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1.
The Luoboling Cu–Mo deposit in the Zijinshan Orefield, Fujian province, southeastern China, is a large porphyry deposit hosted by the Sifang granodiorite and the Luoboling granodiorite porphyry. The largest Cu–Mo orebody is saddle-shaped with various types of hydrothermal veinlets. Intensive hydrothermal alteration in the deposit is characterized by outward zoning from potassic, overprinted by phyllic alteration, to phyllic and alunite–dickite alteration. Based on the mineral assemblages and crosscutting relationships of veins, the ore-forming process can be divided into three stages, namely: an early-stage K-feldspar + quartz ± magnetite ± molybdenite veins associated with potassic alteration; a middle-stage quartz + molybdenite + chalcopyrite + pyrite veins in phyllic zone; and a late-stage quartz ± gypsum veins in the phyllic and alunite–dickite alteration zones. Six molybdenite separates yield a Re−Os isochron age 104.6 ± 1.0 Ma, which is identical to the age of emplacement of the Sifang and Luoboling granodiorite porphyries. Three types of fluid inclusions (FIs) were observed at the Luoboling deposit: 1) NaCl–H2O (aqueous), 2) daughter mineral-bearing and 3) CO2–H2O fluid inclusions. FIs of the early and middle stages are predominantly vapor-rich aqueous and daughter mineral-bearing inclusions, together with minor CO2-rich and liquid-rich aqueous inclusions; whereas the late-stage minerals only contain liquid-rich aqueous inclusions. Homogenization temperatures and salinities of FIs trapped in the early-stage minerals range from 420 to 540 °C and 0.4 to 62.9 wt.% NaCl equiv., respectively. FIs of the middle-stage yield homogenization temperatures of 340 to 480 °C and salinities of 0.5 to 56.0 wt.% NaCl equiv. CO2 content and the oxygen fugacity (indicated by daughter minerals) of FIs trapped in middle-stage minerals are lower than those in the early stage. The liquid-rich aqueous inclusions of the late-stage homogenize at temperatures of 140 to 280 °C, yielding salinities of 0.4 to 8.4 wt.% NaCl equiv. The minimum estimated pressures of the three stages are 30–70 MPa, 10–40 MPa and 1–10 MPa, respectively, corresponding to minimum ore-forming depths of 1–2.8 km. Fluids trapped in early, middle and late stages yield δD values of − 67‰ to − 54‰, − 54‰ to − 70‰, and − 62‰, and δ18O values of 5.4‰ to 6.7‰, 2.8‰ to 4.2‰, and − 2.1‰, respectively. Fluid boiling, which resulted in the formation of stockworks and the precipitation of sulfides, occurred in the early and middle stages. The fluids subsequently evolved into a low temperature, low salinity system in the late stage, along with an input of meteoric water. The Luoboling porphyry Cu–Mo system was developed in a transition from continental arc to back-arc extension region, which was related to the westward subduction of the paleo-Pacific plate beneath the Huanan Orogen.  相似文献   
2.
The Linghou deposit, located near Hangzhou City of Zhejiang Province, eastern China, is a medium-sized polymetallic sulfide deposit associated with granitic intrusion. This deposit is structurally and lithologically controlled and commonly characterized by ore veins or irregular ore lenses. In this deposit, two mineralization events were identified, of which the former produced the Cu–Au–Ag orebodies, while the latter formed Pb–Zn–Cu orebodies. Silicification and calc-silicate (skarn type), phyllic, and carbonate alternation are four principal types of hydrothermal alteration. The early Cu–Au–Ag and late Pb–Zn–Cu mineralizations are characterized by quartz ± sericite + pyrite + chalcopyrite + bornite ± Au–Ag minerals ± magnetite ± molybdenite and calcite + dolomite + sphalerite + pyrite + chalcopyrite + galena, respectively. Calcite clusters and calcite ± quartz vein are formed during the late hydrothermal stage.The NaCl–H2O–CO2 system fluid, coexisting with NaCl–H2O system fluid and showing the similar homogenization temperatures (385 °C and 356 °C, respectively) and different salinities (16.89–21.68 wt.% NaCl eqv. and 7.70–15.53 wt.% NaCl eqv.), suggests that fluid immiscibility occurred during the Cu–Au–Ag mineralization stage and might have given rise to the ore-metal precipitation. The ore-forming fluid of the Pb–Zn–Cu mineralization mainly belongs to the NaCl–H2O–CO2 system of high temperature (~ 401 °C) and mid-high salinity (10.79 wt.% NaCl eqv.).Fluids trapped in the quartz-chalcopyrite vein, Cu–Au–Ag ores, Pb–Zn–Cu ores and calcite clusters yielded δ18OH2O and δD values varying from 5.54‰ to 13.11‰ and from − 71.8‰ to − 105.1‰, respectively, indicating that magmatic fluids may have played an important role in two mineralization events. The δ13CPDB values of the calcite change from − 2.78‰ to − 4.63‰, indicating that the CO32  or CO2 in the ore-forming fluid of the Pb–Zn–Cu mineralization was mainly sourced from the magmatic system, although dissolution of minor marine carbonate may have also occurred during the ore-forming processes. The sulfide minerals have homogeneous lead isotopic compositions with 206Pb/204Pb ranging from 17.958 to 18.587, 207Pb/204Pb ranging from 15.549 to 15.701, and 208Pb/204Pb ranging from 37.976 to 39.052, indicating that metallic elements of the Linghou deposit came from a mixed source involving mantle and crustal components.Based on geological evidence, fluid inclusions, and H–O–C–S–Pb isotopic data, the Linghou polymetallic deposit is interpreted as a high-temperature, skarn-carbonate replacement type. Two types of mineralization are both related to the magmatic–hydrothermal system, with the Cu–Au–Ag mineralization having a close relationship with granodiorite.  相似文献   
3.
老金厂金矿床是北山成矿南带最具代表性的中低温岩浆热液型金矿床之一,其规模为中型。依据脉体穿插、矿物共生组合和矿石结构构造等特征,将矿床矿化作用过程划分为石英-黄铁矿阶段(Ⅰ)、石英-含砷黄铁矿-毒砂阶段(Ⅱ)、石英-黄铁矿-多金属硫化物阶段(Ⅲ)和石英-方解石阶段(Ⅳ)。利用电子探针研究了不同成矿阶段载金矿物的元素组成及其分布规律。Ⅰ阶段:黄铁矿以粗粒自形立方体为主,粒度为0.50~1.50 mm,贫As、Au;毒砂含量极少,呈细粒他形。Ⅱ阶段:含砷黄铁矿周围常有大量毒砂产出,含砷黄铁矿多为立方体、五角十二面体,粒度为0.30~1.00 mm,富As、Au;该阶段矿化最为强烈,毒砂主要形成于此时期,多呈棱柱状、柱状、放射状集合体,显示富S亏As特征。Ⅲ阶段:多以黄铁矿-黄铜矿-闪锌矿共生组合脉的形式产出,黄铁矿多呈长条状,以富S、Cu、Zn、Au和贫Fe、As为特征。Ⅳ阶段:矿化作用极弱,毒砂、黄铁矿含量极少,为细粒他形。原位硫同位素组成显示:Ⅰ阶段黄铁矿δ34SV-CDT值为-3.8‰~-2.9‰,均值为-3.3‰;Ⅱ阶段黄铁矿和毒砂δ34SV-CDT值为-4.7‰~2.6‰,均值为-3.3‰;Ⅲ阶段黄铁矿和闪锌矿δ34SV-CDT值主要分布于-1.9‰~1.0‰之间,均值为0.1‰。此3个阶段硫同位素组成反映了成矿期硫主要来源于幔源岩浆,混入了部分地层硫。综合前人研究成果,认为成矿早期至晚期,成矿流体总体上由富S贫As向富As贫S演化。Ⅰ阶段体系处于中性稳定的环境,硫源充足;Ⅱ阶段为贫S富As的高氧逸度环境,由于大气降水对地层的淋滤渗透,混入富As流体,Au可能与As结合形成Au-As络合物,在成矿有利部位富集沉淀;Ⅲ阶段成矿元素种类丰富,体系为富S贫As的弱还原环境,Au很可能与HS-、S-形成络合物进入黄铁矿晶格。  相似文献   
4.
江西永平矿床位于钦杭成矿带东段,是该成矿带内矽卡岩型Cu-W共生成矿的典型代表.为查明永平似斑状黑云母花岗岩的源区特征及其与Cu-W矿化的关系,文章对该花岗岩进行了岩石学、锆石U-Pb年代学、微量元素地球化学及Hf同位素研究.结果表明,似斑状黑云母花岗岩的锆石LA-ICP-MS U-Pb年龄为160 Ma,与空间上密切相关的矽卡岩Cu-W矿床(辉钼矿Re-Os年龄为156 Ma)具有密切的时间联系,表明永平Cu-W矿床成岩成矿作用均发生于中晚侏罗世.锆石的Ce4+/Ce3+平均值为283,表明其具有高的氧逸度,指示出很好的Cu成矿潜力.锆石的εHf(t)值为-9.60~-2.27,并且有高w(MgO)(0.84%~1.33%)和Mg#(44~49)值,表明该区花岗质岩浆来源于古老地壳物质的部分熔融,并有地幔物质的加入.通过与区内同期Cu矿化和W-Sn矿化花岗岩对比,成Cu和成Cu-W矿花岗岩的氧逸度高于成W-Sn花岗岩,成Cu-W花岗岩εHf(t)值介于成Cu和成W-Sn花岗岩之间.因此,岩浆高氧逸度和一定比例的壳幔混合可能是形成Cu-W矿的重要条件.  相似文献   
5.
东乡铜矿Ⅴ号矿体成矿地质特征及找矿方向探讨   总被引:1,自引:0,他引:1  
东乡铜矿Ⅴ号矿体位于矿区南东缘,是矿山今后接替矿区之一。2005年实施的43~71线的补充地质勘探,对矿体的形态、产状、规模进行了详细查定。文章通过对Ⅴ号矿体成矿地质特征进行剖析,拓宽找矿思路,提出矿山下一步找矿方向。  相似文献   
6.
德兴朱砂红斑岩型铜(金)矿床流体包裹体研究   总被引:3,自引:0,他引:3  
朱砂红矿床是德兴铜矿田的3大矿床之一,与铜厂、富家坞矿床呈NW向展布.为了查明该矿床的热液蚀变系统、矿化特征及成矿流体性质,文章选取朱砂红矿区5条勘探线上的21个钻孔,通过详细的岩芯编录和岩相学观察,依据矿物组合、脉体穿切关系及蚀变特征,将该矿区内的脉体分为A脉、B脉、D脉及后期碳酸盐和硫酸盐脉,A、B及D脉为主要的矿化脉,共有14种类型.对各期脉体内石英中的流体包裹体进行了系统的显微测温、气液相成分激光拉曼显微分析(LRM),从而详细示踪了成矿流体演化及蚀变-矿化过程.经研究得知,该矿区流体演化过程包括:成矿早期A脉形成阶段,发育4种脉体类型,其脉体多呈不规则状、顺板理团块状,发育的流体包裹体以富气相和含单子晶或多子晶相(还见有金属硫化物)组合为特点,均一温度为350~550℃,ω(NaCleq)主要集中在52.9% ~69.9%(含子晶多相包裹体)和2.9%~16.8%(气液两相包裹体)2个区间内,该阶段的流体与早期的钾长石化蚀变关系密切;成矿中期B脉形成阶段,发育5种脉体,以平直为显著特征,发育富气相包裹体和单子晶包裹体,还含有部分富液相包裹体,其均一温度为248~405℃,ω(NaCleq)主要集中在38.6% ~58.0%和0.9%~10.6%范围内,由于该阶段裂隙发育,成矿流体发生了减压沸腾作用,大量金属发生沉淀,是Cu(Au)、Mo的主要成矿阶段;成矿晚期D脉形成阶段,共有5种脉体类型,以富液相包裹体为主,还有少量富气相包裹体,其均一温度为127~326℃,ω(NaCleq)为0.4%~5.1%,该阶段形成了规模较大的黄铁绢英岩化和绿泥石-水云母化,伴有Mo矿化及少量Cu矿化.朱砂红矿区热液流体的演化总体上是,从早期的高温、中-高盐度的岩浆热液,向成矿晚期中-低温、低盐度的岩浆热液+大气降水混合流体转变.气液相成分激光拉曼显微分析(LRM)结果显示,在朱砂红矿区流体的演化过程中,有少量CO2的参与.此外,该矿床流体包裹体内所发现的多种暗色子矿物还有待进行系统鉴定.  相似文献   
7.
阐述了银山铜-铅-锌矿接替资源定位预测的重要性、必要性和紧迫性,对其可行性进行了理论、技术、经济和社会效益等方面的分析和讨论,介绍了该矿接替资源定位预测实践中的做法和所取得的成果.  相似文献   
8.
豆荚状铬铁矿是关键金属铬的重要来源之一,尽管豆荚状铬铁矿的研究取得了诸多进展,但对于发育于蛇绿岩壳-幔过渡带的铬铁矿成因却涉及较少。阿尔巴尼亚布尔齐泽岩体壳-幔过渡带中产出的Cerruja豆荚状铬铁矿矿床,其矿体及纯橄岩围岩普遍被辉石岩脉穿切,辉石岩脉与矿体接触带以及辉石岩脉中的铬尖晶石强烈破碎,在铬尖晶石的裂隙和包裹体中发育大量富Ti矿物相,如金红石、钛铁矿和榍石等,是研究壳-幔过渡带铬铁矿成因的理想对象。Cerruja豆荚状铬铁矿及纯橄岩围岩中铬尖晶石Cr#分别为0.56~0.58和0.52~0.55,属于高铝型铬铁矿。接触带及辉石岩脉中的铬尖晶石Cr#明显升高(分别为0.57~0.67和0.72~0.83),且Ti、V、Mn、Sc、Co、Zn和Ga含量也升高。本文依据铬尖晶石的结构及矿物化学成分变化特征,提出布尔齐泽壳-幔过渡带铬铁矿经历多阶段演化叠加:首先,Mirdita-Pindos洋盆在侏罗纪(约165 Ma)发生洋内初始俯冲,软流圈物质上涌生成的MORB-like弧前玄武质熔体随着俯冲的进行逐渐向玻安质熔体演变,期间产生的过渡型熔体与地幔橄榄岩反应生成高铝型铬铁矿;然后,部分MORB-like弧前玄武质熔体随着堆晶间隙分离结晶往富Fe和Ti的方向演化,改造早期形成的高铝型铬铁矿并结晶高铬型铬铁矿,同时生成金红石、钛铁矿和榍石等富Ti矿物相。  相似文献   
9.
王晓军  郭鹏  黄惟盛  陈智宏  陈青林  赵奎 《岩土力学》2022,43(12):3453-3462
下向分层进路充填采矿法中,进路充填顶板的稳定对回采过程安全性至关重要,而分层充填体叠加载荷计算一直是顶板稳定性分析的难点。在充分考虑采动岩体荷载、矿体倾角、相邻分层间回采进路的交错布置、充填体与围岩的接触等工程实际后,推导了进路顶板平衡微分方程,求解得到进路顶板静荷载的理论值。结合回采工艺建立了“多跨梁”力学模型,并得到了回采进路顶板拉应力的理论计算公式,分析得到影响进路顶板稳定性的4个重要理论因素:顶板上部载荷σ v、回采进路跨度l、1:4充填体的厚度h、充填体自身抗拉强度[σt]。为充分考虑进路顶板静载荷和回采爆破动载荷影响,利用FLAC3D对多因素影响下的顶板稳定性进行了数值模拟正交计算。根据模拟结果,分析了各因素对顶板拉应力的影响规律,利用多元非线性回归的方法建立了多因素组合影响下顶板稳定性评价模型。该模型应用到某铜矿试验采场的实际生产,具有较好的指导作用。  相似文献   
10.
The Shapinggou porphyry Mo deposit, one of the largest Mo deposits in Asia, is located in the Dabie Orogen, Central China. Hydrothermal alteration and mineralization at Shapinggou can be divided into four stages, i.e., stage 1 ore-barren quartz veins with intense silicification, followed by stage 2 quartz-molybdenite veins associated with potassic alteration, stage 3 quartz-polymetallic sulfide veins related to phyllic alteration, and stage 4 ore-barren quartz ± calcite ± pyrite veins with weak propylitization. Hydrothermal quartz mainly contains three types of fluid inclusions, namely, two-phase liquid-rich (type I), two- or three-phase gas-rich CO2-bearing (type II) and halite-bearing (type III) inclusions. The last two types of fluid inclusions are absent in stages 1 and 4. Type I inclusions in the silicic zone (stage 1) display homogenization temperatures of 340 to 550 °C, with salinities of 7.9–16.9 wt.% NaCl equivalent. Type II and coexisting type III inclusions in the potassic zone (stage 2), which hosts the main Mo orebodies, have homogenization temperatures of 240–440 °C and 240–450 °C, with salinities of 34.1–50.9 and 0.1–7.4 wt.% NaCl equivalent, respectively. Type II and coexisting type III inclusions in the phyllic zone (stage 3) display homogenization temperatures of 250–345 °C and 220–315 °C, with salinities of 0.2–6.5 and 32.9–39.3 wt.% NaCl equivalent, respectively. Type I inclusions in the propylitization zone (stage 4) display homogenization temperatures of 170 to 330 °C, with salinities lower than 6.5 wt.% NaCl equivalent. The abundant CO2-rich and coexisting halite-bearing fluid inclusion assemblages in the potassic and phyllic zones highlight the significance of intensive fluid boiling of a NaCl–CO2–H2O system in deep environments (up to 2.3 kbar) for giant porphyry Mo mineralization. Hydrogen and oxygen isotopic compositions indicate that ore-fluids were gradually evolved from magmatic to meteoric in origin. Sulfur and lead isotopes suggest that the ore-forming materials at Shapinggou are magmatic in origin. Re–Os dating of molybdenite gives a well-defined 187Re/187Os isochron with an age of 112.7 ± 1.8 Ma, suggesting a post-collisional setting.  相似文献   
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