Origin of the Miocene porphyries and their mafic microgranular enclaves from Dabu porphyry Cu-Mo deposit, southern Tibet: implications for magma mixing/mingling and mineralization

被引:36
作者
Wu, Song [1 ,2 ]
Zheng, You-Ye [1 ,2 ,3 ]
Sun, Xiang [1 ,2 ,4 ]
Liu, Sheng-Ao [1 ,2 ]
Geng, Rui-Rui [1 ,2 ]
You, Zhi-Ming [1 ,2 ]
Ouyang, Hai-Tao [1 ,2 ]
Lei, Dong [1 ,2 ]
Zhao, Zhong-Ying [5 ]
机构
[1] China Univ Geosci, State Key Lab Geol Proc & Mineral Resources, Beijing, Peoples R China
[2] China Univ Geosci, Sch Earth Sci & Resources, Beijing, Peoples R China
[3] China Univ Geosci, State Key Lab Geol Proc & Mineral Resources, Wuhan 430074, Peoples R China
[4] Chinese Acad Sci, Inst Tibet Plateau Res, Key Lab Continental Collis & Plateau Uplift, Beijing, Peoples R China
[5] Petrochina Res Inst Petr Explorat & Dev, Beijing, Peoples R China
基金
中国国家自然科学基金;
关键词
LINZIZONG VOLCANIC SUCCESSIONS; CONTINENTAL COLLISION ZONES; ORE-BEARING PORPHYRIES; U-PB GEOCHRONOLOGY; ADAKITE-LIKE ROCKS; COPPER-DEPOSIT; LOWER CRUST; SLAB BREAKOFF; ARC MAGMAS; GEOCHEMICAL CONSTRAINTS;
D O I
10.1080/00206814.2014.880074
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The origin of magmas that are linked to economic mineralization in porphyry deposits formed in continental collisional belts is controversial. In this paper, we studied the mafic microgranular enclaves (MMEs) and their host monzogranite porphyries (HMPs) from the Dabu porphyry Cu-Mo deposit in southern Tibet. Zircon SHRIMP U-Pb ages indicate coeval formation for the MMEs and HMPs in middle Miocene time (∼15 Ma). The MMEs have high Mg# (50.7-60.8), low SiO2 (53.2-62.5 wt.%), and high Cr (95-175 ppm) contents, with positive εHf(t) values ranging from +3.4 to +9.4. These results, along with the presence of phlogopite, suggest that the MMEs were most likely generated by partial melting of a metasomatic lithospheric mantle source region. The HMPs have high Sr/Y (88.2-135.7), La/Yb (25.0-31.9) ratios, and moderate Mg# (46.2-49.3) values. They have the same εHf(t) values (+3.3 to +7.7) with arc-like Palaeogene rocks. The HMPs also show typical arc magma characteristics such as enrichment in LILEs (e.g. Rb, Ba, Sr, and K) and depletion in HFSEs (e.g. Nb, Ta, Ti, Zr, and P). These results suggest a possible origin involving high-pressure remelting of thickened lower crustal arc cumulates related to earlier Neo-Tethyan subduction. The lower crustal arc cumulates dominated by garnet-bearing amphibolite facies could be the potential copper sources of the Dabu porphyry Cu-Mo deposit. Underplating of the mantle-derived mafic magmas could have provided heat input for melting of the hydrous lower crust. Reaction between the mafic and felsic magmas might have further increased Cu concentrations and contributed to subsequent mineralization. © 2014 © 2014 Taylor & Francis.
引用
收藏
页码:571 / 595
页数:25
相关论文
共 153 条
[1]   High magmatic flux during Alpine-Himalayan collision: Constraints from the Kal-e-Kafi complex, central Iran [J].
Ahmadian, Jamshid ;
Haschke, Michael ;
McDonald, Iain ;
Regelous, Marcel ;
RezaGhorbani, Mohammad ;
Emami, Mohammad Hashem ;
Murata, Mamoru .
GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 2009, 121 (5-6) :857-868
[2]  
[Anonymous], 1960, USGS PROF PAP
[3]   Petrology and geochemistry of calc-alkaline volcanic and subvolcanic rocks, Dalli porphyry copper-gold deposit, Markazi Province, Iran [J].
Ayati, Farimah ;
Yavuz, Fuat ;
Asadi, Hooshang H. ;
Richards, Jeremy P. ;
Jourdan, Fred .
INTERNATIONAL GEOLOGY REVIEW, 2013, 55 (02) :158-184
[4]   MANTLE METASOMATISM - CONTINUING CHEMICAL-CHANGE WITHIN THE EARTH [J].
BAILEY, DK .
NATURE, 1982, 296 (5857) :525-530
[5]   GENESIS AND EVOLUTION OF MAFIC MICROGRANULAR ENCLAVES THROUGH VARIOUS TYPES OF INTERACTION BETWEEN COEXISTING FELSIC AND MAFIC MAGMAS [J].
BARBARIN, B ;
DIDIER, J .
TRANSACTIONS OF THE ROYAL SOCIETY OF EDINBURGH-EARTH SCIENCES, 1992, 83 :145-153
[6]   Magma mixing and mingling textures in granitoids: examples from the Galway Granite, Connemara, Ireland [J].
Baxter, S ;
Feely, M .
MINERALOGY AND PETROLOGY, 2002, 76 (1-2) :63-74
[7]   MORB ALTERATION - RARE-EARTH ELEMENT NON-RARE-EARTH HYGROMAGMAPHILE ELEMENT FRACTIONATION [J].
BIENVENU, P ;
BOUGAULT, H ;
JORON, JL ;
TREUIL, M ;
DMITRIEV, L .
CHEMICAL GEOLOGY, 1990, 82 (1-2) :1-14
[8]   TEMORA 1: a new zircon standard for Phanerozoic U-Pb geochronology [J].
Black, LP ;
Kamo, SL ;
Allen, CM ;
Aleinikoff, JN ;
Davis, DW ;
Korsch, RJ ;
Foudoulis, C .
CHEMICAL GEOLOGY, 2003, 200 (1-2) :155-170
[9]   The Lu-Hf isotope geochemistry of chondrites and the evolution of the mantle-crust system [J].
BlichertToft, J ;
Albarede, F .
EARTH AND PLANETARY SCIENCE LETTERS, 1997, 148 (1-2) :243-258
[10]   THE IMPORTANCE OF RESIDUAL SOURCE MATERIAL (RESTITE) IN GRANITE PETROGENESIS [J].
CHAPPELL, BW ;
WHITE, AJR ;
WYBORN, D .
JOURNAL OF PETROLOGY, 1987, 28 (06) :1111-1138