Genesis and hydrothermal evolution of the Zhazigou skarn W (Mo) deposit, East Qinling, China: Constraints from fluid inclusions and H-O-S-Pb isotopes

被引:10
作者
Xue, Liwei [1 ]
Wang, Gongwen [1 ]
Tang, Li [1 ]
Cao, Yi [1 ]
Du, Jingguo [2 ]
Du, Yangsong [1 ]
Luo, Liping [3 ]
Cheng, Hongtao [4 ]
机构
[1] China Univ Geosci, Sch Earth Sci & Resources, Beijing 100083, Peoples R China
[2] ChangAn Univ, Sch Earth Sci & Resources, Xian 710054, Peoples R China
[3] Chinese Acad Geol Sci, Inst Multipurpose Utilizat Mineral Resources, Chengdu 100088, Peoples R China
[4] Xinbao Min Ltd Co, Luanchuan 471500, Peoples R China
基金
中国国家自然科学基金;
关键词
Fluid inclusion; Stable isotopes; Skarn; Zhazigou W (Mo) deposit; East Qinling; LOWER YANGTZE VALLEY; MESOZOIC MOLYBDENUM DEPOSITS; LUANCHUAN ORE DISTRICT; ZIRCON U-PB; STABLE-ISOTOPE; TIEN-SHAN; SCHEELITE SKARN; NORTH CHINA; CU SKARN; OXYGEN-ISOTOPE;
D O I
10.1016/j.oregeorev.2021.104374
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The Zhazigou is a typical redox-intermediate skarn W (Mo) deposit, located in the Luanchuan ore district within the East Qinling orogenic belt, central China. Skarn and W (Mo) orebodies are hosted mainly in the contact zones between the Yuku porphyritic granite and carbonaceous sedimentary rocks of the Luanchuan and Guandaokou groups. This paper presents detailed fluid inclusion (FI) and isotope data that are used to reconstruct the hydrothermal processes and explore the role of CO2 during scheelite precipitation at the Zhazigou. Four mineralization and alteration stages are recognized: anhydrous skarn (I), hydrous skarn (II), quartz-sulfide (III), and carbonate (IV). Systematic analysis of the FIs elucidates the evolution of hydrothermal fluids through these stages. Four primary types of FIs are recognized: two-phase liquid-rich inclusions (L-type), two-phase vapor-rich inclusions (V-type), halite-bearing (hypersaline) inclusions (H-type), and two-or three-phase CO2-bearing inclusions (C-type). In stage I, coexisting H-type (36.19-46.37 wt% NaCl equiv.) and low salinity V-type FIs have similar homogenization temperatures, indicating that fluid boiling during the formation of anhydrous skarn minerals occurred at 500-550 degrees C and 550-700 bar (2.0-2.5 km lithostatic depth). In stage II, coexisting V-and L type FIs in quartz and scheelite within quartz-scheelite f actinolite f tremolite veins have different salinities but similar homogenization temperatures, indicating they were also trapped in the boiling process at 350-380 degrees C and similar to 240 bar (1.8-2.8 km hydrostatic depth). In stage III, L-, V-, and minor H-type FIs have homogenization temperatures indicating continued fluid boiling at 300-340 degrees C and <100-200 bar (1.1-1.8 km hydrostatic depth). In stage IV, only minor primary L-type FIs were observed in quartz and calcite, which have lower salinities (0.88-11.34 wt% NaCl equiv.) and homogenization temperatures of 150-200 degrees C, reflecting typical post-ore conditions. The O and H isotope data from garnet, scheelite, and quartz indicate that the ore-forming fluids at the Zhazigou deposit have a dominantly magmatic water signature, with delta O-18(fluid) values from 7.9 to 1.8 parts per thousand and delta D-18(fluid) values from-99.1 to-84.4 parts per thousand. The S isotopic compositions, which range from 1.8 to 5.6 parts per thousand, and the relatively homogeneous Pb isotopic compositions, demonstrate that the ore-forming materials were dominantly derived from magmatic sources with only a minor contribution from sedimentary sources. Scheelite was precipitated as a result of fluid-rock interactions and/or fluid boiling, and the former released abundant Ca2+ by altering calcium-rich minerals (e.g., andradite, diopside, hedenbergite, and plagioclase) into the mineralizing fluids. Abundant C-type FIs occur in quartz within the hydrous skarn stage, providing evidence of CO2-rich fluids that would have decrease the pH and generated relatively acidic conditions to help precipitate scheelite.
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页数:20
相关论文
共 169 条
[61]   Fluid evolution of Triassic and Jurassic W mineralization in the Xitian ore field, South China: Constraints from scheelite geochemistry and microthermometry [J].
Liu, Biao ;
Li, Huan ;
Wu, Qian-Hong ;
Evans, Noreen J. ;
Cao, Jing-Ya ;
Jiang, Jiang-Bo ;
Wu, Jing-Hua .
LITHOS, 2019, 330 :1-15
[62]  
[刘国印 LIU Guoyin], 2007, [地质调查与研究, Geological Survey and Research], V30, P263
[63]   Carbon dioxide in magmas and implications for hydrothermal systems [J].
Lowenstern, JB .
MINERALIUM DEPOSITA, 2001, 36 (06) :490-502
[64]   Mineralization and fluid inclusion study of the Shizhuyuan W-Sn-Bi-Mo-F skarn deposit, Hunan province, Cehina [J].
Lu, HZ ;
Liu, YM ;
Wang, CL ;
Xu, YZ ;
Li, HQ .
ECONOMIC GEOLOGY AND THE BULLETIN OF THE SOCIETY OF ECONOMIC GEOLOGISTS, 2003, 98 (05) :955-974
[65]  
Lu HZ, 2004, Fluid Inclusion
[66]  
Luders V, 1996, ECON GEOL BULL SOC, V91, P1462
[67]  
Luo M.J., 1991, Molybdenum Deposits in China, P1
[68]   Stable isotope and fluid inclusion evidence for the origin of the Brandberg West area Sn-W vein deposits, NW Namibia [J].
Macey, Paul ;
Harris, Chris .
MINERALIUM DEPOSITA, 2006, 41 (07) :671-690
[69]  
MALININ SD, 1993, GEOCHEM INT, V30, P76
[70]   THE BEHAVIOR OF TUNGSTEN IN GRANITIC MELT-VAPOR SYSTEMS [J].
MANNING, DAC ;
HENDERSON, P .
CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1984, 86 (03) :286-293