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江南钨矿带桂林郑富钼白钨矿稀土元素的富集机制及其地质意义 被引量:4
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作者 任康达 张达玉 +5 位作者 孟翔 张飞 王静 席晓晨 张泽伟 苏海博 《矿床地质》 CAS CSCD 北大核心 2022年第4期859-877,共19页
桂林郑钼钨多金属矿床位于江南钨矿带北部,其矿石矿物以富钼白钨矿为主。研究显示,该矿床富钼白钨矿中富集稀土元素。为探究其富集机制,文章对不同世代的富钼白钨矿进行原位LA-ICP-MS微量分析和面扫描分析。结果显示,富钼白钨矿的总稀... 桂林郑钼钨多金属矿床位于江南钨矿带北部,其矿石矿物以富钼白钨矿为主。研究显示,该矿床富钼白钨矿中富集稀土元素。为探究其富集机制,文章对不同世代的富钼白钨矿进行原位LA-ICP-MS微量分析和面扫描分析。结果显示,富钼白钨矿的总稀土元素含量(∑REE)在28.59×10^(-6)~4863.82×10^(-6)之间,均值为789.21×10^(-6)(n=122),从第一世代(Sch-Ⅰ)28.59×10^(-6)~1059.18×10^(-6)(平均值为203.19×10^(-6),n=55)→第二世代(Sch-Ⅱ)533.54×10^(-6)~2536.51×10^(-6)(平均值=928.79×10^(-6),n=30)→第三世代(Sch-Ⅲ)117.21×10^(-6)~4863.82×10^(-6)(平均值=1547.13×10^(-6);n=37)逐渐增高。从Sch-Ⅰ→Sch-Ⅱ→Sch-Ⅲ,轻重稀土元素比值(LREE/HREE)13.99~143.90(平均值=53.53)→22.38~70.08(平均值=33.74)→7.44~69.86(平均值=27.54)逐渐降低。桂林郑富钼白钨矿形成于高氧逸度、富F的岩浆热液系统,REE主要以Ca^(2+)+Mo^(6+)=REE^(3+)+(1-x)Mo^(5+)+xNb^(5+)(0≤x≤1)为主导方式进入富钼白钨矿中。成矿流体中Cl降低、F增高、氧逸度降低等是REE进入富钼白钨矿的有利条件。通过对江南钨矿带代表性矽卡岩型矿床综合对比分析显示,富钼白钨矿床相比贫钼白钨矿床具有更高的REE,说明桂林郑矿床富钼白钨矿在后续开采中具有稀土元素的综合利用前景。 展开更多
关键词 地球化学 富钼白钨矿 稀土元素 LA-ICP-MS 桂林郑矽卡岩 矿床江南钨矿带
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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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