庙山铜多金属矿床是在粤西阳春盆地内新近发现的一处铜多金属矿床。矿体主要呈似层状和透镜状产于泥盆系的陆源碎屑岩和含泥质的碳酸盐岩中。本文以矿石矿物黄铁矿和闪锌矿为研究对象,采用LA-ICPMS原位微区分析新技术对其微量元素特征...庙山铜多金属矿床是在粤西阳春盆地内新近发现的一处铜多金属矿床。矿体主要呈似层状和透镜状产于泥盆系的陆源碎屑岩和含泥质的碳酸盐岩中。本文以矿石矿物黄铁矿和闪锌矿为研究对象,采用LA-ICPMS原位微区分析新技术对其微量元素特征进行研究。结果表明,庙山铜多金属矿床中黄铁矿以富Se、Te和As,贫Ni元素为特征,其Co/Ni和S/Se比值特征指示其成因与岩浆热液型矿床密切相关;闪锌矿的微量元素组成指示其主要形成于中高温环境,以富Mn、In、Se,贫Ga、Ge、Tl等元素为特征,总体与国外一些典型的矽卡岩型矿床(如Baita Bihor、Majdanpek、Ocna de Fier和Valea Seaca)相似。同时,闪锌矿的部分微量元素比值(如Zn/Cd、Ga/In等)以及相关的微量元素图解(如Ge-In,Ge-Se等)均表明庙山矿床的成因类型与矽卡岩型矿床一致。硫同位素测试结果表明,矿石的δ^(34)S值较为集中(-0.4‰^+2‰),平均0.69‰,具有较为明显的塔式分布特征,反映成矿物质具有岩浆来源的特征。以地质现象为基础,结合硫化物原位微区分析和硫同位素数据,我们认为庙山铜多金属矿床属于与岩浆热液有关的矽卡岩型矿床。展开更多
South China is famous for the extensive magmatism and polymetallic mineralization that took place there in the Mesozoic. Shilu is a large porphyry–skarn Cu–Mo deposit in the Yangchun Basin, South China. The litholog...South China is famous for the extensive magmatism and polymetallic mineralization that took place there in the Mesozoic. Shilu is a large porphyry–skarn Cu–Mo deposit in the Yangchun Basin, South China. The lithology of the Shilu intrusion is granodiorite and quartz diorite, both of which are high-K calc-alkaline series, with high Sr([400 ppm) content along with low Y and Yb contents. Most of the samples have characteristics of adakite except for a few samples that have slightly higher Y and Yb contents, which may be plausibly explained by crustal contamination. Laser Ablation Inductively Coupled Plasma Mass Spectrometry zircon U–Pb dating revealed ages between 106.6 ± 1.3 and 103.9 ± 0.5 Ma, with multiple magmatic pulses. Molybdenite Re–Os isochron age of 102.2 ± 2.9 Ma(MSWD = 9.4) was determined, which is identical to the youngest zircon U–Pb age(103.9 ± 0.5 Ma) within error.The Shilu intrusion has high oxygen fugacity as indicated by high zircon Ce^(4+)/Ce^(3+) and Eu_N/Eu_N* ratios. Considering the geochemical characteristics(high Sr, and low Y and Yb contents), high oxygen fugacity, and copper mineralization of the Shilu intrusion, it was most likely formed by partial melting of a subducted young oceanic slab. Whole-rock Sr–Nd isotope-, zircon Hf isotope-, and whole-rock trace element analyses show that Shilu adakitic magmas may have interacted with type II enriched mantle and/or crustal materials during ascent. South China was affected by the Pacific tectonic regime to the east and the Neo-Tethys tectonic regime to the south in the Cretaceous. Based on the Pacific Plate drifting and rotation history, it is hard to explain how the Pacific Plate would have subducted and melted, forming adakitic rocks in the Shilu region. Considering the tectonic history of Southeast Asia and the South China Sea, the Neo-Tethys trench should have been much closer to the South China Block in the Cretaceous, and thus have had a greater impact on the South China Block. Based on the subduction direction, time of subduction,and distance between the Neo-Tethys subduction zone and the Shilu deposit, subduction of the Neo-Tethys ridge is the best mechanism for explaining the Shilu adakitic rocks and Cu–Mo mineralization.展开更多
文摘庙山铜多金属矿床是在粤西阳春盆地内新近发现的一处铜多金属矿床。矿体主要呈似层状和透镜状产于泥盆系的陆源碎屑岩和含泥质的碳酸盐岩中。本文以矿石矿物黄铁矿和闪锌矿为研究对象,采用LA-ICPMS原位微区分析新技术对其微量元素特征进行研究。结果表明,庙山铜多金属矿床中黄铁矿以富Se、Te和As,贫Ni元素为特征,其Co/Ni和S/Se比值特征指示其成因与岩浆热液型矿床密切相关;闪锌矿的微量元素组成指示其主要形成于中高温环境,以富Mn、In、Se,贫Ga、Ge、Tl等元素为特征,总体与国外一些典型的矽卡岩型矿床(如Baita Bihor、Majdanpek、Ocna de Fier和Valea Seaca)相似。同时,闪锌矿的部分微量元素比值(如Zn/Cd、Ga/In等)以及相关的微量元素图解(如Ge-In,Ge-Se等)均表明庙山矿床的成因类型与矽卡岩型矿床一致。硫同位素测试结果表明,矿石的δ^(34)S值较为集中(-0.4‰^+2‰),平均0.69‰,具有较为明显的塔式分布特征,反映成矿物质具有岩浆来源的特征。以地质现象为基础,结合硫化物原位微区分析和硫同位素数据,我们认为庙山铜多金属矿床属于与岩浆热液有关的矽卡岩型矿床。
基金supported by the DREAM project of MOST China 2016YFC0600408NSFC 91328204,41421062China Geological Survey (12120114015801)
文摘South China is famous for the extensive magmatism and polymetallic mineralization that took place there in the Mesozoic. Shilu is a large porphyry–skarn Cu–Mo deposit in the Yangchun Basin, South China. The lithology of the Shilu intrusion is granodiorite and quartz diorite, both of which are high-K calc-alkaline series, with high Sr([400 ppm) content along with low Y and Yb contents. Most of the samples have characteristics of adakite except for a few samples that have slightly higher Y and Yb contents, which may be plausibly explained by crustal contamination. Laser Ablation Inductively Coupled Plasma Mass Spectrometry zircon U–Pb dating revealed ages between 106.6 ± 1.3 and 103.9 ± 0.5 Ma, with multiple magmatic pulses. Molybdenite Re–Os isochron age of 102.2 ± 2.9 Ma(MSWD = 9.4) was determined, which is identical to the youngest zircon U–Pb age(103.9 ± 0.5 Ma) within error.The Shilu intrusion has high oxygen fugacity as indicated by high zircon Ce^(4+)/Ce^(3+) and Eu_N/Eu_N* ratios. Considering the geochemical characteristics(high Sr, and low Y and Yb contents), high oxygen fugacity, and copper mineralization of the Shilu intrusion, it was most likely formed by partial melting of a subducted young oceanic slab. Whole-rock Sr–Nd isotope-, zircon Hf isotope-, and whole-rock trace element analyses show that Shilu adakitic magmas may have interacted with type II enriched mantle and/or crustal materials during ascent. South China was affected by the Pacific tectonic regime to the east and the Neo-Tethys tectonic regime to the south in the Cretaceous. Based on the Pacific Plate drifting and rotation history, it is hard to explain how the Pacific Plate would have subducted and melted, forming adakitic rocks in the Shilu region. Considering the tectonic history of Southeast Asia and the South China Sea, the Neo-Tethys trench should have been much closer to the South China Block in the Cretaceous, and thus have had a greater impact on the South China Block. Based on the subduction direction, time of subduction,and distance between the Neo-Tethys subduction zone and the Shilu deposit, subduction of the Neo-Tethys ridge is the best mechanism for explaining the Shilu adakitic rocks and Cu–Mo mineralization.