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1.
洒西白钨矿床是老君山矿集区内重要的钨矿床之一,由石英脉型钨矿体和层状、似层状矿体构成。在详细的岩相学观察基础上,对矿区内两种类型矿体白钨矿中的流体包裹体进行了显微测温和拉曼探针分析。研究表明,与石英脉型矿体成矿相关的流体为中-高温、中-低盐度的NaCl-H_2O-CH_4±N_2体系,与层状、似层状矿体成矿相关的流体为中-高温、低盐度的NaCl-H_2O-CH_4-N_2体系,笔者认为,不同盐度端元的等温混合作用是石英脉型矿体形成的主要机制,而层状、似层状矿体中金属元素的沉淀则主要由流体体系的冷却作用所致,两者流体性质基本相同,可能为同源流体。  相似文献   

2.
王蝶  卢焕章  毕献武 《地学前缘》2011,18(5):121-131
文中对比了与S型花岗岩有关的石英脉型钨矿和与I型(及少数A型)花岗岩类有关的斑岩型铜矿床的成矿流体特征。它们的共同点在于成矿流体都由岩浆流体演化而来,在后期逐渐有大气降水的加入。差异性在于:(1)石英脉型钨矿成矿流体主要属于中—中高温、中—中低盐度的NaCl-H2O±CO2体系,而斑岩型铜矿属于中高-高温、高盐度的Na...  相似文献   

3.
赣南木梓园钨矿流体包裹体特征及其地质意义   总被引:5,自引:1,他引:4       下载免费PDF全文
木梓园钨矿床是赣南地区一中型石英脉型钨矿床,是利用地表云母线、石英线等矿化标志带寻找隐伏石英脉型矿床的典范。本文对木梓园矿床含黑钨矿石英脉石英中流体包裹体开展了岩相学和显微测温研究,并运用显微激光拉曼光谱测试技术对单个流体包裹体成分进行测试。结果表明,石英中流体包裹体至少记录了两期流体活动。这两类流体分属中-高温、中低盐度、中低密度的NaCl-H2O流体体系和中-低温、中低盐度、中等密度的NaCl-H2O流体体系。在木梓园钨矿床成矿流体的演化过程中,高温阶段发生了小规模的沸腾作用,并由此导致成矿流体中部分金属络合物分解进而沉淀成矿;低温阶段则主要经历了自然冷却过程,流体中矿质的沉淀则主要由温度的降低引起。  相似文献   

4.
鹿鸣钼矿床是小兴安岭—张广才岭成矿带上典型的特大型斑岩型钼矿床,矿体主要产于早中生代早期中细粒似斑状二长花岗岩内,矿化类型以细脉浸染状矿化为主。根据矿物共生组合及脉体穿插关系将鹿鸣钼矿床划分为4个成矿阶段:黄铁矿-石英阶段(Ⅰ),石英-辉钼矿阶段(Ⅱ),绿泥石-辉钼矿-石英阶段(Ⅲ),石英-碳酸盐阶段(Ⅳ)。成矿流体包裹体有3类:A型气液两相包裹体(L+V),B型含子晶三相包裹体(L+V+S),C型气相包裹体(V)。不同阶段流体包裹体的成分、均一温度、盐度等特征显示成矿流体由早阶段的高温、高盐度的H_2O-CO_2-NaCl体系逐渐演变为晚阶段的低温、低盐度的H_2O-NaCl体系。氢氧同位素特征显示成矿早阶段以岩浆水为主,随成矿演化有不同程度大气水的加入。根据矿床产出特征、矿物共生组合和流体包裹体特征,认为流体的沸腾作用和CO2等气相组分大量逸失是成矿流体形成矿床的主要因素。  相似文献   

5.
赣南漂塘钨矿锡石及共生石英中流体包裹体研究   总被引:13,自引:0,他引:13       下载免费PDF全文
漂塘钨矿床是赣南地区一大型石英脉型钨多金属矿床,钨锡共生是该矿床的重要特征.在详细的岩相学观察基础上,采用“流体包裹体组合”(FIA)的研究方法,对该矿床锡矿化显著的(绿柱石)、锡石、黑钨矿-石英脉阶段石英脉中锡石及与其共生的石英中流体包裹体进行了显微测温和拉曼探针的分析.结果表明,锡石与共生石英形成的物理化学条件并不一致,两类矿物中流体包裹体揭示的流体演化过程也明显不同.锡石中原生的流体包裹体反映了锡石形成时真实的温压条件,与锡矿化相关的流体为高温、中-低盐度的NaCl-H2O流体体系.研究认为,锡石中流体可能主要来自于岩浆的结晶分异,流体体系的冷却是锡在流体中沉淀的主要机制.  相似文献   

6.
鲁麟  梁婷  任文琴  赵正  刘善宝  陈郑辉 《矿床地质》2018,37(6):1260-1280
赣南地区淘锡坑钨矿床是典型的大型石英脉型钨锡多金属矿床。矿体赋存于震旦系浅变质砂(板)岩,并延伸至深部花岗岩内,按空间产出位置分为内带矿体和外带矿体,包括宝山、西山、烂埂子、枫岭坑4大脉组,矿体产出各不相同,矿物组合也具有明显分带特征。在详细的岩相学研究基础上,文章选择淘锡坑主成矿期石英为研究对象,并与共生黑钨矿作对比,从空间角度开展不同脉组、不同矿体或中段的流体包裹体的对比研究。根据流体包裹体岩相学,石英包裹体类型有H_2O-NaCl型包裹体(Ⅰ型)、H_2O-NaCl-CO_2型包裹体(Ⅱ型)和纯CO_2体系裹体(Ⅲ型)及少量含石盐子晶的多相包裹体,并同时捕获贫CO_2的盐水溶液包裹体和纯CO-2气相包裹体。包裹体显微测温结果显示:内、外带石英脉气液两相的包裹体均具有较宽温度和盐度范围,外带均一温度和盐度w(NaCl_(eq))分别集中于200~220℃、1%~6%,内带均一温度和盐度w(NaCleq)分别集中于100~220℃、3%~7%,流体为中-低盐度、富含CO_2的H_2O-CO_2-NaCl体系,不同脉组不同矿脉之间对比结果均显示出多期成矿的特征。在矿脉形成过程中,流体的成分和温度在内外接触带有明显变化,表明岩体与围岩接触界面是造成淘锡坑矿床内带矿体和外带矿体的成矿条件改变的转折位置,成矿流体在此附近发生CO_2逸失引起相分离的不混溶作用是成矿的主要因素。  相似文献   

7.
车户沟钼-铜矿床是华北克拉通北缘西拉沐伦钼矿带上典型的斑岩型Mo-Cu矿床,位于华北克拉通北缘断裂南侧。矿床赋存于成矿母岩花岗斑岩及其围岩中,矿化类型以细脉浸染状矿化为主,还存在隐爆角砾岩型矿化和石英脉型矿化。根据脉体类型和矿物组合将车户沟钼-铜矿床划分为四个成矿阶段,分别为(1)辉钼矿-黄铁矿-石英阶段、(2)黄铜矿+黄铁矿±辉钼矿+石英阶段、(3)黄铁矿+石英阶段、(4)石英+碳酸盐±萤石阶段。成矿流体寄主矿物石英中发育Ⅰ型含CO2三相包裹体(LCO2+VCO2+LH2O)、Ⅱ型含子晶三相(V-L+S)包裹体、Ⅲ型富气相(V-L)包裹体、Ⅳ型富液相(L-V)包裹体、Ⅴ型纯气相(V)包裹体和Ⅵ型纯液相(L)六种类型。流体包裹体类型从早到晚具有规律性演化特征,表现为阶段(1)、(2)以发育Ⅰ型含CO2三相包裹体(LCO2+VCO2+LH2O)和Ⅱ型含子晶三相(V-L+S)包裹体为特征,成矿晚期阶段(3)、(4)以发育Ⅲ型富气相(V-L)包裹体、Ⅳ型富液相(L-V)水溶液包裹体为特征。从早阶段到晚阶段成矿流体温度及盐度具有规律性演化特征。均一温度峰值分别为270~400℃、230~370℃、160~290℃、120~230℃,成矿温度逐渐降低;流体盐度,阶段(1)流体盐度分两组:3.39%~14.25%NaCleqv和31.01%~66.75%NaCleqv、阶段(2)流体盐度分两组:1.23%~12.85%NaCleqv和31.14%~64.33%NaCleqv、阶段(3)、(4)盐度分别介于1.05%~21.47%NaCleqv和2.07%~10.73%NaCleqv,盐度逐渐降低。激光拉曼显微探针(LRM)及群体包裹体成分分析结果表明,流体体系成分以H2O、CO2、Cl-、SO42-、Na+为主,贫F-、Ca2+、Mg2+为特征,特征离子比值暗示流体来源于岩浆流体。包裹体岩相学及包裹体测温表明,流体由早期的高温、高盐度、含二氧化碳NaCl-H2O-CO2体系岩浆流体在主成矿阶段(1)、(2)发生流体包裹体的沸腾作用和相分离,伴随流体沸腾、CO2逸失、温度降低等过程导致大量金属硫化物沉淀。成矿晚期阶段(3)、(4),成矿体系趋于开放,流体存在大气降水混入演化为晚期中-低温、中-低盐度贫CO2的NaCl-H2O流体体系。成矿作用机制上沸腾作用是导致主成矿期辉钼矿、黄铜矿沉淀成矿的重要机制。成矿作用晚期阶段(3)、(4)流体混合作用成为成矿作用的主导机制。  相似文献   

8.
云南省文山县官房钨矿床矿床地质和流体包裹体研究   总被引:1,自引:1,他引:0  
云南省文山县官房钨矿床是华南西部右江成矿带新近发现的大型钨矿床之一,产于滇东南褶皱带文山-富宁褶皱束薄竹山穹窿南翼。该矿床的形成与薄竹山S类花岗岩有关,形成于燕山期陆内碰撞体制。矿体产于燕山期花岗岩与寒武系碎屑岩-碳酸盐建造的外接触带,矿石构造主要是浸染状和网脉状。围岩蚀变类型复杂、蚀变分带明显,自花岗岩体向外依次为金云母-绿帘石化带→透辉石-透闪石化带→镁橄榄石化带。成矿过程包括矽卡岩阶段(早阶段)、石英-硫化物阶段(中阶段)和石英-碳酸盐(晚阶段)阶段。早阶段矽卡岩矿物(透辉石、石榴石)中发育含CH4的水溶液包裹体和含子矿物包裹体,中阶段石英中发育含CO2、CH4、N2的水溶液包裹体和含子矿物包裹体,晚阶段石英中发育含CO2的水溶液包裹体。各阶段矿物中不发育含石盐子晶包裹体。早阶段流体包裹体均一温度集中于379~550℃,盐度为3.17%~9.86%NaCleqv;中阶段包裹体均一温度集中于250~370℃,盐度为8.95%~10.61%NaCleqv;晚阶段流体包裹体均一温度为115~221℃,盐度为1.74%~5.71%NaCleqv。估算的早、中阶段流体捕获压力分别为45~90MPa和10~30MPa,推测最大成矿深度为3km。上述流体包裹体研究表明成矿流体由早阶段高温、低NaCl的H2O-CH4-NaCl岩浆热液,演化为中阶段中温、低NaCl的H2O-CH4-CO2-NaCl热液体系,最终转化为晚阶段低温、含CO2的大气降水。  相似文献   

9.
岔路口超大型斑岩钼矿床位于大兴安岭北部,是目前中国东北地区最大的钼矿床,矿体赋存于中酸性杂岩体及侏罗系火山-沉积岩内,其中花岗斑岩、石英斑岩、细粒花岗岩与钼矿化关系密切.流体包裹体研究表明,岔路口矿床主要发育富液两相包裹体、富气两相包裹体和含子矿物多相包裹体.花岗斑岩石英斑晶中流体包裹体的形成温度集中在230 ~ 440℃和470~510℃两个温度区间,盐度分别介于0.7% ~ 53.7% NaCl eqv和6.2%~61.3% NaCl eqv两个区间;成矿早阶段钾长石-石英-磁铁矿脉中流体包裹体的形成温度集中在320~440℃、盐度介于4.2% ~ 52.3%NaCl eqv;成矿中阶段石英-辉钼矿脉和角砾岩中流体包裹体的形成温度集中在260~410℃、盐度介于0.4%~52.3% NaCleqv;成矿晚阶段石英-萤石-方铅矿-闪锌矿脉中流体包裹体的形成温度集中在170~320℃、盐度介于0.5% ~ 11.1% NaCleqv.成矿流体具高温、高盐度及高氧逸度的特征,总体上属于富F的H2O-NaCl±CO2体系.成矿流体的δ 18Ow值为-4.5‰~3.2‰,δDw值为-138‰~-122‰,表明成矿流体为岩浆水与雨水的混合流体.金属硫化物的δ34S值介于-1.9‰~+3.6‰,均值为+1.6‰,表明成矿物质主要来自深源岩浆.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   

10.
延边杨金沟大型白钨矿矿床流体包裹体特征及成因探讨   总被引:3,自引:1,他引:2  
延边杨金沟大型白钨矿矿床的成矿过程可划分为黄铁矿-毒砂阶段、石英-粗粒白钨矿阶段、石英-多金属硫化物-细粒白钨矿阶段以及碳酸盐阶段,其中,石英-粗粒白钨矿阶段为主成矿阶段.与粗粒白钨矿共生的石英中主要发育4种类型流体包裹体.Ⅰ型包裹体的气相组分主要由CO2、CH4和N2组成,均一温度为278.5~336.4℃,盐度(w(NaCl))为3.53%~7.72%;Ⅱ型气液两相包裹体均一温度为144.7~345.9℃,多数为190~220℃,w(NaCl)为3.05%~9.34%;Ⅲ型CO2包裹体中的气相组分均为CO2,液相中尚含少量CH4等组分;Ⅳ型含CO2三相包裹体由液态CO2、气态CO2、盐水溶液三相组成,CO2相占10%~15%,完全均一化温度为301.6~305.1℃.综合地质条件及矿床特征、包裹体显微测温和成分分析结果认为:杨金沟石英脉型白钨矿矿床的成矿流体为中高温、低盐度的NaCl-H2O-CO2(-N2)体系,初始流体主要来自酸性岩浆热液,并有地层组分的加入.成矿过程中流体发生过不混溶,并对钨的富集起到了重要作用.  相似文献   

11.
雪鸡坪铜矿床产于印支晚期石英二长闪长玢岩-石英闪长玢岩-石英二长斑岩复式侵入体内,为一斑岩型铜矿床。矿床形成经历了多阶段热液成矿作用,主要有微细脉浸染状黄铁矿±黄铜矿-石英、细脉状辉钼矿±黄铁矿±黄铜矿-石英及微细脉状贫硫化物-石英-方解石等。流体包裹体岩相学、显微测温、激光拉曼及碳、氢、氧同位素综合研究表明,微细脉浸染状黄铁矿±黄铜矿-石英阶段石英中主要发育含Na Cl子矿物三相及气液两相包裹体,与含矿的石英二长斑岩石英中发育的流体包裹体特征相似,表明成矿流体主要为中高温、高盐度Na Cl-H2O体系热液,可能主要来源于印支期石英二长斑岩侵入体;辉钼矿±黄铁矿±黄铜矿-石英中主要发育含CO2三相及气液两相包裹体,成矿流体为中温、低盐度Na Cl-CO2-H2O体系热液,与前者来源明显不同;贫硫化物-石英-方解石石英中主要发育气液两相包裹体,成矿流体为中低温、低盐度Na Cl-H2O体系热液,推测其可能较多来自于大气降水。因此,雪鸡坪铜矿床为不同来源、不同地球化学性质热液叠加成矿作用的结果。  相似文献   

12.
桐木山云英岩型锡矿床是湘东锡田锡多金属矿田中一个典型矿床,在详尽的野外考察、矿石结构观察以及流体包裹体岩相学研究的基础上,采用流体包裹体组合的研究方法,利用冷热台、激光拉曼等测试手段,对矿床中锡石中流体包裹体进行直接测定,同时开展与锡石共生的石英及切割矿体的后期石英脉石英中流体包裹体对比研究。结果显示,锡石中流体包裹体的组分、均一温度、盐度与共生的石英存在明显差异,表明锡石与石英形成的P-T-X条件不同。切割矿体的石英脉为成岩成矿后流体作用的产物。与锡石形成相关的流体为中高温、中低盐度的Na Cl-H_2O流体体系,与石英形成相关的流体为复杂的含碳流体。流体体系的冷却作用及流体与围岩的反应可能是导致锡石沉淀的主要因素,与石英形成相关的流体在演化过程中则经历了明显的流体不混溶作用。  相似文献   

13.
The Sin Quyen-Lung Po district is an important Cu metallogenic province in Vietnam, but there are few temporal and genetic constraints on deposits from this belt. Suoi Thau is one of the representative Cu deposits associated with granitic intrusion. The deposit consists of ore bodies in altered granite or along the contact zone between granite and Proterozoic meta-sedimentary rocks. The Cu-bearing intrusion is sub-alkaline I-type granite. It has a zircon U-Pb age of ~776 Ma, and has subduction-related geochemical signatures. Geochemical analysis reveals that the intrusion may be formed by melting of mafic lower crust in a subduction regime. Three stages of alteration and mineralization are identified in the Suoi Thau deposit, i.e., potassic alteration; silicification and Cu mineralization; and phyllic alteration. Two-phase aqueous fluid inclusions in quartz from silicification stage show wide ranges of homogenization temperatures(140–383℃) and salinities(4.18wt%–19.13wt%). The high temperature and high salinity natures of some inclusions are consistent with a magmatic derivation of the fluids, which is also supported by the H-O-S isotopes. Fluids in quartz have δD values of –41.9‰ to –68.8‰. The fluids in isotopic equilibrium with quartz have δ~(18)O values ranging from 7.9‰ to 9.2‰. These values are just plotted in the compositional field of magmatichydrothermal fluids in the δD_(water) versus δ~(18)O_(water) diagram. Sulfide minerals have relatively uniform δ~(34)S values from 1.84‰ to 3.57‰, which is supportive of a magmatic derivation of sulfur. The fluid inclusions with relatively low temperatures and salinities most probably represent variably cooled magmatic-hydrothermal fluids. The magmatic derivation of fluids and the close spatial relationship between Cu ore bodies and intrusion suggest that the Cu mineralization most likely had a genetic association with granite. The Suoi Thau deposit, together with other deposits in the region, may define a Neoproterozoic subduction-related ore-forming belt.  相似文献   

14.
The Haobugao deposit, located in the southern segment of the Great Xing'an Range, is a famous skarn‐related Pb‐Zn‐(Cu)‐(Fe) deposit in northern China. The results of our fluid inclusion research indicate that garnets of the early stage (I skarn stage) contain three types of fluid inclusions (consistent with the Mesozoic granites): vapor‐rich inclusions (type LV, with VH2O/(VH2O + LH2O) < 50 vol %, and the majority are 5–25 vol %), liquid‐rich two‐phase aqueous inclusions (type VL, with VH2O/(VH2O + LH2O) > 50 vol %, the majority are 60–80 vol %), and halite‐bearing multiphase inclusions (type SL). These different types of fluid inclusions are totally homogenized at similar temperatures (around 320–420°C), indicating that the ore‐forming fluids of the early mineralization stage may belong to a boiling fluid system. The hydrothermal fluids of the middle mineralization stage (II, magnetite‐quartz) are characterized by liquid‐rich two‐phase aqueous inclusions (type VL, homogenization temperatures of 309–439°C and salinities of 9.5–14.9 wt % NaCl eqv.) that coexist with vapor‐rich inclusions (type LV, homogenization temperatures of 284–365°C and salinities of 5.2–10.4 wt % NaCl eqv.). Minerals of the late mineralization stage (III sulfide‐quartz stage and IV sulfide‐calcite stage) only contain liquid‐rich aqueous inclusions (type VL). These inclusions are totally homogenized at temperatures of 145–240°C, and the calculated salinities range from 2.0 to 12.6 wt % NaCl eqv. Therefore, the ore‐forming fluids of the late stage are NaCl‐H2O‐type hydrothermal solutions of low to medium temperature and low salinity. The δD values and calculated δ18OSMOW values of ore‐forming fluids of the deposit are in the range of ?4.8 to 2.65‰ and ?127.3‰ to ?144.1‰, respectively, indicating that ore‐forming fluids of the Haobugao deposit originated from the mixing of magmatic fluid and meteoric water. The S‐Pb isotopic compositions of sulfides indicate that the ore‐forming materials are mainly derived from underlying magma. Zircon grains from the mineralization‐related granite in the mining area yield a weighted 206Pb/238U mean age of 144.8 ±0.8 Ma, which is consistent with a molybdenite Re‐Os model age (140.3 ±3.4 Ma). Therefore, the Haobugao deposit formed in the Early Cretaceous, and it is the product of a magmatic hydrothermal system.  相似文献   

15.
The Xiaojiashan tungsten deposit is located about 200 km northwest of Hami City, the Eastern Tianshan orogenic belt, Xinjiang, northwestern China, and is a quartz vein‐type tungsten deposit. Combined fluid inclusion microthermometry, host rock geochemistry, and H–O isotopic compositions are used to constrain the ore genesis and tectonic setting of the Xiaojiashan tungsten deposit. The orebodies occur in granite intrusions adjacent to the metamorphic crystal tuff, which consists of the second lithological section of the first Sub‐Formation of the Dananhu Formation (D2d 12). Biotite granite is the most widely distributed intrusive bodies in the Xiaojiashan tungsten deposit. Altered diorite and metamorphic crystal tuff are the main surrounding rocks. The granite belongs to peraluminous A‐type granite with high potassic calc‐alkaline series, and all rocks show light Rare Earth Element (REE)‐enriched patterns. The trace element characters suggest that crystallization differentiation might even occur in the diagenetic process. The granite belongs to postcollisional extension granite, and the rocks formed in an extensional tectonic environment, which might result from magma activity in such an extensional tectonic environment. Tungsten‐bearing quartz veins are divided into gray quartz vein and white quartz veins. Based on petrography observation, fluid inclusions in both kinds of vein quartz are mainly aqueous inclusions. Microthermometry shows that gray quartz veins have 143–354°C of Th, and white quartz veins have 154–312°C of Th. The laser‐Raman test shows that CO2 is found in fluid inclusions of the tungsten‐bearing quartz veins. Quadrupole mass spectrometry reveals that fluid inclusions contain major vapor‐phase contents of CO2, H2O. Meanwhile, fluid inclusions contain major liquid‐phase contents of Cl?, Na+. It can be speculated that the ore‐forming fluid of the Xiaojiashan tungsten deposit is characterized by an H2O–CO2, low salinity, and H2O–CO2–NaCl system. The range of hydrogen and oxygen isotope compositions indicated that the ore‐forming fluids of the tungsten deposit were mainly magmatic water. The ore‐forming age of the Xiaojiashan deposit should to be ~227 Ma. During the ore‐forming process, the magmatic water had separated from magmatic intrusions, and the ore‐bearing complex was taken to a portion where tungsten‐bearing ores could be mineralized. The magmatic fluid was mixed by meteoric water in the late stage.  相似文献   

16.
A granite‐related scheelite deposit has been recently discovered in the Wuyi metallogenic belt of southeast China. The veinlet–disseminated scheelite occurs mainly in the inner and outer contact zones of the porphyritic biotite granite, spatially associated with potassic feldspathization and silicification. Re–Os dating of molybdenite intergrowths with scheelite yield a well‐constrained isochron age of 170.4 ± 1.2 Ma, coeval with the LA–MC–ICP–MS concordant zircon age of porphyritic biotite granite (167.6 ± 2.2 Ma), indicating that the Lunwei W deposit was formed in the Middle Jurassic (~170 Ma). We identify three stages of ore formation (from early to late): (I) the quartz–K‐feldspar–scheelite stage; (II) the quartz–polymetallic sulfide stage; and (III) the quartz–carbonate stage. Based on petrographic observations and microthermometric criteria, the fluid inclusions in the scheelite and quartz are determined to be mainly aqueous two‐phase (liquid‐rich and gas‐rich) fluid inclusions, with minor gas‐pure and CO2‐bearing fluid inclusions. Ore‐forming fluids in the Lunwei W deposit show a successive decrease in temperature and salinity from Stage I to Stage III. The homogenization temperature decreases from an average of 299 °C in Stage I, through 251 °C in Stage II, to 212 °C in Stage III, with a corresponding change in salinity from an average of 5.8 wt.%, through 5.2 wt.%, to 3.4 wt.%. The ore‐forming fluids have intermediate to low temperatures and low salinities, belonging to the H2O–NaCl ± CO2 system. The δ18OH2O values vary from 1.8‰ to 3.3‰, and the δDV‐SMOW values vary from –66‰ to –76‰, suggesting that the ore‐forming fluid was primarily of magmatic water mixed with various amounts of meteoric water. Sulfur isotope compositions of sulfides (δ34S ranging from –1.1‰ to +2.4‰) and Re contents in molybdenite (1.45–19.25 µg/g, mean of 8.97 µg/g) indicate that the ore‐forming materials originated mainly in the crust. The primary mechanism for mineral deposition in the Lunwei W deposit was a decrease in temperature and the mixing of magmatic and meteoric water. The Lunwei deposit can be classified as a porphyry‐type scheelite deposit and is a product of widespread tungsten mineralization in South China. We summarize the geological characteristics of typical W deposits (the Xingluokeng, Shangfang, and Lunwei deposits) in the Wuyi metallogenic belt and suggest that porphyry and skarn scheelite deposits should be considered the principal exploration targets in this area.  相似文献   

17.
The Dahutang tungsten polymetallic ore field is located north of the Nanling W-Sn polymetallic metallogenic belt and south of the Middle—Lower Yangtze River Valley Cu-Mo-Au-Fe porphyry-skarn belt.It is a newly discovered ore field,and probably represents the largest tungsten mineralization district in the world.The Shimensi deposit is one of the mineral deposits in the Dahutang ore field,and is associated with Yanshanian granites intruding into a Neoproterozoic granodiorite batholith.On the basis of geologic studies,this paper presents new petrographic,microthermometric,laser Raman spectroscopic and hydrogen and oxygen isotopic studies of fluid inclusions from the Shimensi deposit.The results show that there are three types of fluid inclusions in quartz from various mineralization stages:liquid-rich two-phase fluid inclusions,vapor-rich two-phase fluid inclusions,and three-phase fluid inclusions containing a solid crystal,with the vast majority being liquid-rich two-phase fluid inclusions.In addition,melt and melt-fluid inclusions were also found in quartz from pegmatoid bodies in the margin of the Yanshanian intrusion.The homogenization temperatures of liquid-rich two-phase fluid inclusions in quartz range from 162 to 363℃ and salinities are 0.5wt%-9.5wt%NaCI equivalent.From the early to late mineralization stages,with the decreasing of the homogenization temperature,the salinity also shows a decreasing trend.The ore-forming fluids can be approximated by a NaCl-H_2O fluid system,with small amounts of volatile components including CO_2,CH_4 and N_2,as suggested by Laser Raman spectroscopic analyses.The hydrogen and oxygen isotope data show that δ5D_(V-smow) values of bulk fluid inclusions in quartz from various mineralization stages vary from-63.8‰ to-108.4‰,and the δ~(18)O_(H2O) values calculated from the δ~(18)O_(V-)smow values of quartz vary from-2.28‰ to 7.21‰.These H-O isotopic data are interpreted to indicate that the ore-forming fluids are mainly composed of magmatic water in the early stage,and meteoric water was added and participated in mineralization in the late stage.Integrating the geological characteristics and analytical data,we propose that the ore-forming fluids of the Shimensi deposit were mainly derived from Yanshanian granitic magma,the evolution of which resulted in highly differentiated melt,as recorded by melt and melt-fluid inclusions in pegmatoid quartz,and high concentrations of metals in the fluids.Cooling of the ore-forming fluids and mixing with meteoric water may be the key factors that led to mineralization in the Dahutang tungsten polymetallic ore field.  相似文献   

18.
近年来,随着赣西北云母型锂矿的大规模开发利用,华南云英岩型、蚀变花岗岩型等岩体型锂矿逐渐受到关注。赣南是世界著名石英脉型黑钨矿集区和生产基地,以往勘查研究工作多集中在钨锡矿。【研究目的】为进一步了解石英脉型钨锡矿中是否存在锂矿化及其地质特征。【研究方法】本次研究通过系统的岩矿鉴定和激光剥蚀电感耦合等离子体质谱仪(LA-ICP-MS)分析,查明了在赣南崇余犹矿集区章源钨业石雷钨锡矿深部存在云英岩型锂矿。【研究结果】研究表明,锂矿体产于石雷矿区深部隐伏花岗岩体的顶部,分布于含钨锡石英脉和长石石英脉的两侧,锂元素主要赋存在白云母—多硅白云母之中。产于角岩化砂岩中的云英岩的Li2O含量平均为0.25%,二云母花岗岩中石英(长石)脉—云英岩Li2O含量平均为0.21%,二云母花岗岩中发育的含云母脉云英岩Li2O平均为0.22%,具有潜在的综合利用价值。【结论】本次研究查明了石雷石英脉型钨锡矿中存在工业意义的云英岩型锂矿化,进一步丰富了赣南石英脉型钨锡矿的成矿理论,拓宽了崇余犹地区云英岩型锂矿的找矿勘查思路,并为进一步拓展华南地区岩体型锂矿的找矿空间提供了依据。  相似文献   

19.
滇西北红山铜矿床成矿流体地球化学特征及矿床成因   总被引:6,自引:3,他引:3  
红山铜矿床为滇西北地区一大型斑岩-矽卡岩型铜多金属矿床,它产于印支期石英闪长玢岩及燕山期石英二长斑岩体内及其周边地层中,其形成经历了多期次热液叠加成矿作用过程.流体包裹体岩相学、显微测温及碳、氢、氧稳定同位素综合研究表明,矿区早期成矿流体为中高温、高盐度NaCl-H2O体系热液,主要来源于印支晚期岛弧型岩浆活动,对区内矽卡岩型矿化形成起了重要作用;晚期成矿流体为中高温、高盐度NaCl-CO2-H2O体系热液,主要来源于隐伏的燕山期后造山伸展型花岗质岩浆侵入体,形成了区内斑岩型Cu、Mo及相关的Pb、Zn多金属矿化.因此,红山铜矿床是两期岩浆热液叠加成矿作用结果.  相似文献   

20.
西藏邦布石英脉型金矿床是产于印度-亚洲板块陆-陆造山主碰撞汇聚环境下、与大洋俯冲无关的新型造山型金矿床。该矿床位于雅鲁藏布江缝合带南侧朗杰学增生楔的东段南缘,矿体受区域内EW向金地-鲁农复向斜和错古-折木朗壳型脆-韧性剪切带及其次级构造的控制。金矿化主要与石英脉密切相关,并包裹于脉内细粒/粗粒硫化物中。矿区内主要分布有3期石英脉:成矿前钩状石英脉、成矿期石英大脉和成矿后陡立状石英脉。文章对3期石英脉流体包裹体形态、形成温度、密度及H-O同位素等方面进行了详细的对比研究,试图查明成矿流体来源以及金的沉淀机制等问题。研究表明,钩状石英脉内包裹体主要为液相(L)包裹体,成分主要为H2O溶液,其流体可能为早期区域变质的产物;石英大脉内包裹体主要为含CO2气液(VL)两相包裹体,体积较大,成分主要为H2O+CO2+CH4±N2,成矿流体为深源变质流体,并与变质地层中的有机质发生强烈反应;陡立状石英脉内包裹体主要为气液两相包裹体,体积较小,其主要成分为H2O+CO2,流体主要与后期区域变质事件有关,为成矿后变质作用的产物。邦布金矿的主要成矿流体源自深部变质流体,流体不混溶作用可能是导致金矿沉淀的主要原因。  相似文献   

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