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景德镇朱溪钨(铜)矿床花岗斑岩的锆石U-Pb年龄、地球化学特征及其与成矿关系探讨 被引量:63
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作者 李岩 潘小菲 +4 位作者 赵苗 陈国华 张天福 刘茜 张诚 《地质论评》 CAS CSCD 北大核心 2014年第3期693-708,共16页
江西省景德镇朱溪钨(铜)多金属矿是近年新发现的一个矽卡岩型矿床,其研究基础薄弱.为了确定与该矿床形成密切相关的花岗斑岩的侵位时代、岩石成因,以及与矿床的内在关系.文章对矿区钻孔中发育的花岗斑岩岩株进行了岩相学、地球化学及... 江西省景德镇朱溪钨(铜)多金属矿是近年新发现的一个矽卡岩型矿床,其研究基础薄弱.为了确定与该矿床形成密切相关的花岗斑岩的侵位时代、岩石成因,以及与矿床的内在关系.文章对矿区钻孔中发育的花岗斑岩岩株进行了岩相学、地球化学及锆石LA-ICP-MS U-Pb年代学研究.研究的结果表明,花岗斑岩的侵位年龄为150Ma左右;岩石富硅[SiO2平均为76.57%]、富碱[(Na2O+K2O)平均为5.43%]、A/CNK均大于1.0,属过铝质岩石;富集轻稀土,亏损重稀土,且具有明显的负铕异常(δEu =0.18 ~0.21);富集Th、U、Rb等大离子亲石元素;亏损Nb、Ti等高场强元素;与(华南)陆壳改造系列花岗岩(S型花岗岩)的地球化学特征相类似;锆石εHf(f)为-16.5~0.6;两阶段Hf模式年龄主要集中在1.58 ~2.58Ga,也表明朱溪花岗斑岩是由古元古代地壳组分熔融产生,且有少量地幔物质参与.初步探讨了朱溪大规模钨(铜)矿化与花岗斑岩的密切关系,认为花岗斑岩可能为其提供了成矿物质及能量来源. 展开更多
关键词 锆石LA-ICP-MS U-Pb定年 地球化学特征 锆石HF同位素 花岗斑岩 朱溪()多金属矿 江西景德镇
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江南东段朱溪钨(铜)多金属矿床的地质特征与成矿背景 被引量:48
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作者 陈国华 舒良树 +2 位作者 舒立旻 张诚 欧阳永棚 《中国科学:地球科学》 CSCD 北大核心 2015年第12期1799-1818,1-6,共20页
江西朱溪白钨(铜)多金属矿是近年发现的一个特大型矿床,发育在富含钨铜元素的新元古代泥砂质岩石基底之上,产在燕山期花岗岩与石炭-二叠纪灰岩的接触带.与矿化有关的花岗岩主要是等粒状、中-粗粒状花岗岩和花岗斑岩.存在矽卡岩白钨(... 江西朱溪白钨(铜)多金属矿是近年发现的一个特大型矿床,发育在富含钨铜元素的新元古代泥砂质岩石基底之上,产在燕山期花岗岩与石炭-二叠纪灰岩的接触带.与矿化有关的花岗岩主要是等粒状、中-粗粒状花岗岩和花岗斑岩.存在矽卡岩白钨(铜)矿和花岗岩白钨矿两种矿化类型,前者规模大,品位富,后者规模小,品位低.在塔前-赋春盆地,其NW边界呈逆断层、SE边界呈角度不整合与元古代基底接触,而石炭-二叠纪多个岩组中灰岩的钨铜元素含量都很高.矿区外围与矿区内花岗岩类的主量元素含量差别不大,其A/CNK值均〉1.1,属富钾的强过铝质花岗岩.在微量元素上,矿区内花岗岩比外围花岗岩的?Eu值更小,更具显著的Eu负异常,富集Rb,U,Ta,Pb和Hf,亏损Ba,Ce,Sr,La和Ti,属于演化程度更高的高分异S型花岗岩.受流体作用的影响,矿区内岩体硫化物矿化明显,SO3平均含量0.2%.和外围岩体相比,矿区内花岗岩?Eu和稀土总量均偏低,暗示外围与矿区花岗岩具有一定演化继承关系.外围与矿区岩体中的锆石U-Pb年龄为152~148 Ma.通过花岗岩中原位锆石Lu-Hf同位素分析,计算得到的?Hf(t)值均为负值,多数在?6~?9之间,TDM2值集中在1.50~1.88 Ga(峰值1.75 Ga),表明花岗质岩浆来自古老地壳物质的部分熔融.本文还从地层中和含矿岩体中的矿质含量、热液蚀变、控矿构造等方面对其成矿、控矿条件进行了讨论,提出朱溪矿床经历了花岗岩浆斜向侵位、矽卡岩矿化、降温蚀变、硫化物金属沉淀等多阶段演化的认识,总结出该矿床"东铜西钨、铜浅钨深、早钨晚铜"的成矿规律. 展开更多
关键词 ()多金属矿 晚中生代花岗岩 石炭-二叠纪 碳酸盐岩 成矿背景 浮梁县朱溪 江南东段
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Geological characteristics and mineralization setting of the Zhuxi tungsten(copper) polymetallic deposit in the Eastern Jiangnan Orogen 被引量:25
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作者 CHEN GuoHua SHU LiangShu +2 位作者 SHU LiMin ZHANG Cheng OUYANG YongPeng 《Science China Earth Sciences》 SCIE EI CAS CSCD 2016年第4期803-823,共21页
The Zhuxi ore deposit is a super-large scheelite(copper) polymetallic deposit discovered in recent years. It grew above copper/tungsten-rich Neoproterozoic argilloarenaceous basement rocks and was formed in the contac... The Zhuxi ore deposit is a super-large scheelite(copper) polymetallic deposit discovered in recent years. It grew above copper/tungsten-rich Neoproterozoic argilloarenaceous basement rocks and was formed in the contact zone between Yanshanian granites and Carboniferous-Permian limestone. Granites related to this mineralization mainly include equigranular, middle- to coarse-grained granites and granitic porphyries. There are two mineralization types: skarn scheelite(copper) and granite scheelite mineralization. The former is large scale and has a high content of scheelite, whereas the latter is small scale and has a low content of scheelite. In the Taqian-Fuchun Basin, its NW boundary is a thrust fault, and the SE boundary is an angular unconformity with Proterozoic basement. In Carboniferous-Permian rock assemblages, the tungsten and copper contents in the limestone are both very high. The contents of major elements in granitoids do not differ largely between the periphery and the inside of the Zhuxi ore deposit. In both areas, the values of the aluminum saturation index are A/CNK>1.1, and the rocks are classified as potassium-rich strongly peraluminous granites. In terms of trace elements, compared to granites on the periphery of the Zhuxi ore deposit, the granites inside the Zhuxi ore deposit have smaller d Eu values, exhibit a significantly more negative Eu anomaly, are richer in Rb, U, Ta, Pb and Hf, and are more depleted in Ba, Ce, Sr, La and Ti, which indicates that they are highly differentiated S-type granites with a high degree of evolution. Under the influence of fluids, mineralization of sulfides is evident within massive rock formations inside the Zhuxi ore deposit, and the mean SO_3 content is 0.2%. Compared to peripheral rocks, the d Eu and total rare earth element(REE) content of granites inside the Zhuxi ore deposit are both lower, indicating a certain evolutionary inheritance relationship between the granites on the periphery and the granites inside the Zhuxi ore deposit. For peripheral and ore district plutons, U-Pb zircon dating shows an age range of 152–148 Ma. In situ Lu-Hf isotope analysis of zircon in the granites reveals that the calculated e_(Hf)(t) values are all negative, and the majority range from -6 to -9. The T_(DM2) values are concentrated in the range of 1.50–1.88 Ga(peak at 1.75 Ga), suggesting that the granitic magmas are derived from partial melting of ancient crust. This paper also discusses the metallogenic conditions and ore-controlling conditions of the ore district from the perspectives of mineral contents, hydrothermal alteration, and ore-controlling structures in the strata and the ore-bearing rocks. It is proposed that the Zhuxi ore deposit went through a multistage evolution, including oblique intrusion of granitic magmas, skarn mineralization, cooling and alteration, and precipitation of metal sulfides. The mineralization pattern can be summarized as "copper in the east and tungsten in the west, copper at shallow-middle depths and tungsten at deep depths, tungsten in the early stage and copper in the late stage". 展开更多
关键词 Tungsten(copper) polymetallic deposit Late Mesozoic granites Carboniferous-Permian carbonate rocks Skarn mineralization Zhuxi ore deposit Eastern Jiangnan Orogen
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