Redox-controlled generation of the giant porphyry Cu-Au deposit at Pulang, southwest China

被引:48
|
作者
Li, Weikai [1 ,2 ]
Yang, Zhiming [1 ,3 ]
Cao, Kang [1 ]
Lu, Yongjun [4 ,5 ,6 ]
Sun, Maoyu [1 ,2 ]
机构
[1] Chinese Acad Geol Sci, Inst Geol, Key Lab Deep Earth Dynam, Beijing 100037, Peoples R China
[2] Peking Univ, Sch Earth & Space Sci, Beijing 100871, Peoples R China
[3] James Cook Univ, Coll Sci & Engn, EGRU, Townsville, Qld 4811, Australia
[4] Geol Survey Western Australia, 100 Plain St, East Perth, WA 6004, Australia
[5] Univ Western Australia, Sch Earth Sci, Ctr Explorat Targeting, Crawley, WA 6009, Australia
[6] Univ Western Australia, Sch Earth Sci, Ctr Excellence Core Crust Fluid Syst CCFS, Australian Res Council, Crawley, WA 6009, Australia
基金
中国国家自然科学基金;
关键词
Porphyry Cu-Au deposit; Oxygen fugacity (fO(2)); Fractional crystallization; Magma mixing; Geothermobarometer; Pulang; RARE-EARTH-ELEMENTS; MAGMATIC OXYGEN FUGACITY; U-PB GEOCHRONOLOGY; TI-IN-ZIRCON; OXIDATION-STATE; COPPER-DEPOSIT; SW CHINA; PARTITION-COEFFICIENTS; ZHONGDIAN ARC; MELT INCLUSIONS;
D O I
10.1007/s00410-019-1546-x
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Some porphyry Cu-Au deposits with relatively reduced ore assemblages, characterized by high hydrothermal pyrrhotite contents and a lack of primary hematite and magnetite, are generally considered to be associated with reduced I-type granitoids. However, the role of magmatic oxygen fugacity (fO(2)) in controlling Cu-Au mineralization in such reduced porphyry deposits is poorly understood. The giant Late Triassic (ca 216Ma) Pulang porphyry Cu-Au deposit of southwest China shows typical reduced ore assemblages. This study reported the systematical variation of upper crustal magmatic fO(2) of Pulang deposit, based on detailed investigations of mineral crystallization sequences and compositional features of the mineralization-related porphyries (early P1 and late P2 porphyry). Results indicate that magma of the mineralization-related porphyries experienced complex fO(2) fluctuations during its upper crustal evolution. The early primary magma had very high initial fO(2), with FMQ+3.0at depths of >12km [FMQ is the deviation of logfO(2) from the fayalite-magnetite-quartz (FMQ) buffer]. The fO(2) of evolved parental magma subsequently decreased, with FMQ+1.9, due to injection of relatively reduced dioritic magmas (FMQ=+1.4 to +2.3) from a deeper chamber (17-21km depth) into the primary magma chamber at 10-12km depth. Magma mixing had largely ceased at 6-10km depth. The parental magma then ponded within the reduced Tumugou formation at a depth of similar to 3.7km where magmatic fO(2) decreased to a moderately oxidized state (FMQ = similar to +1.6), and finally to a moderately reduced state [reflected by log(Fe2O3/FeO) ratios of <-0.5 for P1 porphyry] due to contamination of parental magma by wall-rock Tumugou Formation. This decrease of fO(2) in the parental magma resulted in separation of magmatic sulfide, and the subsequent exsolution of reduced ore fluids responsible for the generation of Pulang ore assemblages. The fO(2) of the residual parental magma increased after exsolution of the reduced fluids to FMQ values of +3.2 to +4.2 [also reflected by high log(Fe2O3/FeO) ratios of >-0.5 for P2 porphyry]. Results of this study of magmatic fO(2) indicate that porphyry magmas associated with reduced Pulang ore assemblages were initially generated as highly oxidized magma which was subsequently reduced through magma mixing and contamination by reduced sedimentary rocks of the Tumugou Formation. The sharp fO(2) decrease at very shallow depth prevented the early loss of Cu and Au because the magma remained oxidized until it was emplaced at similar to 3.7km depth. Moderately reduced magmas may thus have a genetic association with porphyry Cu-Au mineralization.
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页数:34
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