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1.
川滇黔铅锌矿集区是华南大面积低温成矿域的重要组成部分,区内铅锌矿床是否属于MVT型矿床长期存在争议。该区铅锌矿床以富集Ge等稀散元素为特征,闪锌矿是其主要载体矿物,但稀散元素在黄铁矿中是否富集、赋存状态及微量元素组成特征等研究基本属于空白。本文通过LA-ICPMS研究富乐黄铁矿中微量元素(尤其是稀散元素)的富集特征,发现黄铁矿中也相对富集Ge。本研究样品选自富乐矿床的富乐和富盛两个矿段,包括1350、1410和1536三个中段(由深到浅),LAICPMS分析结果表明,该矿床黄铁矿以富集Cu、As、Co、Ni为特征,局部富集Pb(Sb)和Zn(以方铅矿和闪锌矿显微包裹体形式赋存于黄铁矿中),该类黄铁矿富集的稀散元素主要为Se、Ge及少量Tl、Te,而Cd和In以类质同象形式赋存于含Zn的显微包裹体(闪锌矿)中,类质同象是其余稀散元素主要赋存形式,且黄铁矿中Ge与Cu存在较好相关关系,可能存在Cu~(2+)+Ge~(2+)?2Fe~(2+)耦合置换方式。此外,黄铁矿中稀散元素的富集与成矿元素(特别是Cu)的富集密切相关,随着成矿作用的进行,从矿体深部到浅部,成矿温度逐渐降低,Se/Te比值逐渐升高,且稀散元素与成矿元素呈逐渐增加趋势。研究表明,该矿床黄铁矿的Co/Ni比值基本都小于1. 00,暗示其属于沉积改造型黄铁矿,在Co-Ni和稀散元素Se-Tl含量投影图上,富乐矿床黄铁矿的投影点与MVT型矿床投影区基本一致,而明显有别于SEDEX、VMS和矽卡岩型矿床中黄铁矿的投影区,结合富乐矿床类似于MVT型的地质特征,我们认为富乐矿床属于MVT型铅锌矿床。  相似文献   

2.
湖南康家湾铅锌金银矿床位于南岭成矿带北部中段,是水口山矿田内发现较晚的大型隐伏矿床.该矿床的矿物组合及矿化特征复杂,前人对其成矿流体特征及成因类型存在不同认识.文章通过野外地质调查和矿物矿相学研究发现该矿床的热液成矿阶段较多,方铅矿主要形成于早期闪锌矿与晚期闪锌矿之间,而金和银的成矿阶段分别与早期闪锌矿和方铅矿趋于一致...  相似文献   

3.
吴越  孔志岗  陈懋弘  张长青  曹亮  唐友军  袁鑫  张沛 《岩石学报》2019,35(11):3443-3460
扬子板块周缘铅锌多金属成矿带内分布着数以百计的沉积岩容矿型铅锌矿床,它们不仅是我国主要的铅锌矿产地,同时也是重要的稀散元素(Ge、Ga等)生产基地。本次研究采用LA-ICPMS技术分别测定了扬子板块西南缘的会泽铅锌矿床、金沙厂铅锌矿床、大梁子铅锌矿床,扬子板块北缘的马元铅锌矿床以及扬子板块东南缘的凤凰茶田锌(铅)汞矿床中闪锌矿的微量元素组成,以揭示闪锌矿中微量元素(稀散元素)的富集规律和赋存状态,并为矿床成因类型的厘定及稀散元素矿产资源综合利用提供更多依据。LA-ICPMS微量元素测定结果显示闪锌矿中不同微量元素(稀散元素)分布不均匀,但这些矿床中闪锌矿总体以富集稀散元素Ge、Ga、Cd,贫In、Se、Tl、Te为特征,其Fe、Mn含量要明显低于与岩浆热液有关的高温闪锌矿,指示了扬子板块周缘铅锌矿床可能形成于中-低温成矿流体,而与岩浆热液无直接的成因联系,此外这些矿床中闪锌矿富Ge贫In的特征与其他的密西西比河谷型铅锌矿床(MVT)一致。同时,本次研究综合分析了闪锌矿中不同微量元素(稀散元素)之间的相关关系,并与闪锌矿微量元素LA-ICPMS时间分辨率特征相结合,研究表明:这些铅锌矿床中稀散元素Ge可能主要通过3Zn2+?Ge4++2(Cu+,Ag+)和2Zn2+?Ge4++□(晶体空位)的替代方式进入闪锌矿,Ga在闪锌矿中富集机理主要为2Zn2+?(Cu,Ag)++(Ga,As,Sb)3+。此外,为进一步揭示不同成因类型铅锌矿床中稀散元素的富集规律,本文还系统对比了全球范围内不同类型铅锌矿床闪锌矿的稀散元素(均为LA-ICPMS数据)组成特征,并初步探讨了造成不同成因闪锌矿中稀散元素(Ge、Ga和In)差异性富集的主要控制因素,研究表明:(1) Ge在中低温盆地卤水成矿系统(MVT和SEDEX矿床)和岩浆-火山热液成矿系统(浅成脉状铅锌矿床和VMS矿床)形成的闪锌矿中均可能富集成矿,但中低温浅成脉状矿床中Ge的富集程度要明显高于高温脉状矿床,指示了成矿温度是控制闪锌矿中Ge富集的一个重要因素。(2)铅锌矿床闪锌矿中In主要为岩浆来源,In倾向于在成矿温度较高的岩浆及火山热液成因铅锌矿床中富集成矿,而壳源的MVT和SEDEX型铅锌矿床中闪锌矿均贫In。可见除形成温度外,成矿物质来源是决定闪锌矿是否富In的关键因素。(3)除矽卡岩型铅锌矿床外,其他不同成因类型、不同形成温度的铅锌矿床中闪锌矿均可能富Ga。矽卡岩型铅锌矿床闪锌矿具有明显的贫Ga、Ge的特征,这可能是由于矽卡岩化过程中稀散元素Ga、Ge大量进入早期矽卡岩矿物,进而导致了成矿流体以及随后形成的闪锌矿中Ga、Ge的贫化。综上所述,闪锌矿中稀散元素富集与否和富集程度受成矿物质来源、成矿流体性质以及流体演化过程等多因素的综合控制。(4)扬子板块周缘铅锌矿床闪锌矿的微量元素(稀散元素)组成特征指示了它们形成于中低温成矿环境,稀散元素的富集规律与其它MVT型铅锌矿床类似。  相似文献   

4.
<正>水口山铅锌多金属矿田位于湖南省常宁市北约40 km的松柏镇,是我国重要的有色金属和贵金属生产基地之一。该区成矿地质条件优越,找矿潜力较大,相继已发现了老鸦巢、鸭公塘、中区、龙王山、柏坊、康家湾、仙人岩等一系列中型–大型的铅锌铜多金属矿床。在2014年老矿山深部和外围找矿项目中,更是在深部发现厚大含铜磁铁矿体夹含铜矽卡岩,新探获1个中型规模的铁铜矿体、多个  相似文献   

5.
水口山矿田老区(康家湾、老鸦巢、鸭公塘)外围金矿床主要产于龙王山、大园岭及南端仙人岩等地。为浅部或地表原生含金黄铁矿体(脉)经后期风化、淋滤、金元素迁移、叠加后,富集而成的含金铁帽及含金黑土夹角砾的氧化型金矿床。通过对其地质特征与成矿关系进行分析,研究表明:倒转背斜轴部;下二叠统上段含铁、锰硅质岩及泥岩;与金成矿有关的燕山中、晚期火成岩体(脉)侵入至地表或浅部地层的接触带或断层破碎带为寻找氧化型金矿床的有利找矿靶区。  相似文献   

6.
水口山矿田位于南岭成矿带的北缘。矿田内矿种多,资源丰富,包括Pb、Cu、Zn、Au(Ag)、U、Cd、In、Mn等。矿床类型以内生矿床为主,还包括不少外生矿床。内生矿床主要包括老鸦巢铅锌金矿、鸭公塘铁铜铅锌(铀)矿、康家湾铅锌银金矿等,主要成矿时代为燕山中期(150~160Ma)。外生矿床包括产于二叠系斗岭组的煤层,龙王山风化壳型金矿等,形成于海西期至喜马拉雅期。在空间上,整个矿田内生多金属矿化类型自西向东以及由深到浅呈现出矽卡岩型—中-低温热液交代充填型—风化壳型的水平和垂向分带特征,成矿元素组合则相应呈现出Fe、Cu、Pb、Zn→Pb、Zn、Au、Ag、U→Pb、Zn、Au(Ag)→Au的递变趋势。水口山(铁铜)铅锌金多金属矿田的形成与矿田内部出露的花岗闪长岩和英安斑岩关系密切。矿田内与燕山期中—酸性(主要为酸性)岩浆作用有关的铜(铁)、铅锌、金、银(铀)多金属成矿作用可总结为水口山式,为华南地区与燕山期中酸性岩浆作用相关的多金属成矿作用的典型代表。根据成矿规律的研究,水口山深部找矿勘查应集中于:①深部—浅部花岗闪长岩体内部斑岩型Cu多金属矿床的勘查;②深部和外围矽卡岩型Fe、Cu...  相似文献   

7.
高任 《地质与勘探》2022,58(3):514-531
江西城门山铜矿床通过开展深边部找矿勘查,发现其探明的伴生稀散金属资源量达到大型甚至超大型规模,其中碲、铊、镉、硒等稀散金属已综合回收利用,但研究程度还很低。本文收集整理城门山矿床的编录及化验资料,总结该矿床稀散金属的矿化特征和空间分布规律,并探讨稀散金属富集机理和控制因素。结果表明,城门山矿床的稀散元素多倾向于富集在似层状硫化物型矿石中,赋存状态以独立稀散金属矿物和赋存于黄铁矿、黄铜矿和闪锌矿等硫化物晶格为主,具有随金属硫化物总量变化而变化的空间分带特征。矿石中的w(Cd)与w(Zn)具明显的正相关性(R^(2)=0.65),其他稀散元素的含量与Cu多呈弱正相关性。本文提出碲与铊与似层状硫化物矿石密切相关,镉的超常富集主要与锌的成矿作用有关,它们在热液流体萃取、运移、沉淀过程中元素分离相对较少,岩浆结晶分异导致热液流体中铟含量降低,铼主要赋存在辉钼矿中,与幔源物质参与密切相关。同时,还建立了城门山含稀散金属铜矿床的成矿模式。  相似文献   

8.
袁鑫 《地质与勘探》2022,58(3):545-560
位于青藏高原西北部的新疆和田火烧云超大型铅锌矿床是近年来我国乃至全球最重要的铅锌找矿发现之一。该矿床矿石矿物以铅锌碳酸盐为主(菱锌矿和白铅矿),同时还发育有少量的铅锌硫化物矿体,目前对于火烧云矿床的成因仍存在较大分歧。本文以矿床硫化物矿体中的闪锌矿为研究对象,通过LAICP-MS微量元素测试和Mapping分析,揭示闪锌矿中微量元素(稀散元素)的富集规律和赋存状态,为矿床成因的厘定提供依据。结果表明,火烧云铅锌矿床闪锌矿中微量元素分布不均一,含量变化较大,以富集Cd、Tl、Ge等稀散元素为特征;Cd、Tl、Ge、Mn、As、Hg等微量元素以类质同象的形式赋存在闪锌矿中,其中,Cu与Ge的含量呈现较好的线性关系,推测在闪锌矿结晶过程中存在3Zn^(2+)Ge^(4+)+2Cu^(+)的替代机制,而Cd进入闪锌矿的方式可能为Zn^(2+)Cd^(2+),且Cd的异常富集可能与闪锌矿中低Fe含量有关;闪锌矿中微量元素Ga、Ge、Fe、Mn、In的组成特征指示了硫化物矿体形成于低温环境(65~140℃),与MVT型矿床的成矿温度一致。总体上,该矿床中的闪锌矿以富集Cd、Tl、Ge,贫Fe、Mn、In为特征,这与典型的MVT型矿床基本一致,明显区别于SEDEX、VMS与矽卡岩型铅锌矿床。结合矿床地质特征,笔者认为火烧云铅锌矿床中硫化物矿体成因与金顶铅锌矿床类似,属于MVT型矿床。  相似文献   

9.
潘萍  常河 《矿物学报》2020,40(4):404-411
位于贵州赫章县境内的板板桥铅锌矿床是近年来新发现的一处中型矿床,累计探明铅锌矿石量超过1.5×109kg,Pb平均品位0.26%~10.32%,Zn平均品位0.81%~28.8%。目前,对该矿床的研究还很薄弱,特别是硫化物中稀散元素的富集特征尚不清晰,制约了对该矿床成因的深入认识以及稀散元素的综合利用。本文利用电感耦合等离子体质谱(ICP-MS),分析了该矿床主成矿阶段硫化物(闪锌矿、黄铁矿和方铅矿)中稀散元素的富集特征,并试图揭示其蕴含的地质意义。结果表明,稀散元素主要以类质同象形式富集在闪锌矿中,但稀散元素(尤其是Ge)很可能不是直接替代Zn进入闪锌矿晶格中,而是与Fe一起共同置换Zn进入闪锌矿晶格中,这代表了一种新的闪锌矿中稀散元素替代方式。另外,硫化物中稀散元素含量及相关参数表明,板板桥铅锌矿床的形成温度较低,属于后生低温热液矿床。综合已有的矿床地质、地球化学等资料,本文认为板板桥铅锌矿床是流体-构造耦合作用的产物,其成因属于以碳酸盐岩为容矿围岩的后生热液矿床,与川滇黔接壤铅锌矿集区内其它铅锌矿床成因一致。  相似文献   

10.
天桥铅锌矿床位于川-滇-黔铅锌成矿带中东部,为黔西北地区铅锌矿床的典型代表之一。长期以来,对该矿床的成因认识存在较多争议,前人的研究主要集中在分散元素的富集规律、稀土元素及同位素对成矿流体来源的指示意义等方面,对天桥矿床中闪锌矿的微量元素特征缺乏系统的研究。本文应用ICP-MS对天桥矿床中闪锌矿的微量元素进行测试分析,研究结果表明,该矿床中闪锌矿的微量元素具有富Ge、Ga贫Mn、In、Sn、Cd的特征,其微量元素富集规律明显与夕卡岩型、喷流沉积型及岩浆热液型铅锌矿床不同,而与典型MVT型矿床(如勐兴、牛角塘等矿床)非常类似,仅其中Cd含量较低(均值为1282×10-6),该特征与川滇黔地区MVT型铅锌矿床(会泽和杉树林)中闪锌矿微量元素组成一致。总体上,本矿床闪锌矿富集Ge和Ga等低温成矿元素,其In/Ga比值中等,Zn/Cd比值较高,暗示其形成于中温环境。综合前人研究成果及矿床产出地质特征,我们认为天桥铅锌矿床属于MVT型铅锌矿床。  相似文献   

11.
梅仙丁家山铅锌矿床是闽中新元古代马面山群中多个大中型铅锌多金属矿床的典型代表.本文以丁家山铅锌矿床两类矿石(含磁黄铁矿矿石和含磁铁矿矿石)内的闪锌矿和黄铁矿为研究对象,通过电子探针及LA-ICP-MS微量元素分析技术,揭示二者的微量元素组成和赋存状态,探讨成矿温度及矿床成因方面的重要信息.分析结果显示:闪锌矿内Fe、Mn、Cd、Cu、In、Pb、Bi元素较为富集,两类矿石内的闪锌矿除Fe元素含量相差较大以外(平均值分别为9.3%和1.7%),其他元素含量并无明显差异;电子探针面扫描和LA-ICP-MS剥蚀图像显示元素Mn、Cd、In以类质同象形式存在,而Fe、Cu、Pb、Bi则有类质同象和显微包体2种存在形式.黄铁矿微量元素含量整体较低,元素Co、Ni、Pb、Bi相对富集,Ni、Mn主要以类质同象形式存在,Cu、Co有类质同象替换和显微包体2种形式,Pb、Bi主要以方铅矿包体形式存在.两类矿石中的闪锌矿Zn/Cd比值分别在120~150之间和93~210之间,均指示中温成矿条件.两类闪锌矿内Fe、Cd、Mn元素含量特征与典型矽卡岩型矿床内的闪锌矿相吻合;矿床内硫化物硫同位素组成揭示成矿物质来自于岩浆岩.上述证据共同支持梅仙丁家山铅锌矿矿床属矽卡岩型矿床.  相似文献   

12.
Mineral assemblages, chemical compositions of ore minerals, wall rock alteration and fluid inclusions of the Gatsuurt gold deposit in the North Khentei gold belt of Mongolia were investigated to characterize the gold mineralization, and to clarify the genetic processes of the ore minerals. The gold mineralization of the deposit occurs in separate Central and Main zones, and is characterized by three ore types: (i) low‐grade disseminated and stockwork ores; (ii) moderate‐grade quartz vein ores; and (iii) high‐grade silicified ores, with average Au contents of approximately 1, 3 and 5 g t?1 Au, respectively. The Au‐rich quartz vein and silicified ore mineralization is surrounded by, or is included within, the disseminated and stockwork Au‐mineralization region. The main ore minerals are pyrite (pyrite‐I and pyrite‐II) and arsenopyrite (arsenopyrite‐I and arsenopyrite‐II). Moderate amounts of galena, tetrahedrite‐tennantite, sphalerite and chalcopyrite, and minor jamesonite, bournonite, boulangerite, geocronite, scheelite, geerite, native gold and zircon are associated. Abundances and grain sizes of the ore minerals are variable in ores with different host rocks. Small grains of native gold occur as fillings or at grain boundaries of pyrite, arsenopyrite, sphalerite, galena and tetrahedrite in the disseminated and stockwork ores and silicified ores, whereas visible native gold of variable size occurs in the quartz vein ores. The ore mineralization is associated with sericitic and siliceous alteration. The disseminated and stockwork mineralization is composed of four distinct stages characterized by crystallization of (i) pyrite‐I + arsenopyrite‐I, (ii) pyrite‐II + arsenopyrite‐II, (iii) galena + tetrahedrite + sphalerite + chalcopyrite + jamesonite + bournonite + scheelite, and iv) boulangerite + native gold, respectively. In the quartz vein ores, four crystallization stages are also recognized: (i) pyrite‐I, (ii) pyrite‐II + arsenopyrite + galena + Ag‐rich tetrahedrite‐tennantite + sphalerite + chalcopyrite + bournonite, (iii) geocronite + geerite + native gold, and (iv) native gold. Two mineralization stages in the silicified ores are characterized by (i) pyrite + arsenopyrite + tetrahedrite + chalcopyrite, and (ii) galena + sphalerite + native gold. Quartz in the disseminated and stockwork ores of the Main zone contains CO2‐rich, halite‐bearing aqueous fluid inclusions with homogenization temperatures ranging from 194 to 327°C, whereas quartz in the disseminated and stockwork ores of the Central zone contains CO2‐rich and aqueous fluid inclusions with homogenization temperatures ranging from 254 to 355°C. The textures of the ores, the mineral assemblages present, the mineralization sequences and the fluid inclusion data are consistent with orogenic classification for the Gatsuurt deposit.  相似文献   

13.
Analyses of pyrite, chalcopyrite and magnetite from the volcanic-hosted Big Cadia stratabound iron-copper deposit in Central Western New South Wales show considerable variation in the minor elements Mn, Ba, Ag, Pb, Zn, Cd, Se, Co and Ni. The preferential concentration of Co and Cd in pyrite, Zn and Ag in chalcopyrite and Mn in magnetite can be attributed to variations in activities of the ions in the hydrothermal fluid at the time of crystallisation of the mineral phases, or in cases such as the concentration of Co in pyrite, dependent on compatible electronic spin states between Co2+ and Fe2+. Trace element concentrations, especially Co and Ni contents and Co:Ni ratios in pyrite (average Co:Ni ratio=17.1) support a volcanic exhalative origin of mineralisation at Big Cadia. Differences in trace element composition such as higher Ni contents in pyrite in contrast with other volcanic-hosted ores may reflect the more basic character of volcanic rocks underlying the Big Cadia deposit.  相似文献   

14.
水口山铅锌多金属矿田是我国南岭地区重要的有色金属和贵金属生产基地之一。矿田内中酸性岩体发育,研究这些岩体的地质地球化学特征对理清区内成岩成矿演化谱系和指导找矿勘探均具有重要意义。该矿田内,老鸦巢4号和鸭公塘3号花岗闪长岩岩体的主微量元素组成相似,都具有高钾钙碱-钾玄及准铝质的特点。岩石微量元素配分呈平滑的右倾,轻稀土元素富集,重稀土元素分布平滑,具有弱的负铕异常。LA-ICP-MS锆石U-Pb定年表明,老鸦巢花岗闪长岩的年龄为(162.9±0.7) Ma,鸭公塘花岗闪长岩的年龄为(156.3±0.6) Ma。年龄结果表明水口山矿田花岗闪长岩岩体主要形成于燕山早期,经历了多期多阶段侵位过程。锆石原位Lu-Hf同位素分析结果显示,老鸦巢花岗闪长岩εHf(t)值为-11.2~-8.24,二阶段模式年龄(TDM2)为1 920~1 734 Ma;鸭公塘花岗闪长岩εHf(t)值为-13.51~-6.23,二阶段模式年龄为2 063~1 601 Ma,显示鸭公塘岩体壳幔混合作用强于老鸦巢岩体。结合岩石地球化学特征及前人对矿田内仙人岩二长岩等岩体的研究结果,文章认为形成老鸦巢和鸭公塘岩体的岩浆主要起源于古老下地壳玄武岩-火成岩的部分熔融。该矿田在165~155 Ma处于中晚侏罗世地壳拉张减薄的构造背景中,岩浆岩锆石的εHf(t)值急剧增加,幔源岩浆底侵作用增强。水口山铅锌多金属矿田与鸭公塘及仙人岩的岩体形成时代一致,三者具有成因联系,壳幔岩浆混合为成矿提供了大量金属物质,是区内形成众多铜铅锌金矿床的重要因素。  相似文献   

15.

At the well-preserved Yubileynoe VMS deposit (Southern Urals), sulfide breccias and turbidites host abundant tellurides represented by hessite, coloradoite, altaite, volynskite, stützite, petzite, and calaverite, as well as phases of the intermediate tellurobismuthite → rucklidgeite solid solution. Three telluride generations were highlighted: (1) primary hydrothermal tellurides in fragments of chalcopyrite and sphalerite of chalcopyrite-rich black smoker chimneys; (2) authigenic tellurides in pseudomorphic chalcopyrite and chalcopyrite veins after fragments of colloform and granular pyrite; and (3) authigenic tellurides in pyrite nodules. Authigenic tellurides are widespread in pyrite-chalcopyrite turbidites. Primary hydrothermal and authigenic tellurides are less common in sulfide turbidites and gritstones with fragments of sphalerite-pyrite, pyrite-sphalerite paleosmoker chimneys and clasts of colloform and fine-grained seafloor hydrothermal crusts. Siliceous siltstones intercalated with sulfide turbidites contain pyrite nodules, whose peripheral parts contain inclusions of epigenetic tellurides. It is assumed that Te for authigenic tellurides originated from fragments of colloform pyrite and hydrothermal chalcopyrite of pyrite-chalcopyrite chimneys, which dissolved during the postsedimentation processes. The main Te concentrators in clastic ores include pseudomorphic chalcopyrite, which inherits high Te, Bi, Au, Ag, Co, Ni, and As contents from the substituted colloform pyrite, and varieties of granular pyrite containing microinclusions of tellurobismuthite (Bi, Te), petzite (Au, Ag, Te), altaite (Pb, Te), coloradoite, and hessite (Ag, Te).

  相似文献   

16.
Minor elements and ore genesis of the Fankou lead-zinc deposit,China   总被引:3,自引:0,他引:3  
The Fankou Pb-Zn deposit occurs in the Middle-Upper Devonian and Lower Carboniferous carbonate and argillaceous carbonate formations. In principle, the deposit can be classified as a carbonate-hosted strate-bound deposit. Representative sphalerite, galena, and pyrite separates from Fankou have been analysed. For the purpose of comparison a literature survey on minor elements of other districts have been carried out. The comparison of determined data with the quoted data shows that the Fankou sphalerites are rich in Ga, Ge and Ag, but poor in Se and Te; the Fankou galenas are rich in Ag, Hg, Sb and As, but poor in Se, Te, Tl and Bi; the Fankou pyrites are rich in As, Cd and In, but poor in Se, Te, Co and Ni. Zn/Cd and Se/S×10–4 ratios for sphalerites, Sb/Ag, Sb/Bi and Se/S×10–4 ratios for galenas and Co/Ni ratios for pyrites from Fankou and other districts have been calculated. Ga-Ge-Ag atomic ratios in sphalerites, Sb-Bi-Ag atomic ratios in galenas and Co-Ni relations in pyrites have been plotted. The average value (311) of Zn/Cd ratios for sphalerites from Fankou is similar to values of sphalerites from Gaobanhe, Heqing, Accesa and Broken Hill. The average Sb/Ag ratio (0.74) and the Sb-Bi-Ag atomic ratios in Fankou galenas are similar to those in the syngenetic galena from the British Island. The Ga-Ge-Ag atomic ratios for Fankou sphalerites are similar to those for the syngenetic sphalerites and Gorno sphalerites. The average Co/Ni ratio (1.1) for micro to fine-grained pyrites from Fankou laminated-bedded pyrite ore is similar to that (0.8) for the sedimentary pyrites from other districts. As to the fine to medium-grained pyrites from Fankou massive pyritic ores, their higher Co/Ni ratios (1.6–1.8) may relate to the fact that more Ni is lost than Co, during the reformation or recrystallization. Sphalerite, galena and pyrite from Fankou all are rather poor in Se and have very low values of Se/S×10–4, so they may bear no genetic relation to volcanism. To sum up, the following conclusions can be reached: (1) The Fankou deposit possesses some syngenetic features. (2) Evidently it differs from skarn type, hydrothermal type, and volcanogenic type deposits. (3) Surely it is a reformed sedimentary Pb-Zn deposit.  相似文献   

17.
新疆小热泉子铜(锌)矿床位于大南湖晚古生代岛弧带内,矿体主要赋存于一套凝灰质火山碎屑沉积岩中,矿石类型主要为块状黄铜矿矿石、闪锌矿矿石和脉状硫化物矿石。硫化物的显微结构研究表明,黄铁矿主要发生脆型变形,形成碎裂结构、细粒化结构、充填交代结构、"布丁"结构以及变斑晶结构,黄铜矿和闪锌矿发生塑性变形,黄铜矿表现为"S型"面理结构以及在闪锌矿中呈团斑状结构,电子探针结果表明黄铜矿发生明显的活化迁移富集作用。硫化物的稀土微量元素研究表明,闪锌矿中Mn、Ga、As等元素含量很低,Ga/In<<1,Ge/In多数小于1,174相似文献   

18.
位于扬子板块西南缘的"川滇黔接壤铅锌矿集区"是我国西南大面积低温成矿域的重要组成部分,麻栗坪铅锌矿床位于该矿集区昭通-曲靖成矿带中段,是近年来滇东北地区新发现的铅锌矿床。本文以麻栗坪铅锌矿不同硫化物为研究对象,通过LA-ICPMS原位点测试和元素Mapping分析,尝试揭示该矿床中Ge、Cd和In等微量元素在不同硫化物中分布规律与赋存状态。本次研究发现,麻栗坪矿床不同硫化物中富集的微量元素明显不同,闪锌矿主要富集Mn、Cu、Sn、Cd、In和Ge,而方铅矿主要富集Ag、Sb和Se,黄铁矿则富集As、Co和Ni。闪锌矿是分散元素Ge、In和Cd的主要载体矿物,且Cd、Ge、In、Mn、As、Sb和Ag以类质同象形式赋存于闪锌矿中;而Cu则主要以类质同象形式存在,部分Cu以黄铜矿的显微包裹体形式赋存于闪锌矿中,其中以类质同象赋存于闪锌矿中Cu和Ge呈现明显的相关性,可能暗示其与Zn的置换方式为:3Zn2+Ge4++2Cu+。总体上,该矿床闪锌矿以富集Cd、Ge,贫Fe、Mn、Co、Sn为特征,这些微量元素组成与典型MVT型矿床基本一致,明显有别于喷流沉积和岩浆热液型矿床,而与中低温条件下形成的闪锌矿微量元素组成相似。结合该矿床后生成矿特征明显等地质地球化学研究成果,我们认为该矿床应属于MVT型铅锌矿床。值得注意的是,该矿床闪锌矿相对富集In,可能暗示其形成具有特殊性,这可能与其成矿流体在长距离运移过程中所流经地层有关,该类流体活化萃取了基底地层的中-酸性岩浆岩或火山碎屑岩中的In,致使矿床中闪锌矿相对富集In。  相似文献   

19.
The Southern Great Xing'an Range(S(GXR)which forms part of the eastern segment of the Central Asian Orogenic Belt(CAOB)is known as one of the most important Cu-Mo-Pb-Zn-Ag-Au metallogenic belts in China,hosting a number of porphyry Mo(Cu),skarn Fe(Sn),epithermal Au-Ag,and hydrothermal veintype Ag-Pb-Zn ore deposits.Here we investigate the Bianjiadayuan hydrothermal vein-type Ag-Pb-Zn ore deposit in the southern part of the SGXR.Porphyry Sn± Cu± Mo mineralization is also developed to the west of the Ag-Pb-Zn veins in the ore field.We identify a five-stage mineralization process based on field and petrologic studies including(i)the early porphyry mineralization stage,(ii)main porphyry mineralization stage,(iii)transition mineralization stage,(iv)vein-type mineralization stage and(v)late mineralization stage.Pyrite is the predominant sulfide mineral in all stages except in the late mineralization stage,and we identify corresponding four types of pyrites:Pyl is medium-grained subhedral to euhedral occurring in the early barren quartz vein;Py2 is medium-to fine-grained euhedral pyrite mainly coexisting with molybdenite,chalcopyrite,minor sphalerite and galena;Py3 is fine-grained,subhedral to irregular pyrite and displays cataclastic textures with micro-fractures;Py4 occurs as euhedral microcrystals and forms irregularly shaped aggregate with sphalerite and galena.LA-ICP-MS trace element analyses of pyrite show that Cu,Pb,Zn,Ag,Sn,Cd and Sb are partitioned into pyrite as structurally bound metals or mineral micro/nano-inclusions,whereas Co,Ni,As and Se enter the lattice via isomorphism in all types of pyrite.The Cu,Zn,Ag,Cd concentrations gradually increase from Pyl to Py4,which we correlate with cooling and mixing of ore-forming fluid with meteoric water.Py2 contains the highest contents of Co,Ni,Se,Te and Bi,suggesting high temperature conditions for the porphyry mineralization stage.Ratios of Co/Ni(0.03-10.79,average 2.13)and sulphur isotope composition of sulfide indicate typical hydrothermal origin for pyrites.The δ~(34)S_(cDT) values of Pyl(0.42‰-1.61‰,average1.16‰),Py2(-1.23‰to 0.82‰,average 0.35‰),Py3(—0.36‰to 2.47‰average 0.97‰).Py4(2.51‰--3.72‰,average 3.06‰),and other sulfides are consistent with those of typical porphyry deposit(-5‰to 5‰),indicating that the Pb-Zn polymetallic mineralization in the Bianjiadayuan deposit is genetically linked to the Yanshanian(Jurassic-Cretaceous)magmatic-hydrothermal events.Variations of δ~(34) S values are ascribed to the changes in physical and chemical conditions during the evolution and migration of the ore-forming fluid.We propose that the high Sn content of pyrite in the Bianjiadayuan hydrothermal vein-type Pb-Zn polymetallic deposit can be used as a possible pathfinder to prospect for Sn mineralization in the surrounding area or deeper level of the ore field in this region.  相似文献   

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