表明,ZK109,ZK309,ZK007和ZK1603样品碎屑锆石的最小年龄和最大年龄分别为262.1±3.2 Ma,2589.8±15.0 Ma;261.8±1.9 Ma,2520.1±11.1 Ma;264.6±2.0 Ma,2947.2±51.4Ma和257.1±1.9Ma,2717.0±21.0。LQWW样品的碎屑锆石最小年龄为166.0±1.4Ma,最大年龄为3842.6±6.5 Ma。结合区域地质特征分析,上述碎屑锆石年龄特征表明,龙桥铁矿床赋矿围岩形成时代应为中三叠世。结合近期庐枞地区的勘查成果,本文认为庐枞北部是寻找龙桥式铁矿床的有利地区。  相似文献   

8.
新疆东天山是中国重要铁铜多金属成矿带之一,磁海大型铁矿床位于该成矿带南缘的北山裂谷带内。铁矿体赋存于早期辉绿岩和矽卡岩中,呈透镜状、脉状近平行排列,后期辉绿岩脉穿切早期辉绿岩和矿体。在野外地质调查的基础上,文章对早期辉绿岩和成矿期后辉绿岩脉进行了年代学研究。锆石LA-MC-ICP MS U-Pb测年结果表明,赋矿辉绿岩的形成时代为(286.5±1.8)Ma和(284.8±1.3)Ma,辉绿岩脉形成于(275.8±2.2)Ma,由此限定磁海铁矿床的形成年龄在286~275 Ma,属于早二叠世成矿。结合区域岩浆和构造活动研究成果认为,磁海铁矿床成矿作用与东天山地区早二叠世大规模镁铁质-超镁铁质岩浆作用密切相关,形成于碰撞后伸展构造环境中。  相似文献   

9.
西天山伊犁地区广泛出露的大哈拉军山组火山-沉积岩系,是研究西天山早石炭世古地理格局和天山古生代造山作用演化过程最为直接的载体。文章对西天山乌孙山地区大哈拉军山组砂岩样品进行了LA-ICP-MS锆石U-Pb测年。结果显示,其碎屑锆石206Pb/238U表面年龄分布范围较宽((321±2)~(435±2)Ma),按年龄及频率分布特征大致可以划分为2组:321~372 Ma和395~435 Ma。结合锆石的矿物学特征、CL图像特点及乌孙山区域地质资料,初步获得以下认识:(1)西天山乌孙山地区大哈拉军山组沉积时代不晚于早石炭世晚期;(2)所研究砂岩的碎屑物质主要来源于乌孙山及南部那拉提山相关的火山岩浆岩;(3)西天山造山带在中—晚泥盆世期间经历了一次重要的洋陆转换事件。早石炭世以后,进入后碰撞裂谷伸展演化阶段,因此大哈拉军山组火山-沉积岩系形成后碰撞伸展构造环境。  相似文献   

10.
新疆西天山查岗诺尔铁矿床矿物学特征及其地质意义   总被引:12,自引:0,他引:12  
查岗诺尔大型磁铁矿床位于西天山阿吾拉勒东段,矿体赋存于下石炭统大哈拉军山组安山质火山碎屑岩或凝灰岩中,主要呈层状、似层状、透镜状,受NW、NWW、NE断裂及环形断裂构造控制。矿区发育石榴石、透辉石、方柱石、阳起石、钾长石、绿帘石、绿泥石、方解石等蚀变矿物,矿石矿物主要为磁铁矿和赤铁矿,伴生的金属矿物以黄铁矿和黄铜矿为主。电子探针分析结果表明,石榴石和辉石分别为钙铁榴石-钙铝榴石系列和透辉石-钙铁辉石系列,其化学组成可表示为Adr37.97~97.89Grs0.19~57.21(Alm+Sps)0.84~4.38和Di28.68~87.46Hd10.46~70.13Jo0.24~5.53,与典型的矽卡岩型铁矿中石榴石和辉石的端员组分相似。在磁铁矿和赤铁矿的Ca+Al+Mn-Ti+V图解中,多数样品落入矽卡岩型铁矿的区域;在磁铁矿的TiO2-Al2O3-MgO图解中,多数样品落入或趋近于沉积变质-接触交代磁铁矿区域。结合矿床地质特征和矿物学研究,认为该矿床的形成与矽卡岩化紧密相关,矽卡岩化对铁成矿有重要的贡献。  相似文献   

11.
卡拉盖雷火山岩型热液铜金矿床位于新疆西天山那拉提构造带境内西段, 赋矿地层为下石炭统大哈拉军山组, 含矿岩石主要为玄武质凝灰岩、浅变质岩及隐爆角砾岩。矿体产于隐爆角砾岩筒及构造破碎带裂隙或片理、劈理微裂隙中。硅化、绿泥石化和电气石化是高品位矿石的蚀变标志。岩石地球化学研究表明, 区内大哈拉军山组火山岩以钙碱性系列为主, 含部分拉斑玄武岩系列, 富集LREE和大离子亲石元素(Rb、Ba、Th、K), 相对亏损HREE和高场强元素(Nb、Ta、Ti、P), 具有大陆火山弧亲缘性。综合伊犁—中天山板块南缘的构造演化特征, 认为矿区大哈拉军山组火山岩产于板块俯冲-碰撞后期较成熟的大陆火山弧环境。  相似文献   

12.
红石金矿区位于东天山觉罗塔格地区秋格明塔什—黄山韧性剪切带内, 石英钠长斑岩为矿体顶底板围岩, 该金矿的赋矿地层干墩组为一套以类复理石杂砂岩建造为主的岩石组合。石英钠长斑岩和地层均发生较强的糜棱岩化, 石英钠长斑岩的锆石SHRIMP U-Pb定年结果为(344±4) Ma, 说明被该岩体侵入的干墩组地层时代不晚于(344±4) Ma, 从同位素年代学角度上限定了干墩组地层时代为早石炭世, 表明秋格明塔什—黄山地区在该时期还处于深海-半深海沉积环境。对石英钠长斑岩糜棱岩化阶段形成的绢云母进行40Ar-39Ar阶段升温测年分析, 得到坪年龄为(262±1) Ma。该年龄与秋格明塔什—黄山韧性剪切带中-西段右行走滑剪切变形作用时代一致, 说明红石金矿可能与走滑剪切作用有关, 结合前人对红石金矿成矿时代的研究结果, 认为秋格明塔什—黄山韧性剪切带右行走滑剪切作用是红石金矿成矿作用的主因。  相似文献   

13.
西藏措勤县的隆格尔铁矿位于拉萨地块隆格尔-工布江达弧背断隆带的西段,是冈底斯西段中生代矽卡岩型铁矿中重要的矿床之一。野外和室内工作表明,隆格尔铁矿床属矽卡岩型铁矿,与成矿有关的岩体为粗粒二长花岗岩。因此,本文通过对隆格尔铁矿成矿岩体的LA_ICP_MS和SHRIMP锆石U_Pb定年来探讨其成矿时代。分析结果表明:隆格尔粗粒二长花岗岩年龄为115.5±2.1 Ma,可近似代表铁成矿年龄。隆格尔铁矿与其东侧同处于同一构造单元内的尼雄铁矿床成岩成矿年龄为110~116 Ma,两者间的洛布勒铁矿床的成岩成矿年龄为111.3±1.6 Ma。这些铁矿床处于相同的构造单元,具相似的成矿特征和相近的成岩成矿年龄,构成一条东西向展布的早白垩世矽卡岩型铁矿成矿带,并可能向西延伸包括帮部勒、龙认拉、查加寺等矽卡岩型铁矿床。该带上还发育有晚白垩世的矽卡岩型铜金矿床,如日阿铜金矿床,成矿年龄均为87 Ma。因此,这一成矿带应当具有相同或相似的地质背景和构造-岩浆演化过程。隆格尔铁矿床乃至整个成矿带成铁的岩浆活动可能与洋壳断离前的板片回卷过程相关,成铜金的岩浆活动可能与洋壳断离过程相关,而矿区内石英闪长岩的侵入处于两者之间。  相似文献   

14.
新疆准噶尔北缘玉勒肯哈腊苏斑岩铜矿床年代学研究   总被引:7,自引:3,他引:4  
玉勒肯哈腊苏铜矿是近几年准噶尔北缘卡拉先格尔斑岩铜矿带发现的又一个中型斑岩铜矿,其成岩成矿年代学的研究可以对矿床模型构建、区域成矿规律的总结提供制约。矿区侵入岩发育,矿化主要受闪长玢岩控制,少部分赋存在似斑状黑云母石英二长岩和北塔山组火山岩、火山碎屑岩中。本文利用锆石LA-ICP-MSU-Pb法和辉钼矿Re-Os法对矿区岩体和矿化进行了成岩成矿年代学研究。结合前人的研究,认为矿区存在5次主要岩浆侵入事件:382Ma石英闪长岩侵入,379Ma形成含矿闪长玢岩,375~374Ma形成似斑状黑云石英二长岩,348Ma形成黑云母石英斑岩脉,266Ma形成二长斑岩,前三次岩浆侵入活动对应构造环境为板块俯冲阶段,后二次岩浆侵入活动为后碰撞阶段。9件辉钼矿样品Re-Os同位素等时线年龄为373.9±2.2Ma,表明铜钼成矿时代为中泥盆世晚期,与闪长玢岩侵入有关。  相似文献   

15.
The Chandmani Uul deposit is located in Dornogovi province, Southeastern Mongolia. Iron oxide ores are hosted in the andesitic rocks of the Shar Zeeg Formation of Neoproterozoic to Lower‐Cambrian age. Middle‐ to Upper‐Cambrian bodies of granitic rocks have intruded into the host rocks in the western and southern regions of the deposit. The wall rocks around the iron oxide ore bodies were hydrothermally altered to form potassic, epidote, and sericite–chlorite alteration zones, and calcite and quartz veinlets are ubiquitous in the late stage. Since granitic rocks also underwent potassic alteration, the activity of the granitic rocks must have a genetic relation to the ore deposit. The ore mineral assemblage is dominated by iron oxides such as mushketovite, euhedral magnetite with concentric and/or oscillatory zoning textures, and cauliflower magnetite. Lesser amounts of chalcopyrite and pyrite accompany the iron oxides. Among all these products, mushketovite is dominant and is distributed throughout the deposit. Meanwhile, euhedral magnetite appears in limited amounts at relatively shallow levels in the deposit. By contrast, cauliflower magnetite appears locally in the deeper parts of the deposit, and is associated with green‐colored garnet and calcite. Sulfide minerals are ubiquitously associated with these iron oxides. The oxygen isotope (δ18O) values of all types of magnetite, quartz, and epidote were found to be ?5.9 to ?2.8‰, 10.5 to 14.9‰, and 3.6 to 6.6‰, respectively. The δ18O values of quartz–magnetite pairs suggest an equilibrium isotopic temperature near 300°C. The calculated values of δ18O for the water responsible for magnetite ranged from 2 to 10‰. All the data obtained in this study suggest that the iron oxide deposit at the Chandmani Uul is a typical iron oxide–copper–gold deposit, and that this deposit was formed at an intermediate depth with potassic and sericite–chlorite alteration zones under the oxidized conditions of a hematite‐stable environment. The δ18O range estimated implies that the ore‐forming fluid was supplied by a crystallizing granodioritic magma exsolving fluids at depth with a significant contribution of meteoric water.  相似文献   

16.
式可布台铁矿位于西天山阿吾拉勒铁矿成矿带西段,是此矿带极具代表性的铁矿床。主要赋存于以凝灰岩为主的石炭系上统伊什基里克组火山岩中。本文通过对式可布台矿区的火山岩进行岩石地球化学和LA-ICPMS锆石U-Pb测年分析来探讨火山岩形成的构造环境与成岩时代。地球化学分析表明大多数火山岩样品显示为高钾钙碱性系列;主量元素表明矿区火山岩主要由安山岩、英安岩、流纹英安岩组成,为钙碱性系列;微量元素和稀土元素表明矿区火山岩产出的构造环境为火山岛弧;LA-ICPMS锆石U-Pb测年显示火山岩的206Pb/238U加权平均年龄分别为(301±1)Ma和(313±2)Ma,表明该区的火山岩为晚石炭世早期。结合区域地质资料,认为矿区内出露的高钾钙碱性系列火山岩可能属于俯冲过程末期大陆岛弧岩浆作用的产物,其岩石的形成与构造岛弧环境有关,主体与下石炭统大哈拉军山组火山岩岩石化学特征相似。  相似文献   

17.
The Fenghuangshan skarn-type Cu deposit, Tongling Ore Cluster, Anhui Province, is an important component in the Middle–Lower Yangtze River ore-forming belt. To better understand magmatism and its relationship to mineralization, we investigated geochemical features, ore-forming fluids, and geochronology of the Xinwuli intrusion and the related Fenghuangshan Cu deposit. Lithogeochemical characteristics show that the Xinwuli quartz monzodiorite is formed by mixing magma derived from upper mantle alkaline basalt that has been contaminated by crust materials. C, H and O isotopes indicate that ore-forming fluids mainly come from the magma, with minor amounts of meteoric fluids involved at the late stage. S and Pb isotopic components indicate that ore-forming materials are derived from the mantle. Molybdenite Re–Os isotopic dating yields Re–Os model ages ranging from 139.1±2.4 Ma to 142.0±2.2 Ma, with an isochronal age of 141.1±1.4 Ma, which is consistent with sensitive, high-resolution ion microprobe (SHRIMP) zircon U–Pb ages of quartz monzodiorite and granodiorite in the mining area. Dating analysis yields ages from 136.0±2.0 Ma to 143.0±2.4 Ma for the quartz monzodiorite (a weighted average of 139.4±1.2 Ma) and ages from 136.7±2.0 Ma to 145.3±2.4 Ma for granodiorite (a weighted average of 141.0±1.1 Ma).  相似文献   

18.
小于赞金矿床是产于新疆西天山也列莫顿盆地的浅成低温热液型金矿床,赋存于晚古生代大哈拉军山组火山岩中。矿石类型主要为蚀变岩型和石英脉型,主要发育硅化、黄铁绢英岩化、伊利石化、青磐岩化蚀变。流体成矿过程可分为3个阶段,分别为石英黄铁矿、石英玉髓黄铁矿和石英方解石黄铁矿阶段。小于赞金矿床流体包裹体类型单一,主要为水溶液包裹体,可分为纯液相水溶液包裹体(PL类)、富液相水溶液包裹体(L类)和富气相水溶液包裹体(V类)。石英黄铁矿阶段包裹体均一温度集中于130~190 ℃,盐度w(NaCleqv.)为0.2%~8.0%;石英玉髓黄铁矿阶段均一温度介于115~161 ℃,盐度w(NaCleqv.)为0.7%~3.4%;石英方解石黄铁矿阶段均一温度介于110~138 ℃,盐度w(NaCleqv.)为0.2%~3.4%。鉴于赋矿角砾凝灰岩的锆石U-Pb年龄为(353.8±1.8) Ma,且被下石炭统阿恰勒河组不整合覆盖,故可将小于赞金矿床的成矿时代限定在(353.8±1.8) Ma至早石炭世维宪期。锆石εHf(t)变化范围为+4.1~+8.4,平均值+6.1,两阶段Hf模式年龄tDM2变化范围为822~1 095 Ma,指示该区岩浆演化过程中有少量地幔物质的加入。综合考量矿床地质特征、流体包裹体特征和成矿时代,认为小于赞矿床为早石炭世低硫型浅成低温热液型金矿。  相似文献   

19.
粤西大金山钨锡多金属矿是一个近年新发现的与花岗岩有关的石英脉型钨锡多金属矿,目前估算的资源量已达中型,并具有大型矿床的找矿潜力。矿体形态简单,主要以石英脉的形式产出,由石英脉、云英岩脉和多金属硫化物石英脉等组成。钨锡多金属矿化的主要类型为细脉状和网脉状,围岩蚀变主要有硅化、云英岩化和绿泥石化等。本文在详细介绍矿床地质特征的基础上,对矿床进行了成岩成矿年代学研究。采用LA-MC-ICP-MS锆石U-Pb测年技术,得到了花岗岩的成岩年龄:中细粒黑云母花岗岩形成于82.89±0.35Ma~85.6±0.52Ma,似斑状黑云母花岗岩形成于75.01±0.16Ma~84.17±0.34Ma。通过对与中细粒黑云母花岗岩有关的5件石英脉型辉钼矿进行Re-Os同位素分析,获得其模式年龄为80.07±1.19Ma~84.93±1.42Ma。以上年代学测试结果说明大金山钨锡多金属矿成岩成矿时代为晚白垩世,成岩成矿作用基本同时。本文认为大金山钨锡多金属矿成岩成矿作用发生在华南晚中生代岩石圈拉张-伸展的构造背景下,是华南晚中生代大规模成岩成矿作用的产物。  相似文献   

20.
西天山乌孙山地区大哈拉军山组由玄武岩、安山岩、英安岩、流纹岩及相应的火山碎屑岩组成,安山岩和流纹岩分布最广。LA-ICP-MS锆石U-Pb定年结果表明,火山活动喷发的安山岩与安山质晶屑凝灰熔岩分别形成于353.9Ma±6.5Ma和356.3Ma±4.4Ma,属于早石炭世早期。通过区域对比,西天山大哈拉军山组的火山岩浆作用显示从伊犁中天山板块南北缘向伊犁盆地内部逐渐变年轻的特点,且火山岩喷发时代差别不大(约40Ma)。岩石地球化学研究表明,火山岩属钙碱性系列,富集轻稀土元素,相对亏损重稀土元素。中性火山岩富集大离子亲石元素(如Cs、Rb、Th、U),而相对亏损高场强元素,具有明显的Nb、Ta、Ti负异常,显示出岛弧火山岩的特征;酸性火山岩相对富集Rb、Th、U、Ta等元素,具有明显的Ba、Sr、P、Eu、Ti等元素的负异常。综合伊犁-中天山板块南缘的构造演化特征,认为大哈拉军山组形成于活动大陆边缘环境,产在板块俯冲-碰撞的最后阶段。  相似文献   

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