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1.
青海赛什塘铜矿床流体包裹体研究   总被引:4,自引:1,他引:3  
对青海赛什塘铜矿床内与成矿有关的矽卡岩中石榴子石、透辉石及硫化物石英脉中流体包裹体的岩相学、显微测温学和显微激光拉曼光谱分析等的研究结果表明,流体包裹体有富液相、富气相和含子矿物多相包裹体3种类型;早期矽卡岩阶段均一温度436~562℃,盐度为34 wt %~45wt%NaCl eqv.,代表了高温、高盐度岩浆流体;退变质阶段均一温度322~419℃,盐度为15wt %~39 wt%NaCl eqv.;硫化物阶段均一温度235~366℃,盐度5wt%~36wt%NaCl eqv..激光拉曼光谱分析结果表明,包裹体中气相成分以CH4、H2S、CO2和H2O为主.成矿流体属于中高温、高盐度的NaCl-H2O-CO2-CH4体系,在290~360℃之间发生了强烈的流体沸腾作用,导致大量的金属硫化物沉淀,成矿流体的沸腾作用是导致铜矿床形成的重要因素.  相似文献   

2.
架底金矿是近年来在黔西南新发现的主要赋存于玄武岩中的大型微细粒浸染型金矿床。为查明其成矿流体特征,探讨流体成矿机制,针对矿床不同成矿阶段采取流体包裹体样品开展工作。根据野外观察和室内分析,架底金矿热液成矿期可分为3个阶段:黄铁矿阶段、烟灰色石英阶段和硫化物阶段,其中烟灰色石英阶段为主要成矿阶段。流体包裹体以NaCl-H2O和CO2-NaCl-H2O型为主,黄铁矿阶段富CO2包裹体,均一温度(Th)为211~231℃,盐度(wt)为2.10~7.60(% NaCl equiv);烟灰色石英阶段见大量NaCl-H2O和CO2-NaCl-H2O型包裹体,均一温度(Th)为182~218℃,盐度(wt)为1.40~5.90(% NaCl equiv);硫化物阶段包裹体均一温度(Th)普遍小于183℃,盐度(wt)为0.90~5.30(% NaCl equiv)。激光拉曼光谱分析显示包裹体中含CO2、CH4、N2、SO2等气相组分,随着成矿流体均一温度、盐度和密度的不断下降,包裹体中气相组分种类也趋于简单。通过计算成矿流体的ρ、P、pH、Eh和fO2等物理化学参数,表明成矿环境具有中低温、低盐度、低密度、近中性、相对还原及低氧逸度的特征。流体包裹体组合变化表明成矿作用发生在流体CO2含量不断降低的过程,主成矿阶段流体混合和区域伸展构造引起流体沸腾作用强烈,大量金属成分(黄铁矿、自然金等)快速沉淀形成金矿体。   相似文献   

3.
黑龙江省三矿沟矽卡岩型铁铜矿床流体包裹体研究   总被引:11,自引:2,他引:9  
刘军  武广  钟伟  朱明田 《岩石学报》2009,25(10):2631-2641
对黑龙江省三矿沟矽卡岩型铁铜矿床内花岗闪长岩中石英斑晶、硫化物阶段及石英-碳酸盐阶段的石英、方解石中流体包裹体的岩相学、显微测温学和显微激光拉曼光谱分析等的研究结果表明,流体包裹体有富液相、富气相和含子矿物多相包裹体3种类型;花岗闪长岩石英斑晶中的含子矿物多相包裹体均一温度均值为4320C,盐度在30.92 wt%~63.91 wt%NaCl eqv.之间,平均为52.96 wt%NaCl eqv.,代表了高温、高盐度岩浆流体;硫化物阶段形成的黄铜矿磁铁矿矿石中流体温度主要介于323~424℃之间,盐度介于8.95 wt%~62.51 wt%NaCl eqv.之间;硫化物阶段形成的黄铜矿矿石中流体温度主要介于333~441℃之间,盐度介于8.28 wt%~65.32 wt%NaCl eqv.之间;石英-碳酸盐阶段流体温度主要介于124~140℃之间,盐度介于1.65 wt%~4.34 wt%NaCl eqv.之间.铁铜矿石均形成于高温、高盐度阶段,以岩浆热液为主,在成矿晚期,由于大气降水的混合,形成了少量低温、低盐度流体,成矿流体以富Na、K、Ca、Cl-和CO~2_3-的高盐度流体为特征,主体属于NaCl-H_2O-CO_2-H_2S-CH_4体系.成矿流体在300~400℃区间内发生了强烈的沸腾作用,导致大量金属硫化物和少量金属氧化物沉淀,沸腾作用对三矿沟铁铜矿床的形成起到至关重要的作用.  相似文献   

4.
黑龙江省老柞山金矿床位于兴蒙造山带东段佳木斯地块的中北部,是佳木斯金多金属成矿区的一座大型矿床,金主要赋存在NW向、NWW向的张性断裂及花岗岩和钙质大理岩、钙质片麻岩的接触构造带内,成矿与矽卡岩密切伴生。根据野外和室内研究,成矿阶段可划分为矽卡岩阶段、氧化物阶段、早期石英硫化物阶段、晚期石英硫化物阶段和石英-方解石阶段。为揭示流体演化过程,本文选择石榴子石、石英和方解石开展了流体包裹体研究。包裹体岩相学显示,流体包裹体类型有含子晶三相、气液两相(富液相、富气相)、纯液相和纯气相包裹体。测温结果表明:从早到晚均一温度依次为448~462、240~509、166~480、118~360和57~230℃;在矽卡岩阶段盐度(w(NaCl))为9.21%~10.37%,在氧化物阶段为1.73%~13.77%,中低盐度,在早期石英硫化物阶段为1.73%~23.71%和23.64%~39.66%,在晚期石英硫化物阶段为3.05%~6.44%,在石英-方解石阶段为1.73%~11.95%。高温中低盐度且富含CO2、H2O和少量CH4的初始成矿流体,在氧化物阶段流体"沸腾",CO2逃逸,生成磁铁矿;在早期石英硫化物阶段流体持续沸腾,pH值升高,由氧化转化为还原,卸载金和毒砂、黄铁矿等硫化物;在晚期石英硫化物阶段温度降低,卸载方铅矿、闪锌矿等低温矿物和金。因此,推测老柞山金矿床属于矽卡岩型金矿床。  相似文献   

5.
山西灵丘县刁泉银铜矿流体包裹体特征及成矿流体演化   总被引:3,自引:2,他引:1  
牛斯达  李胜荣  张聚全  王志华 《岩石学报》2014,30(11):3432-3442
刁泉银铜矿位于华北克拉通中北部,燕山造山带与太行山造山带的交切部位,为一矽卡岩型银铜矿,其成矿作用从早到晚划分为矽卡岩期、石英-硫化物期、碳酸盐期3个成矿期,并可进一步划分为5个成矿阶段.本文对石榴子石矽卡岩,含石英脉花岗岩、蚀变斑状花岗岩、黑云母石英二长岩等岩石以及矿石中的石榴子石、石英、方解石开展了详细的流体包裹体特征观察、测温及激光拉曼光谱研究.该矿床流体包裹体类型丰富,主要类型有富气相包裹体、富液相包裹体和含子晶包裹体.石榴子石和石英中的流体由高温高盐度流体和较低温中低盐度流体两种组分构成,方解石中主要为低温低盐度流体.石英流体气液两相包裹体均一温度峰值出现于200~220℃区间.石榴子石中不同类型包裹体有近似的均一温度(380~420℃),表明矽卡岩期流体的沸腾及其在矿液沉淀和矿质卸载上的重要性.该矿床流体包裹体的盐度(%NaCleqv)整体变化范围很大,介于0.2%~64.0%,从早期到晚期均一温度和盐度均呈下降趋势.石榴子石中流体包裹体密度分布于两个区间,而其在石英中的密度分布范围较广,在方解石中的密度分布则最为集中.估算矽卡岩期流体包裹体最低捕获压力为23~66MPa,按照静岩压力计算对应的流体深度为0.9~2.6km;石英-硫化物期5~46MPa,按照静水压力计算的流体深度为0.5~4.6km,Mo矿化主要发生在1~3km,而Cu-Ag矿化主要发生在0.5~1.5km.刁泉银铜矿为一与浅成低温热液有关的矽卡岩型矿床.  相似文献   

6.
新疆阿尔泰南缘乌吐布拉克铁矿成矿机制研究   总被引:4,自引:2,他引:2  
乌吐布拉克中型铁矿床赋存于上志留统-下泥盆统康布铁堡组变质火山-沉积岩系中,矿体呈似层状、透镜状,矿体及其周围发育大量矽卡岩矿物组合。早期矽卡岩阶段包裹体均一温度为256~534℃,盐度为11.90%~>73.96%NaCleqv,密度为0.56~0.96g/cm3,表明成矿流体为高-中温、高-中盐度、高-中密度的NaCl-H2O体系;退化蚀变阶段包裹体均一温度为188~313℃,盐度为12.30%~>39.76%NaCleqv,密度为0.83~1.05g/cm3,表明成矿流体为中温、中-低盐度、高-中密度的NaCl-H2O体系。石英-硫化物-碳酸盐阶段包裹体均一温度为162~320℃,盐度为2.90%~15.57%NaCleqv,密度为0.70~1.02g/cm3,成矿流体为NaCl-H2O-CO2±CH4或N2型流体。石榴子石氢氧同位素表明早期矽卡岩阶段成矿流体主要来源于岩浆水,石英及方解石的氢氧同位素暗示石英-硫化物-碳酸盐阶段存在低温、低盐度的大气降水的加入。方解石的碳、氧同位素表明流体中碳主要来自深部岩浆。硫化物硫同位素表明硫来源于岩浆硫。成矿机制可能为早三叠世岩浆热液交代上志留-下泥盆统康布铁堡组火山岩形成矽卡岩矿物,在矽卡岩退化蚀变过程中形成铁矿体。  相似文献   

7.
许强伟  王玭  钟军  王成明  郑义  方京 《地学前缘》2018,25(5):151-166
内蒙古克什克腾旗长岭子铅锌矿床是大兴安岭南段新发现的一个矿床,矿体赋存于下二叠统大石寨组海相火山岩建造中,矿体受夕卡岩控制。根据手标本中脉体穿插关系和岩石薄片中观察的矿物共生组合特征,文中将长岭子铅锌矿的成矿过程划分为4个阶段:干夕卡岩阶段、湿夕卡岩磁铁矿阶段、石英硫化物阶段和石英碳酸盐阶段,分别以石榴子石±透辉石±硅灰石、石英+绿帘石+电气石+磁铁矿、石英+黄铁矿±磁黄铁矿±黄铜矿±方铅矿±闪锌矿和石英±方解石的矿物组合为标志。长岭子矿床主要发育水溶液包裹体(W型)和含子矿物多相包裹体(S型),前者可进一步划分为富液相(WL型)和富气相(WV型)两个亚类。干夕卡岩阶段辉石中主要发育S型和WL型包裹体,湿夕卡岩磁铁矿阶段绿帘石和石英中主要发育WL型、WV型和S型包裹体,石英硫化物阶段石英中可见所有类型的包裹体,石英碳酸盐阶段的石英±方解石脉中仅见WL型包裹体。干夕卡岩阶段辉石中流体包裹体的均一温度和盐度分别为387~524 ℃和10.7%~52%(NaCleqv.);湿夕卡岩磁铁矿阶段包裹体均一温度为312~533 ℃,盐度为11.3%~60%(NaCleqv.);石英硫化物阶段包裹体均一温度介于182~329 ℃,盐度介于4.7%~38%(NaCleqv.);石英碳酸盐阶段包裹体均一温度为124~199 ℃,盐度介于3.1%~22.4%(NaCleqv.)。上述矿床地质和成矿流体特征表明长岭子铅锌矿为夕卡岩型矿床。成矿流体经历了自夕卡岩阶段高温、高盐度岩浆热液向石英碳酸盐阶段低温、低盐度大气降水热液的转变。石英硫化物阶段发育沸腾包裹体组合,表明成矿流体发生了沸腾作用,这可能是成矿物质沉淀的主要机制。  相似文献   

8.
滇东南南秧田矽卡岩型钨矿床成矿演化   总被引:3,自引:1,他引:2  
南秧田矽卡岩型白钨矿床是滇东南老君山钨锡多金属成矿区的重要组成部分之一。该矿床由多个白钨矿体组成,以层状、似层状矽卡岩型矿石为主,矽卡岩矿物组合以透辉石+钙铁辉石+钙铝榴石+角闪石+绿帘石为主。南秧田钨矿床的形成经历了矽卡岩阶段,石英-白钨矿阶段和方解石阶段,通过对不同阶段矿石矿物和脉石矿物的流体包裹体显微测温分析表明:矽卡岩中的流体包裹体的均一温度范围为221~423℃,石英-白钨矿的均一温度为177~260℃,晚期方解石脉的温度最低,为173~227℃。矽卡岩中的流体包裹体的盐度w(Na Cleq)为0.18%~16.34%,石英-白钨矿的盐度w(Na Cleq)为0.35%~7.17%,晚期方解石脉的盐度w(Na Cleq)为0.35%~2.24%。激光拉曼探针测试表明,3个阶段的流体包裹体组分主要为H2O,还有少量的N2,只有在石英-白钨矿阶段的流体包裹体组分除了H2O以外,还有少量的CH4。矿床从早期到晚期成矿阶段表现为一个降温的过程,说明钨成矿温度较宽泛。成矿期含矿矽卡岩的δ13CPDB值为-5.7‰~-6.9‰,δ18OSMOW值为5.8‰~9.1‰,表明成矿流体主要是岩浆水,其次为含有机质的碳酸盐岩地层和大气降水,反映出典型岩浆热液交代作用的特征。  相似文献   

9.
青海省铜峪沟铜矿床位于东昆仑东西向构造岩浆带与鄂拉山北西向构造岩浆带的复合部位。依据矿物共生组合、交代与穿插关系可将铜峪沟铜矿成矿过程分为3个阶段:矽卡岩阶段、石英—多金属硫化物阶段及石英—方解石阶段。对不同阶段包裹体进行了包裹体岩相学、显微测温学和包裹体成分分析。研究结果表明,流体包裹体主要为液相包裹体(L型)、气相包裹体(G型)及含子矿物包裹体(S型)。其中矽卡岩阶段以含子矿物包裹体(均一温度为322℃~600℃,盐度为32.92%~73.97%Na Cleqv)和液相包裹体(均一温度为231℃~600℃,盐度为10.74%~21.68%Na Cleqv)为主。石英—多金属硫化物阶段以液相包裹体(均一温度为176℃~381℃,盐度为2.74%~21.96%Na Cleqv)和气相包裹体(均一温度为127℃~419℃,盐度为4.49%~8.81%Na Cleqv)为主。石英—方解石阶段仅发育液相包裹体(均一温度为143℃~201℃,盐度为5.25%~9.21%Na Cleqv)。计算得到流体压力、密度变化范围分别为0.37~132.2 MPa、0.53~1.17 g/cm3。成矿流体具有从高温高盐度向低温低盐度的演化特征。矽卡岩阶段发生了流体的混合作用,石英—多金属硫化物阶段发生了流体的减压沸腾作用导致了大量金属硫化物沉淀,成矿晚阶段流体可能来源于大气降水。分析认为,铜峪沟铜矿为岩浆热液层矽卡岩矿床。  相似文献   

10.
浙江漓渚铁矿床系钦杭成矿带东段一典型矽卡岩型矿床,矿体呈透镜状、似层状、不规则状等,产于广山复式花岗岩体外接触带的南华系、震旦系、寒武系和奥陶系层间的矽卡岩中。矿区发育透辉石、石榴子石、铁浅闪石、金云母、绿泥石、榍石等矽卡岩矿物,金属矿物主要包括磁铁矿、黄铁矿、方铅矿、闪锌矿、辉钼矿等。作者利用电子探针技术对漓渚铁矿床中的矽卡岩矿物进行了系统分析,结果表明:漓渚铁矿床矽卡岩演化经历了矽卡岩期和热液蚀变期,其中,矽卡岩期包括辉石-石榴子石阶段、磁铁矿阶段和角闪石-金云母阶段;热液蚀变期包括石英-硫化物阶段和石英-碳酸盐阶段。辉石以透辉石为主,有向钙铁辉石演化的趋势,即Mg+2→Fe+2演化;石榴子石由钙铝榴石向钙铁榴石转变,显示Al+3→Fe+3演化,这些矿物学特征反映了矽卡岩早期的成矿流体中Fe逐渐增加,且氧逸度f(O2)逐渐升高。铁浅闪石具有富Na、K的特征,且铁浅闪石、金云母和榍石等富F以及矽卡岩萤石化现象,反映成矿流体呈碱性、具有富F的特征,有利于Fe的迁移、富集、成矿。漓渚铁矿床的形成与区内广山-柵溪岩体的岩浆活动有关,Fe可能来源于多期岩浆热液。  相似文献   

11.
孙康  曹毅  张伟  赵洋 《现代地质》2021,35(5):1371-1379
安徽青阳铜矿里钼多金属矿床是长江中下游成矿带内近年来新发现的一个夕卡岩型钼多金属矿床。对该矿床的地质特征和流体包裹体特征进行了详细研究,探讨了流体来源与演化过程。基于脉体穿插和矿物交代关系将铜矿里矿床的成矿过程划分为早期夕卡岩、晚期夕卡岩、石英辉钼矿、石英多金属硫化物和碳酸盐矿物5个阶段。显微观察表明铜矿里矿床的流体包裹体类型主要为富液相包裹体、富气相包裹体和含子晶三相包裹体。显微测温结果显示,早期成矿流体具有高温、中高盐度的特征,而晚期成矿流体具有低温、低盐度的特征。结合已有的氢、氧同位素数据,表明铜矿里矿床早期热液为岩浆热液,晚期有大气水加入。石英辉钼矿阶段石英中出现富液相、含子晶三相和富气相包裹体共存的现象,且这些包裹体均一温度相近,但均一方式截然不同,表明流体沸腾作用可能是导致铜矿里钼多金属矿床中钼元素沉淀的主要机制。  相似文献   

12.
The Makeng iron deposit is located in the Yong’an-Meizhou depression belt in Fujian Province, eastern China. Both skarn alteration and iron mineralization are mainly hosted within middle Carboniferous-lower Permian limestone. Five paragenetic stages of skarn formation and ore deposition have been recognized: Stage 1, early skarn (andradite–grossular assemblage); Stage 2, magnetite mineralization (diopside–magnetite assemblage); Stage 3, late skarn (amphibole–chlorite–epidote–johannsenite–hedenbergite–magnetite assemblage); Stage 4, sulfide mineralization (quartz–calcite–fluorite–chlorite–pyrite–galena–sphalerite assemblage); and Stage 5, carbonate (quartz–calcite assemblage). Fluid inclusion studies were carried out on inclusions in diopside from Stage 2 and in quartz, calcite, and fluorite from Stage 4.Halite-bearing (Type 1) and coexisting two-phase vapor-rich aqueous (Type 3) inclusions in the magnetite stage display homogenization temperatures of 448–564 °C and 501–594 °C, respectively. Salinities range from 26.5 to 48.4 and 2.4 to 6.9 wt% NaCl equivalent, respectively. Two-phase liquid-rich aqueous (Type 2b) inclusions in the sulfide stage yield homogenization temperatures and salinities of 182–343 °C and 1.9–20.1 wt% NaCl equivalent. These fluid inclusion data indicate that fluid boiling occurred during the magnetite stage and that fluid mixing took place during the sulfide stage. The former triggered the precipitation of magnetite, and the latter resulted in the deposition of Pb, Zn, and Fe sulfides. The fluids related to magnetite mineralization have δ18Ofluid-VSMOW of 6.7–9.6‰ and δD of −96 to −128‰, which are interpreted to indicate residual magmatic water from magma degassing. In contrast, the fluids related to the sulfide mineralization show δ18Ofluid-VSMOW of −0.85 to −1.04‰ and δD of −110 to −124‰, indicating that they were generated by the mixing of magmatic water with meteoric water. Magnetite grains from Stage 2 exhibit oscillatory zoning with compositional variations in major elements (e.g., SiO2, Al2O3, CaO, MgO, and MnO) from core to rim, which is interpreted as a self-organizing process rather than a dissolution-reprecipitation process. Magnetite from Stage 3 replaces or crosscuts early magnetite, suggesting that later hydrothermal fluid overprinted and caused dissolution and reprecipitation of Stage 2 magnetite. Trace element data (e.g., Ti, V, Ca, Al, and Mn) of magnetite from Stages 2 and 3 indicate a typical skarn origin.  相似文献   

13.
大张铁矿是鲁西地区近年来新发现的一个重要的矽卡岩型矿床.矿体主要赋存于石英二长闪长岩与奥陶系马家沟组灰岩接触带及其附近.根据脉体穿插关系和交代蚀变特征,将大张矽卡岩型铁矿床成矿过程划分为矽卡岩阶段、氧化物阶段、硫化物阶段和碳酸盐阶段.通过对透辉石、绿帘石、石英和方解石等透明矿物显微观察发现,大张铁矿中流体包裹体类型主要...  相似文献   

14.
Abstract: The Beni Bou Ifrour deposit of northeastern Morocco is a skarn type magnetite deposit. K-Ar age determination suggests that the mineralization occurred at 7.040.47 Ma. The spatial relationship between skarn and dikes of microgran-odiorite derived from the batholith of Wiksane Granodiorite, and the similarity of age (8.020.22 Ma), confirms that the Wiksane Granodiorite is the igneous rock most probably related to mineralization. The skarn is distributed asymmetrically in the limestone, and magnetite ore was developed just below the calc-silicate skarn as two parallel beds separated by 100 m of barren limestone and schist.
The mineralization can be divided into three stages. The early stage is characterized by the formation of calc-silicate minerals, mainly clinopyroxene (80–70 % diopside) and garnet (early almost pure andradite to the late 60 % andradite). The main stage is characterized by the formation of a large amount of magnetite. Epidote and quartz formed simultaneously with magnetite. Fluid temperatures exceeded 500 C during the early to main stages. Fluid with very high salinity (50–75 wt% NaCl equiv.) was responsible for the formation of the magnetite ore. The oxygen isotope composition, together with the fluid inclusion data, suggests that magmatic fluid was significant for the formation of calc-silicate skarn minerals and magnetite. Low temperature (-230C) and low salinity (-10 % NaCl equiv.) hydrothermal fluids dominated by meteoric water were responsible for the late stage quartz and calcite formation.  相似文献   

15.
西藏拉屋铜多金属矿床产于冈底斯构造岩浆成矿带的申扎—旁多铜-银-铅-锌-金成矿亚带内。分别对干矽卡岩阶段(Ⅰ)的石榴石、早期硫化物阶段(Ⅲ)的石英和晚期硫化物阶段(Ⅳ)的方解石中的流体包裹体进行岩相学观察和显微测温研究,研究表明成矿各阶段热液矿物中的流体包裹体主要为气液水两相包裹体,其次为纯液相水包裹体,偶见气液两相甲烷包裹体,石英中也有大量的含NaCl子矿物多相包裹体,其均一温度变化于95~476℃之间,盐度介于1.57%~37.33%,密度变化于0.68~1.23 g/cm3,总体属中-高温、中-高盐度、中等密度的体系;据此计算的成矿压力范围为24.63~133.61 MPa,成矿深度介于2.46~9.64 km,表明该矿床形成于中深成矿环境。不同成矿阶段流体包裹体研究数据表明,该矿床的成矿作用是一个温度、盐度和压力总体显著降低(减小)、密度略渐增大的过程。氢、氧同位素研究表明,成矿流体在主成矿阶段主要为初始混合岩浆水,随着成矿作用进行,大气降水大量加入,到晚期阶段成矿流体逐渐演化成大气降水。成矿流体在Ⅲ阶段(主成矿阶段)发生了沸腾作用,导致成矿元素沉淀形成矿体。因此认为沸腾作用可能是该矿床金属沉淀的主要机制。  相似文献   

16.
The Phu Lon skarn Cu–Au deposit is located in the northern Loei Fold Belt (LFB), Thailand. It is hosted by Devonian volcano-sedimentary sequences intercalated with limestone and marble units, intruded by diorite and quartz monzonite porphyries. Phu Lon is a calcic skarn with both endoskarn and exoskarn facies. In both skarn facies, andradite and diopside comprise the main prograde skarn minerals, whereas epidote, chlorite, tremolite, actinolite and calcite are the principal retrograde skarn minerals.Four types of fluid inclusions in garnet were distinguished: (1) liquid-rich inclusions; (2) daughter mineral-bearing inclusions; (3) salt-saturated inclusions; and (4) vapor-rich inclusions. Epidote contains only one type of fluid inclusion: liquid-rich inclusions. Fluid inclusions associated with garnet (prograde skarn stage) display high homogenization temperatures and moderate salinities (421.6–468.5 °C; 17.4–23.1 wt% NaCl equiv.). By contrast, fluid inclusions associated with epidote (retrograde skarn stage) record lower homogenization temperatures and salinities (350.9–399.8 °C; 0.5–8 wt% NaCl equiv.). These data suggest a possible mixing of saline magmatic fluids with external, dilute fluid sources (e.g., meteoric fluids), as the system cooled. Some fluid inclusions in garnet contain hematite daughters, suggesting an oxidizing magmatic environment. Sulfur isotope determinations on sulfide minerals from both the prograde and retrograde stages show a uniform and narrow range of δ34S values (?2.6 to ?1.1 δ34S), suggesting that the ore-forming fluid contained sulfur of orthomagmatic origin. Overall, the Phu Lon deposit is interpreted as an oxidized Cu–Au skarn based on the mineralogy and fluid inclusion characteristics.  相似文献   

17.
The Baizhangyan skarn‐porphyry type W–Mo deposit is located in a newly defined Mo–W–Pb–Zn metallogenic belt, which is in the south of Middle‐Lower Yangtze Valley Cu–Fe–Au polymetallic metallogenic belt in SE China. The W–Mo orebodies occur mainly within the contact zone between fine‐grained granite and Sinian limestone strata. There are two types of W–Mo mineralization: major skarn W–Mo mineralization and minor granite‐hosted disseminated Mo mineralization which was traced by drilling at depth. Eight molybdenite samples from Mo‐bearing ores yield Re–Os dates that overlap within analytical error, with a weighted average age of 134.1 ± 2.2 Ma. These dates are in close agreement with SIMS U–Pb concordant zircon age for fine‐grained granite at 133.3 ± 1.3 Ma, indicating that crystallization of the granite and hydrothermal molybdenite formation were coeval and likely cogenetic. The Baizhangyan W–Mo deposit formed in the Early Cretaceous extensional tectonic setting at the Middle‐Lower Yangtze Valley metallogenic belt and the Jaingnan Ancient Continent. Based on mineral compositions and crosscutting relationships of veinlets, hydrothermal alteration and mineralization, the ore mineral paragenesis of the Baizhangyan deposit is divided into four stages: skarn stage (I), oxide stage (II), sulfide stage (III), and carbonate stage (IV). Fluid inclusions in garnet, scheelite, quartz and calcite from W–Mo ores are mainly aqueous‐rich (L + V) type inclusions. Following garnet deposition at stage I, the high‐temperature fluids gave way to progressively cooler, more dilute fluids associated with tungsten–molybdenite–base metal sulfide deposition (stage II and stage III) (162–360°C, 2.7–13.2 wt % NaCl equivalent) and carbonate deposition (stage IV) (137–190°C, 0.9–5 wt % NaCl equiv.). Hydrogen‐oxygen isotope data from minerals of different stages suggest that the ore‐forming fluids consisted of magmatic water, mixed in various proportions with meteoric water. From stage I to stage IV, there is a systematic decrease in the homogenization temperature of the fluid‐inclusion fluids and calculated δ18O values of the fluids. These suggest that increasing involvement of formation water or meteoric water during the fluid ascent resulted in successive deposition of scheelite and molybdenite at Baizhangyan.  相似文献   

18.
The Nuri Cu‐W‐Mo deposit is located in the southern subzone of the Cenozoic Gangdese Cu‐Mo metallogenic belt. The intrusive rocks exposed in the Nuri ore district consist of quartz diorite, granodiorite, monzogranite, granite porphyry, quartz diorite porphyrite and granodiorite porphyry, all of which intrude in the Cretaceous strata of the Bima Group. Owing to the intense metasomatism and hydrothermal alteration, carbonate rocks of the Bima Group form stratiform skarn and hornfels. The mineralization at the Nuri deposit is dominated by skarn, quartz vein and porphyry type. Ore minerals are chalcopyrite, pyrite, molybdenite, scheelite, bornite and tetrahedrite, etc. The oxidized orebodies contain malachite and covellite on the surface. The mineralization of the Nuri deposit is divided into skarn stage, retrograde stage, oxide stage, quartz‐polymetallic sulfide stage and quartz‐carbonate stage. Detailed petrographic observation on the fluid inclusions in garnet, scheelite and quartz from the different stages shows that there are four types of primary fluid inclusions: two‐phase aqueous inclusions, daughter mineral‐bearing multiphase inclusions, CO2‐rich inclusions and single‐phase inclusions. The homogenization temperature of the fluid inclusions are 280°C–386°C (skarn stage), 200°C–340°C (oxide stage), 140°C–375°C (quartz‐polymetallic sulfide stage) and 160°C–280°C (quartz‐carbonate stage), showing a temperature decreasing trend from the skarn stage to the quartz‐carbonate stage. The salinity of the corresponding stages are 2.9%–49.7 wt% (NaCl) equiv., 2.1%–7.2 wt% (NaCl) equiv., 2.6%–55.8 wt% (NaCl) equiv. and 1.2%–15.3 wt% (NaCl) equiv., respectively. The analyses of CO2‐rich inclusions suggest that the ore‐forming pressures are 22.1 M Pa–50.4 M Pa, corresponding to the depth of 0.9 km–2.2 km. The Laser Raman spectrum of the inclusions shows the fluid compositions are dominated in H2O, with some CO2 and very little CH4, N2, etc. δD values of garnet are between ?114.4‰ and ?108.7‰ and δ18OH2O between 5.9‰ and 6.7‰; δD of scheelite range from ?103.2‰ to ?101.29‰ and δ18OH2O values between 2.17‰ and 4.09‰; δD of quartz between ?110.2‰ and ?92.5‰ and δ18OH2O between ?3.5‰ and 4.3‰. The results indicate that the fluid came from a deep magmatic hydrothermal system, and the proportion of meteoric water increased during the migration of original fluid. The δ34S values of sulfides, concentrated in a rage between ?0.32‰ to 2.5‰, show that the sulfur has a homogeneous source with characteristics of magmatic sulfur. The characters of fluid inclusions, combined with hydrogen‐oxygen and sulfur isotopes data, show that the ore‐forming fluids of the Nuri deposit formed by a relatively high temperature, high salinity fluid originated from magma, which mixed with low temperature, low salinity meteoric water during the evolution. The fluid flow through wall carbonate rocks resulted in the formation of layered skarn and generated CO2 or other gases. During the reaction, the ore‐forming fluid boiled and produced fractures when the pressure exceeded the overburden pressure. Themeteoric water mixed with the ore‐forming fluid along the fractures. The boiling changed the pressure and temperature, oxygen fugacity, physical and chemical conditions of the whole mineralization system. The escape of CO2 from the fluid by boiling resulted in scheelite precipitation. The fluid mixing and boiling reduced the solubility of metal sulfides and led the precipitation of chalcopyrite, molybdenite, pyrite and other sulfide.  相似文献   

19.
The Fuxing porphyry Cu deposit is a recently discovered deposit in Eastern Tianshan, Xinjiang, northwestern China. The Cu mineralization is associated with the Fuxing plagiogranite porphyry and monzogranite, mainly presenting as various types of hydrothermal veins or veinlets in alerted wall rocks, with potassic, chlorite, phyllic, and propylitic alteration developed. The ore-forming process can be divided into four stages: stage I barren quartz veins, stage II quartz–chalcopyrite–pyrite veins, stage III quartz–polymetallic sulfide veins and stage IV quartz–calcite veins. Four types of fluid inclusions (FIs) can be distinguished in the Fuxing deposit, including hypersline (H-type), vapor-rich two-phase (V-type), liquid-rich two-phase (L-type), and trace amounts of pure vapor inclusions (P-type), but only the stage I quartz contains all types of FIs. The stages II and III quartz have two types of FIs, with exception of H- and P-types. In stage IV quartz minerals, only the L-type inclusions can be observed. The FIs in quartz of stages I, II, III and IV are mainly homogenized at temperatures of 357–518 °C, 255–393 °C, 234–322 °C and 145–240 °C, with salinities of 1.9–11.6 wt.% NaCl equiv., 1.6–9.6 wt.% NaCl equiv., 1.4–7.7 wt.% NaCl equiv. and 0.9–3.7 wt.% NaCl equiv., respectively. The ore-forming fluids of the Fuxing deposit are characterized by high temperature, moderate salinity and relatively oxidized condition. Carbon, hydrogen and oxygen isotopic compositions of quartz indicate that the ore-forming fluids were gradually evolved from magmatic to meteoric in origin. Sulfur and lead isotopes suggest that the ore-forming materials were derived from a deep-seated magma source. The Cu mineralization in the Fuxing deposit occurred at a depth of ~ 1 km, and the changes of oxygen fugacity, decompression boiling, and local mixing with meteoric water were most likely critical for the formation of the Fuxing Cu deposit.  相似文献   

20.
The Datuanshan deposit is one of the largest and most representative stratabound copper deposits in the Tongling area,the largest ore district in the Middle-Lower Yangtze River metallogenic belt.The location of the orebodies is controlled by the interlayer-slipping faults between the Triassic and Permian strata,and all the orebodies are distributed in stratiform shape around the Mesozoic quartz monzodiorite dikes.Based on field evidence and petrographic observations,four mineralization stages in the Datuanshan deposit have been identified:the skarn,early quartz-sulfide,late quartzsulfide and carbonate stages.Chalcopytite is the main copper mineral and mainly formed at the late quartz-sulfide stage.Fluid inclusions at different stages were studied for petrography,microthermometry,laser Raman spectrometry and stable isotopes.Four types of fluid inclusions,including three-phase fluid inclusions(type 1),liquid-rich fluid inclusions(type 2),vapour-rich fluid inclusions(type 3) and pure vapour fluid inclusions(type 4),were observed.The minerals from the skarn,early and late quartz-sulfide stages contain all fluid inclusion types,but only type 2 fluid inclusions were observed at the carbonate stage.Petrographic observations suggest that most of the inclusions studied in this paper are likely primary.The coexistence of different types of fluid inclusions with contrasting homogenization characteristics(to the liquid and vapour phase,respectively) and similar homogenization temperatures(the modes are 440-480℃,380-400℃ and 280-320℃ for the skarn,early and late quartz-sulfide stages,respectively) in the first three stages,strongly suggests that three episodes of fluid boiling occurred during these stages,which is supported by the hydrogen isotope data.Laser Raman spectra identified CH_4 at the skarn and early quartz-sulfide stages.Combined with other geological features,the early ore-forming fluids were inferred to be under a relatively reduced environment.The CO_2 component has been identified at the late quartz-sulfide and carbonate stages,indicating that the late ore-forming fluids were under a relatively oxidized environment,probably as a result of inflow of and mixing with meteoric water.In addition,microthermometric results of fluid inclusions and H-O isotope data mdicate that the ore forming fluids were dominated by magmatic water in the early stages(skarn and early quartz-sulfide stages) and mixed with meteoric water in the late stages(late quartz-sulfide and carbonate stages).The evidence listed above suggests that the chalcopyrite deposition in the Datuanshan deposit probably resulted from the combination of multiepisode fluid boiling and mixing of magmatic and meteoric water.  相似文献   

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