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1.
西藏多不杂斑岩铜矿床高温高盐度流体包裹体及其成因意义   总被引:22,自引:1,他引:22  
多不杂铜矿为班公湖—怒江缝合带上发现的第一处大型斑岩铜矿床,矿床位于羌塘—三江复合板片南缘的多不杂构造岩浆带中。多不杂斑岩铜矿总体上具有典型的斑岩铜矿矿石特征和蚀变分带特点,围绕斑岩体从岩体中心向外,可以划分出三个主要的蚀变带,依次为钾硅化 绢英岩化带、绢英岩化带和黄铁矿化—角岩化带。矿床以岩体内部和外部均发育强烈的磁铁矿化蚀变、而外围青磐岩化带不发育等特征有别于国内其他斑岩铜矿。对斑岩铜矿的流体包裹体特征和均一测温结果表明斑岩铜矿石英含有丰富的流体包裹体,包裹体类型众多,而以大量发育含子矿物多相包裹体为突出特征。子矿物种类有石盐、钾盐、赤铁矿、红钾铁盐、石膏、黄铜矿等,有时一个包裹体含有多达5~6个子矿物,在我国其他斑岩铜矿中是不多见的。金属子矿物大量发育表明流体成矿金属元素含量很高。成矿流体由来自岩浆的高温、高盐度流体和以天水成因为主的中低温、低盐度流体两个流体端员组份组成。高温、高盐度流体为主要成矿流体,以含子矿物多相流体包裹体为代表,其形成温度>450℃,盐度在28%~83%NaClequ.,平均达到58%~60%NaClequ.,流体组分主要属于H2O-NaCl-KCl-FeCl2体系。高温高盐度流体是在浅成条件下于岩浆结晶的最后阶段从浅部岩浆中直接出溶形成的。中低温、低盐度流体主要来源于天水或天水与晚期岩浆热液的混合,温度在360℃以下,盐度3.71%~14.15%NaClequ.。含矿硫化物主要在300~420℃温度区间沉淀,沉淀富集主要与温度降低有关,多不杂斑岩铜矿为与浅成斑岩体侵入有关的高温岩浆热液型斑岩铜矿。与世界上其他斑岩铜矿相比,多不杂斑岩铜矿具有与Bingham和Grasberg等世界级超大型斑岩铜矿相似的流体包裹体和蚀变分带特征,暗示该矿床具备形成超大型斑岩铜矿的潜力。  相似文献   

2.
卢焕章  毕献武  王蝶  单强 《矿床地质》2016,35(5):933-952
斑岩铜矿是主要的铜资源,是矿床研究和勘查的重要目标。斑岩铜矿按其与板块构造的关系可分为2种:俯冲带斑岩铜矿和碰撞造山带斑岩铜矿,它们在成矿流体方面有很多区别,其中较大的差别是碰撞造山带斑岩铜矿的钾化蚀变带比俯冲带斑岩铜矿的钾化蚀变带强得多,且范围也相对较宽。文章简述了这2种斑岩矿床的主要地质特征,着重从流体包裹体、蚀变作用和稳定同位素研究来探讨斑铜矿床成矿流体的主要特征,包括成矿流体的成分、形成温度和压力,氢、氧、碳和硫稳定同位素组成。这两种类型的斑岩铜矿中主要发育5种包裹体:M熔体包裹体;Ⅰ液体包裹体;Ⅱ气体包裹体;Ⅲ含子矿物的多相包裹体和CO2_H2O包裹体。Ⅱ类和Ⅲ类包裹体常共存,且均一温度相似,表明成矿流体经历了不混溶和沸腾作用。在Ⅲ类含子矿物的包裹体中发现了含金属硫化物(黄铜矿、黄铁矿)和氧化物(赤铁矿、磁铁矿)子矿物。在斑岩金矿和碰撞造山带的斑岩铜矿中出现CO2_H2O包裹体,在斑岩的斑晶和一些早期石英脉的石英中可见到熔体包裹体以及熔体_流体包裹体,它们代表斑岩岩浆的样品,说明斑岩铜矿的形成经历了岩浆和热液阶段。最近的研究表明,斑岩铜矿的初始流体是中等盐度和密度的岩浆流体。这种流体在上升过程中因压力释放而发生沸腾,形成气体包裹体和含子矿物的高盐度包裹体。  相似文献   

3.
四川盐源西范坪斑岩铜矿富铜流体物理—化学特征和成因   总被引:3,自引:2,他引:3  
陈培荣  徐士进 《地球化学》1997,26(5):54-61,T001
西范坪斑岩铜矿成矿母岩为黑云母石英二长斑岩,其多相流体包裹体中普遍含有黄铜矿子矿物,成矿流体是一种富含铜的H2O-NaCl体系,具有高温、高盐度和沸腾和特征,多相包裹体捕获的最小压力51MPa左右,成矿流体水的氧同位素组成与典型岩浆水一致黄铁矿的S、Pb同位素表明成矿物质主要来自深源岩浆,所有些特点吻合于斑岩铜矿的正岩浆模式。多相流体包裹体发育的部位曾经是高盐度高矿质流体活动的地位,这种包裹体是一  相似文献   

4.
荣那铜(金)矿床是班公湖-怒江缝合带西段新发现的矿床,是多龙矿集区的重要组成矿床之一,已探明储量达大型规模,具有超大型矿床的成矿潜力。荣那铜(金)矿床矿石矿相学与岩相学研究显示其具有典型高硫化型浅成低温热液型矿床的矿物组合(明矾石、硫砷铜矿等)和矿化蚀变特征。通过资料收集与野外观察,本文将荣那铜(金)矿床的成矿过程划分为石英-黄铁矿阶段、石英-多金属硫化物阶段与碳酸盐阶段,其中石英-多金属硫化物阶段为主成矿阶段。为查明该矿床的成矿流体特征,进一步确定矿床成因类型,对取自深部矿石中的石英脉(均为主成矿阶段含黄铁矿、黄铜矿石英脉)开展了流体包裹体的岩相学观察、显微测温和激光拉曼光谱分析。结果表明,上述矿物中主要发育富液相、富气相和含子矿物三相包裹体;富液相包裹体的均一温度与盐度分别为:80~440℃和4.63%~11.95%NaCl eqv;富气相包裹体的均一温度和盐度分别为:320~440℃和5.55%~10.74%NaCl eqv;含子矿物三相包裹体的均一温度与盐度分别为200~400℃和29.4%~32.56%NaCl eqv;富液相与富气相包裹体的气体成分除少量N2外,气体成分均为H2O。综合分析认为,荣那矿床成矿流体发生了强烈的沸腾作用,流体沸腾作用是该矿床的重要成矿机制。可见,荣那矿床具有高硫型浅成低温热液矿床的矿物组合及蚀变特征,但主成矿阶段石英脉流体包裹体特征与典型斑岩型铜(金)矿床的流体包裹体特征相似。因此,推测荣那高硫型浅成低温热液铜金矿的深部存在斑岩型铜金矿化,该矿床应属浅成低温热液型-斑岩型铜金矿床。  相似文献   

5.
西藏冈底斯斑岩铜矿带驱龙铜矿成矿流体特征及其演化   总被引:20,自引:3,他引:17  
驱龙铜矿是西藏冈底斯斑岩铜矿带东段典型的斑岩型铜矿床.流体包裹体研究显示,与成矿有关的包裹体主要分为液相包裹体、气相包裹体和含子矿物多相包裹体3类,它们的均一温度为190℃~510℃;盐度为0.5~52.5 wt%NaCleq.激光拉曼显微探针(LRM)分析表明,各类包裹体中气、液相成分以H2O为主.含子矿物多相包裹体与不同气相充填度的液相包裹体、气相包裹体共存,且均一温度相近,但盐度相差很大,表明成矿流体经历了沸腾作用.从蚀变矿物组合、流体包裹体显微测温分析及LRM分析可以看出,驱龙斑岩铜矿床成矿流体富含Cl-、SO2-4、Na 、K 、Ca2 、CO2-3,具有较高盐度和较强的Cu溶解能力.  相似文献   

6.
黑龙江省多宝山斑岩型铜(钼)矿床成矿流体特征及演化   总被引:7,自引:4,他引:3  
刘军  武广  钟伟  朱明田 《岩石学报》2010,26(5):1450-1466
黑龙江省多宝山斑岩铜(钼)矿床位于小兴安岭西北部,是中亚-兴蒙造山带北东段最大的斑岩型铜(钼)矿床,矿体产于加里东期花岗闪长岩和中奥陶世多宝山组安山岩、凝灰岩中。铜矿化与绢英岩化关系密切,而钼矿化主要产于钾硅化带中。矿区内脉体广泛发育,从早到晚依次为:石英+钾长石脉、早阶段石英+辉钼矿脉、晚阶段石英+辉钼矿脉、石英+黄铜矿+黄铁矿脉、石英+黄铁矿脉和方解石+石英脉。脉石英中广泛发育流体包裹体,包括气液两相水溶液包裹体(W型)、纯气相包裹体(G型)、含CO2三相包裹体(C型)及含子矿物多相包裹体(S型)。石英+钾长石脉中仅发育气液两相包裹体,均一温度峰值﹥550℃、盐度为16.2%~18.1%NaCleqv;早阶段石英+辉钼矿脉中发育大量气液两相包裹体和含子矿物多相包裹体,并见少量含CO2三相包裹体,均一温度集中在350~450℃、盐度变化于1.1%~﹥65.3%NaCleqv;晚阶段石英+辉钼矿脉体发育大量含CO2三相包裹体和含子矿物多相包裹体,另有少量气液两相包裹体,均一温度集中在270~350℃、盐度为0.8%~42.4%NaCleqv;石英+黄铜矿+黄铁矿脉中发育丰富的气液两相包裹体,见少量含子矿物多相包裹体、含CO2三相包裹体和纯气相包裹体,均一温度峰值在230~330℃、盐度为0.8%~42.4%NaCleqv;石英+黄铁矿脉和方解石+石英脉中仅发育气液两相包裹体,均一温度变化于110~200℃、盐度为3.9%~8.4%NaCleqv。成矿流体在古深度4.1km左右,温度在230~450℃之间、压力在10~41MPa之间,发生了强烈的流体沸腾作用,大量CO2等气体从流体中释放出来,黄铜矿、斑铜矿和辉钼矿等巨量沉淀下来,形成了铜(钼)矿体。成矿流体总体上属H2O-CO2-NaCl体系,多期次的流体沸腾作用是该矿床的主要成矿机制。  相似文献   

7.
通过对王龙斑岩铜矿石英斑晶、辉钼矿石英脉中流体包裹体岩相学、包裹体显微测温分析、包裹体成分的激光拉曼探针分析及包裹体中子矿物的扫描电镜/能谱分析,发现矿化斑岩石英斑晶中发育多期流体包裹体。斑晶中除流体包裹体外尚可见少量熔体包裹体,与斑岩期矿化有关的成矿流体以中高温(200~537℃)、高盐度(29.6~44.7 wt%NaCleq)为特征,与粘土化蚀变有关的流体包裹体以低温、富 Ca 为特征,不同气相充填度的气液两相包裹体与高盐度含子矿物多相包裹体共存,且具有相似的均一温度,显示不混溶流体包裹体特征。温度、压力降低引起的流体不混溶是造成斑岩型矿化矿质沉淀的主要因素,斑岩期流体与浅成低温热液期流体形成于统一的流体系统,为同源演化结果。  相似文献   

8.
桂花冲铜矿床是铜陵矿集区沙滩脚矿田内新发现的一个以斑岩型矿化为主的矽卡岩-斑岩复合型铜矿床。文章对该矿床的矿床地质和斑岩型矿化成矿流体进行了初步研究,旨在查明该矿床成矿流体的演化过程。根据脉体的穿切关系及矿物共生组合,桂花冲铜矿斑岩型矿化成矿过程可划分为钾化、硅化、石英黄铁矿、石英多金属硫化物和碳酸盐5个阶段。硅化阶段主要发育纯气体、含子矿物及富气相包裹体,石英黄铁矿阶段主要发育纯气体、富液相、富气相及含子矿物包裹体,石英多金属硫化物阶段及碳酸盐阶段主要发育富液相包裹体。从硅化阶段至碳酸盐阶段,成矿流体由高温(472.9℃)、高盐度(47.7%~74.0%)的岩浆热液逐渐向中低温(140.2~280.3℃)、低盐度(1.6%~7.7%)的岩浆热液和大气降水的混合流体演化,成矿过程中流体经历了沸腾及混合作用,混合作用是导致铜沉淀的主要机制。  相似文献   

9.
地堡那木岗铜(金)矿床位于西藏多龙矿集区,探明储量达大型规模;矿床的成矿过程分为岩浆作用阶段、钾长石-硫化物阶段、石英-多金属硫化物阶段、碳酸盐-黄铁矿阶段和氧化作用阶段,其中石英-多金属硫化物阶段和碳酸盐-黄铁矿阶段为主要成矿阶段;为查明成矿流体特征,确定矿床成因类型,对取自深部矿石中的碳酸盐脉(均为碳酸盐-黄铁矿成矿阶段含黄铁矿黄铜矿石英脉)开展流体包裹体的岩相学观察和显微测温分析。分析结果表明,上述矿物中主要发育富液相、富气相和含子矿物三相包裹体。其中,富液相包裹体的均一温度与盐度分别为:t=80~600℃、w(NaCl,eq)=4.48%~18.79%;富气相包裹体的均一温度和盐度分别为:t=240~560℃、w(NaCl,eq)=5.09%~9.73%;含子矿物三相包裹体的均一温度与盐度分别为:t=240~560℃、w(NaCl,eq)=36%~72%。综合分析认为,地堡那木岗铜(金)矿床成矿流体发生了强烈的沸腾作用,流体沸腾作用是该矿床的重要成矿机制。通过与国内外典型斑岩型矿床与高硫化型浅成低温热液矿床的流体包裹体特征进行对比,其与斑岩型矿床的中高温、高盐度流体特征相似。因此,推测地堡那木岗矿床的成因类型为斑岩型铜(金)矿床。  相似文献   

10.
江西银山多金属矿床高盐度包裹体及其成因意义   总被引:13,自引:1,他引:13  
流体包裹体岩相学和显微测温学研究表明,银山矿床石英斑岩和金金属矿床中都发现须含石盐的高盐度流体包裹体,表明至少在成矿作用的早期成矿流体为高盐度流体,高盐度流体不是由热水溶液的不混溶作用或沸腾作用形成的,而是直接从饱和水的结晶岩浆熔体中出溶的,银山矿床的成矿流体与斑岩铜矿的成矿流体具有相似性,证实矿床深部可能有隐伏斑岩铜矿。  相似文献   

11.
新疆哈密土屋铜矿床地质和地球化学特征   总被引:1,自引:0,他引:1  
土屋铜矿床是我国近年来发现的特大型斑岩铜矿床,其独特矿床地质背景和矿床规模已经引起国内外地质学界和矿业界的广泛关注;本文详细叙述该矿床的地质背景,对矿床的地质、地球化学特征进行系统研究和总结,对矿床的成矿作用动力学过程进行探讨。研究表明,该矿床成矿物质具有深部来源特征,而岩浆在侵位过程中受到上地壳物质一定程度的混染;成矿流体以岩浆水为主,天水和岩浆水的混合仅为少量;石英流体包裹体均一温度较低,但盐度较高;含矿斑岩体是多次脉动式侵位的,成岩时代主要集中于早石炭世(367~358 Ma);成矿时代为晚于成岩时代(347.3±2.1 Ma~322.7±3 Ma)。  相似文献   

12.
In the Eurasian continent there are three huge metallogenic belts of Cu and Mo porphyry deposits, comprising the Paleozoic Central Asian Ore Belt in the north, the Tethyan Eurasian Ore Belt of Jurassic to Cenozoic age in the southwest, and the East Margin Ore Belt of the Eurasian Continent of Jurassic to Cretaceous age in the east. The latter is considered to be part of the vast Circum-Pacific ore belt. Some of the main features of the spatial–temporal distribution of Cu and Mo porphyry systems and related geodynamic processes of the three metallogenic belts are described. In particular, the key role of post-subduction – related porphyry ore systems is emphasized, comprising collisional and post-collisional Cu–Mo porphyry deposits during the geological history of the Eurasian continent. The recurrent feature of these ore systems and related felsic rocks is their derivation from partial melting of stagnant or residual oceanic slabs, and mixing with a variable amount of crustal material during magma ascent to shallower levels.  相似文献   

13.
A strong link between high Sr/Y arc magmas and porphyry Cu–Mo–Au deposits has been recognized in recent years. The Tongshan and Duobaoshan deposits are representative large Cu–Mo–Au deposits in NE China. We report LA–ICP–MS zircon U–Pb crystallization age of 471.5 ± 1.3 Ma for Tongshan ore-related granitoid. Re–Os isotopic analyses of the two chalcopyrite samples from Tongshan deposit show a model age range of 470.2–477.1 Ma. The Duobaoshan and Tongshan ore-related granitoids show higher Sr/Y and La/Yb ratios. The δ34S values of sulphides from the Duobaoshan and Tongshan deposits vary from −2.3‰ to 0.0‰, belonging to a magmatic-hydrothermal system. The Pb isotopic ratios of the sulphides from the Duobaoshan and Tongshan deposit range from 17.201 to 18.453 for 206Pb/204Pb, 15.445 to 15.551 for 207Pb/204Pb, and 36.974 to 37.999 for 208Pb/204Pb, indicating the addition of lower crustal material. The Duobaoshan and Tongshan granitoids were formed in a subduction-related continental arc setting, produced by partial melting of juvenile hydrous basalts underplating the deep continental crust during the Ordovician.  相似文献   

14.
Combined fluid inclusion microthermometry and microanalysis by laser ablation inductively coupled plasma mass spectrometry (LA-ICPMS) are used to constrain the hydrothermal processes forming a typical Climax-type porphyry Mo deposit. Molybdenum mineralisation at Questa occurred in two superimposed hydrothermal stages, a magmatic-hydrothermal breccia and later stockwork veining. In both stages, texturally earliest fluids were single-phase, of low salinity (~7 wt.% NaClequiv.) and intermediate-density. Upon decompression to ~300 bar, they boiled off a vapour phase, leaving behind a residual brine (up to 45 wt.% NaClequiv) at temperatures of ~420°C. The highest average Mo concentrations in this hot brine were ~500 μg/g, exceeding the Mo content of the intermediate-density input fluid by about an order of magnitude and reflecting pre-concentration of Mo by fluid phase separation prior to MoS2 deposition from the brine. Molybdenum concentrations in brine inclusions, then, decrease down to 5 μg/g, recording Mo precipitation in response to cooling of the saline liquid to ~360°C. Molybdenite precipitation from a dense, residual and probably sulphide-depleted brine is proposed to explain the tabular shape of the ore body and the absence of Cu-Fe sulphides in contrast to the more common Cu-Mo deposits related to porphyry stocks. Cesium and Rb concentrations in the single-phase fluids of the breccia range from 2 to 8 and from 40 to 65 μg/g, respectively. In the stockwork veins, Cs and Rb concentrations are significantly higher (45–90 and 110–230 μg/g, respectively). Because Cs and Rb are incompatible and hydrothermally non-reactive elements, the systematic increase in their concentration requires two distinct pulses of fluid exsolution from a progressively more fractionated magma. By contrast, major element and ore metal concentrations of these two fluid pulses remain essentially constant. Mass balance calculations using fluid chemical data from LA-ICPMS suggest that at least 25 km3 of melt and 7 Gt of deep input fluid were necessary to provide the amount of Mo contained in the stockwork vein stage alone. While the absolute amounts of fluid and melt are uncertain, the well-constrained element ratios in the fluids together with empirical fluid/melt partition coefficients derived from the inclusion analyses suggest a high water content of the source melt of ~10%. In line with other circumstantial evidence, these results suggest that initial fluid exsolution may have occurred at a confining pressure exceeding 5 kbar. The source of the molybdenum-mineralising fluids probably was a particularly large magma chamber that crystallised and fractionated in the lower crust or at mid-crustal level, well below the shallow intrusions immediately underlying Questa and other porphyry molybdenum deposits. Electronic supplementary material  The online version of this article (doi:) contains supplementary material, which is available to authorized users.  相似文献   

15.
雄村矿集区位于西藏冈底斯铜矿带南缘,是目前该带发现的唯一一个与新特提斯洋壳早期俯冲作用有关的斑岩型铜金矿集区。近年来,相继在该矿集区发现了1、2、3号矿体。为了全面厘定矿集区的岩浆作用与成矿的关系和深化对新特提斯洋壳早期俯冲作用相关的斑岩型矿床成矿作用的认识。本文在前期研究基础上,对雄村矿集区新发现的3号矿体含矿斑岩开展了锆石U-Pb定年、岩石地球化学和Sr-Nd-Pb-Hf同位素地球化学分析。锆石U-Pb定年结果表明,3号矿体含矿斑岩形成于早侏罗世(176. 9±1. 4Ma)。结合以往研究结果表明,雄村矿集区存在两期矿化作用,早期矿化事件发生在约172Ma,与早侏罗世(181~175Ma)石英闪长斑岩相关,形成了2、3号矿体;晚期成矿作用发生在161. 5Ma,与中侏罗世(167~161Ma)石英闪长斑岩相关,形成了1号矿体。雄村矿集区含矿岩体显示出高的εNd(t)( 4. 5)值类似于马里亚纳大洋岛弧岩浆岩,结合雄村矿集区侏罗纪砂岩的年代学及地球化学特征,表明含矿岩体形成于新特提斯洋壳北向俯冲相关的大洋岛弧环境而非陆缘弧环境。Sr-Nd-Pb-Hf同位素组成表明含矿岩体起源于亏损地幔的部分熔融,且源区同时受到了俯冲洋壳释放的流体和俯冲沉积物熔体的交代。拉萨地体南缘具有强亏损Nd-Hf同位素组成(εHf(t) 10、εNd(t) 4. 5)的侏罗纪斑岩体有利于形成斑岩型铜金矿化,寻找与新特提斯洋壳俯冲相关的斑岩型矿床的重点区域应该是侏罗纪岩体被同期火山岩覆盖的区域。  相似文献   

16.
17.
邦铺矿床是发育于冈底斯成矿带东段的大型斑岩型钼铜矿床。其含矿岩体的岩浆源区及成矿机制依然存在争议。本次研究从含矿岩体全岩主微量元素、锆石U-Pb定年、Hf-O同位素组成等方面做了进一步的探讨。含矿石英二长斑岩年龄为13.9±0.3Ma~14.0±0.2Ma,落在冈底斯带上的其他中新世斑岩型矿床含矿岩体成岩年龄范围内。含矿岩体锆石氧同位素组成比较均一,δ18O值为4.72‰~7.22‰(均值5.99‰);锆石εHf(t)值为-2.3~+5.6。锆石原位Hf-O同位素结果表明岩浆源区具有二端元混合的特点,且主要来自亏损地幔(如MORB)组分。与驱龙斑岩铜钼矿床相比,邦铺钼铜矿床Hf-O同位素更接近陆壳端元,表明在岩浆演化过程中遭受了更多富Mo的陆壳物质的混入,因此导致了驱龙是以铜为主要成矿元素的斑岩铜钼矿床,而邦铺矿床为具有更低Cu/Mo值的斑岩型钼铜矿床。  相似文献   

18.
位于西天山别珍套-科古琴晚古生代岛弧西段的喇嘛苏铜矿床是区内最大的铜矿床,与成矿作用有着密切关系的斑岩体为英云闪长斑岩、花岗闪长斑岩,是同源岩浆分异演化的产物,且花岗闪长斑岩可能属于岩浆演化晚期的产物。本区成矿斑岩的主量、微量元素和Sr-Nd同位素地球化学特征表明,其富集大离子亲石元素,而相对亏损高场强元素,出现了较为明显的Ta、Nb负异常,初始锶同位素ISr和εNd(t=390Ma)值分别为0.7072~0.7076和-0.32~0.17,显示壳幔混合源的特征,利用Sr和Nd同位素估算其源区物质约有50%来源于地壳。岩石地球化学特征指示了其为典型钙碱性火山弧花岗岩,暗示其形成于大陆弧环境。结合区域地质背景,推测本区成矿斑岩是在洋壳俯冲作用下发生部分熔融,交代原先的地幔楔,并混合了部分下地壳的物质,经历分离结晶作用的产物,其形成可能与晚古生代准噶尔洋板块向南的俯冲作用有关。结合东西天山的成矿斑岩的地球化学特征对比研究,岩浆源区的差别可能导致不同类型斑岩型矿床的形成,斑岩型铜矿床的形成较斑岩型钼矿床可能有更少的地壳物质贡献。  相似文献   

19.
Major porphyry Cu–Au and Cu–Mo deposits are distributed across almost 5000 km across central Eurasia, from the Urals Mountains in Russia in the west, to Inner Mongolia in north-eastern China. These deposits were formed during multiple magmatic episodes from the Ordovician to the Jurassic. They are associated with magmatic arcs within the extensive subduction–accretion complex of the Altaid and Transbaikal-Mongolian orogenic collages that developed from the late Neoproterozoic, through the Palaeozoic, to the Jurassic intracratonic extension. The arcs formed predominantly on the Palaeo-Tethys Ocean margin of the proto-Asian continent, but also within two back-arc basins. The development of the collages commenced when slivers of an older Proterozoic subduction complex were rifted from an existing cratonic mass and accreted to the Palaeo-Tethys Ocean margin of the combined Eastern Europe and Siberian cratons. Subduction of the Palaeo-Tethys Ocean beneath the Karakum and Altai-Tarim microcontinents and the associated back-arc basin produced the overlapping late Neoproterozoic to early Palaeozoic Tuva-Mongol and Kipchak magmatic arcs. Contemporaneous intra-oceanic subduction within the back-arc basin from the Late Ordovician produced the parallel Urals-Zharma magmatic arc, and separated the main Khanty-Mansi back-arc basin from the inboard Sakmara marginal sea. By the Late Devonian, the Tuva-Mongol and Kipchak arcs had amalgamated to form the Kazakh-Mongol arc. By the mid Palaeozoic, the two principal cratonic elements, the Siberian and Eastern European cratons, had begun to rotate relative to each other, “drawing-in” the two sets of parallel arcs to form the Kazakh Orocline between the two cratons. During the Late Devonian to Early Carboniferous, the Palaeo-Pacific Ocean began subducting below the Siberian craton to form the Sayan-Transbaikal arc, which expanded by the Permian to become the Selanga-Gobi-Khanka arc. By the Middle to Late Permian, as the Kazakh Orocline continued to develop, both the Sakmara and Khanty-Mansi back-arc basins were closed and the collage of cratons and arcs were sutured by accretionary complexes. During the Permian and Triassic, the North China craton approached and docked with the continent, closing the Mongol-Okhotsk Sea, an embayment on the Palaeo-Pacific margin, to form the Mongolian Orocline. Subduction and arc-building activity on the Palaeo-Pacific Ocean margin continued to the mid Mesozoic as the Indosinian and Yanshanian orogens.Significant porphyry Cu–Au/Mo and Au–Cu deposits were formed during the Ordovician in the Kipchak arc (e.g., Bozshakol Cu–Au in Kazakhstan and Taldy Bulak porphyry Cu–Au in Kyrgyzstan); Silurian to Devonian in the Kazakh-Mongol arc (e.g., Nurkazgan Cu–Au in Kazakhstan and Taldy Bulak-Levoberezhny Au in Kyrgyzstan); Devonian in the Urals-Zharma arc (e.g., Yubileinoe Au–Cu in Russia); Devonian in the Kazakh-Mongol arc (e.g., Oyu Tolgoi Cu–Au, and Tsagaan Suvarga Cu–Au, in Mongolia); Carboniferous in the Kazakh-Mongol arc (e.g., Kharmagtai Au–Cu in Mongolia, Tuwu-Yandong Cu–Au in Xinjiang, China, Koksai Cu–Au, Kounrad Cu–Au and the Aktogai Group of Cu–Au deposits, in Kazakhstan); Carboniferous in the Valerianov-Beltau-Kurama arc (e.g., Kal’makyr–Dalnee Cu–Au in Uzbekistan; Benqala Cu–Au in Kazakhstan); Late Carboniferous to Permian in the Selanga-Gobi-Khanka arc (e.g., Duobaoshan Cu–Au in Inner Mongolia, China); Triassic in the Selanga-Gobi-Khanka arc; and Jurassic in the Selanga-Gobi-Khanka arc (e.g., Wunugetushan Cu–Mo and Jiguanshan Mo in Inner Mongolia, China). In addition to the tectonic, geologic and metallogenic setting and distribution of porphyry Cu–Au/Mo mineralisation within central Eurasia, the setting, geology, alteration and mineralisation at each of the deposits listed above is described and summarised in Table 1.  相似文献   

20.
花岗质岩浆和矿化之间的关系:重要概念和关键特征   总被引:1,自引:0,他引:1  
最近对与花岗岩相关的锂、稀土金属和贱金属(例如Cu和Mo)矿产需求重新激发了人们对其成矿作用研究的兴趣。本文综述了不同类型花岗质岩石及与其相关的矿床:1)与高分异花岗岩有关的浸染状稀有金属矿化;2)热液型锡和钨矿化(如:矽卡岩型矿床);3)伟晶岩型稀有元素矿化;4)斑岩型矿化。虽然花岗岩和相关矿化作用之间(特别是斑岩系统相对于稀有金属)的联系还没有明确,但最近这些成矿系统的相关研究进展为探讨两者之间的关系提供了条件。本文重点回顾了与花岗岩相关成矿作用的主要特征,以及与不同类型矿化有关的花岗质岩浆的多样性,并论述了不同类型矿床的成矿模式。尽管长英质侵入岩浆系统复杂多样,但近来与这些矿化系统有关的研究进展可望能够作为找矿勘探的指示。地球化学特征可以揭示岩浆系统的氧化还原状态,进而可以判断斑岩系统的成矿潜力,它还可以与其他找矿勘探指标如矿物的同位素和微量元素分析联合使用。本文还讨论了通过熔融包裹体分析,研究微量元素在硅酸盐岩浆与挥发分体系中的行为。  相似文献   

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