Origin and Evolution of Ore-Forming Fluid and Gold-Deposition Processes at the Sanshandao Gold Deposit, Jiaodong Peninsula, Eastern China

被引:19
|
作者
Liu, Yazhou [1 ]
Yang, Liqiang [1 ]
Wang, Sirui [1 ]
Liu, Xiangdong [1 ]
Wang, Hao [1 ]
Li, Dapeng [2 ]
Wei, Pengfei [2 ]
Cheng, Wei [2 ]
Chen, Bingyu [3 ]
机构
[1] China Univ Geosci, State Key Lab Geol Proc & Mineral Resources, Beijing 100083, Peoples R China
[2] Minist Land & Resources, Key Lab Gold Mineralizat Proc & Resources Utiliza, Shandong Inst Geol Sci, Shandong Key Lab Geol Proc & Resource Utilizat Me, Jinan 250013, Shandong, Peoples R China
[3] Shandong Gold Min Stock Co Ltd, Sanshandao Gold Co, Laizhou 261442, Peoples R China
基金
中国国家自然科学基金;
关键词
fluid inclusion; stable isotopes; gold deposition; Sanshandao gold deposit; Jiaodong; ZIRCON U-PB; PORPHYRY MOLYBDENUM DEPOSIT; NORTH CHINA; OROGENIC GOLD; GEOCHEMICAL CONSTRAINTS; ISOTOPIC COMPOSITIONS; MESOZOIC GRANITOIDS; WESTERN-AUSTRALIA; METAL SOURCES; SULU OROGEN;
D O I
10.3390/min9030189
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
The Early Cretaceous Sanshandao gold deposit, the largest deposit in the Sanshandao-Cangshang goldfield, is located in the northwestern part of the Jiaodong peninsula. It is host to Mesozoic granitoids and is controlled by the north by northeast (NNE) to northeast (NE)-trending Sanshandao-Cangshang fault. Two gold mineralizations were identified in the deposit's disseminated and stockwork veinlets and quartz-sulfide veins, which are typically enveloped by broad alteration selvages. Based on the cross-cutting relationships and mineralogical and textural characteristics, four stages have been identified for both styles of mineralization: Pyrite-quartz (stage 1), quartz-pyrite (stage 2), quartz-pyrite-base metal-sulfide (stage 3), and quartz-carbonate (stage 4), with gold mainly occurring in stages 2 and 3. Three types of fluid inclusion have been distinguished on the basis of fluid-inclusion assemblages in quartz and calcite from the four stages: Pure CO2 gas (type I), CO2-H2O inclusions (type II), and aqueous inclusions (type III). Early-stage (stage 1) quartz primary inclusions are only type II inclusions, with trapping at 280-400 degrees C and salinity at 0.35 wt %-10.4 wt % NaCl equivalent. The main mineralizing stages (stages 2 and 3) typically contain primary fluid-inclusion assemblages of all three types, which show similar phase transition temperatures and are trapped between 210 and 320 degrees C. The late stage (stage 4) quartz and calcite contain only type III aqueous inclusions with trapping temperatures of 150-230 degrees C. The delta S-34 values of the hydrothermal sulfides from the main stage range from 7.7 parts per thousand to 12.6 parts per thousand with an average of 10.15 parts per thousand. The delta O-18 values of hydrothermal quartz mainly occur between 9.7 parts per thousand and 15.1 parts per thousand (mainly 10.7 parts per thousand-12.5 parts per thousand, average 12.4 parts per thousand); calculated fluid delta O-18 values are from 0.97 parts per thousand to 10.79 parts per thousand with a median value of 5.5 parts per thousand. The delta D-water values calculated from hydrothermal sericite range from -67 parts per thousand to -48 parts per thousand. Considering the fluid-inclusion compositions, delta O-18 and delta D compositions of ore-forming fluids, and regional geological events, the most likely ultimate potential fluid and metal would have originated from dehydration and desulfidation of the subducting paleo-Pacific slab and the subsequent devolatilization of the enriched mantle wedge. Fluid immiscibility occurred during the main ore-forming stage due to pressure decrease from the early stage (165-200 MPa) to the main stage (90-175 MPa). Followed by the changing physical and chemical conditions, the metallic elements (including Au) in the fluid could no longer exist in the form of complexes and precipitated from the fluid. Water-rock sulfidation and pressure fluctuations, with associated fluid unmixing and other chemical changes, were the two main mechanisms of gold deposition.
引用
收藏
页数:25
相关论文
共 50 条
  • [31] Geochemistry of Pyrite from the Jiaojia Gold Deposit, Jiaodong Peninsula, North China Craton: Implications for Source of Ore-Forming Fluids and Gold Precipitation
    Fang, Yayi
    Liang, Yayun
    Xia, Rui
    Shu, Lei
    He, Bi
    Xue, Wenhao
    Zhang, Chenxi
    Wang, Haiyi
    Xue, Senmiao
    APPLIED SCIENCES-BASEL, 2025, 15 (03):
  • [32] Deep ore-forming fluid characteristics of the Jiaodong gold province: Evidence from the Qianchen gold deposit in the Jiaojia gold belt
    Wu, Jinjian
    Zeng, Qingdong
    Santosh, M.
    Fan, Hongrui
    Bai, Rui
    Li, Xinghui
    Zhang, Zheming
    Zhang, Yongwen
    Huang, Liangliang
    ORE GEOLOGY REVIEWS, 2022, 145
  • [33] Ore geology, fluid inclusion, and stable isotope constraints on the origin of the Damoqujia gold deposit, Jiaodong Peninsula, China
    Chai, Peng
    Zhang, Hong-rui
    Hou, Zeng-qian
    Zhang, Zhi-yu
    Dong, Lei-lei
    CANADIAN JOURNAL OF EARTH SCIENCES, 2020, 57 (12) : 1428 - 1446
  • [34] Fluid Evolution from 0 to 4000m Depth in the Giant Sanshandao Gold Deposit, Jiaodong Gold Province, China: Implication for Ore Genesis
    Fan, Hong-Rui
    Wen, Bo-Jie
    Hu, Fang-Fang
    Yang, Kui-Feng
    MINERAL RESOURCES IN A SUSTAINABLE WORLD, VOLS 1-5, 2015, : 453 - 456
  • [35] Ore-forming processes in the Drazhnoe gold–quartz deposit (Eastern Yakutia, Russia)
    V. V. Aristov
    V. Yu. Prokofiev
    B. N. Imamendinov
    S. G. Kryazhev
    V. Yu. Alekseev
    A. A. Sidorov
    Doklady Earth Sciences, 2015, 464 : 879 - 884
  • [36] Characteristics of ore-forming fluid and sources of ore-forming material in the Yangzhaiyu gold deposit, Xiaoqinling gold district
    Wu, Tong
    Liu, Jiajun
    Carranza, Emmanuel John M.
    Zhai, Degao
    Chang, Ming
    Yin, Chao
    Wang, Dazhao
    ORE GEOLOGY REVIEWS, 2025, 180
  • [37] Volatiles in fluid inclusions from Sanshandao gold deposit in Jiaodong
    Guo, C.
    Deng, J.
    Yang, L.
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2009, 73 (13) : A478 - A478
  • [38] Numerical Simulation of Hydrothermal Alteration Chemical Reactions During Ore-forming Process of the Jiaojia Gold Deposit, Jiaodong Peninsula, China
    Zou Y.
    Zhang W.
    Mao X.
    Liu Z.
    Geotectonica et Metallogenia, 2023, 47 (05) : 1158 - 1172
  • [39] Fluid immiscibility and gold deposition in the Xincheng deposit, Jiaodong Peninsula, China: A fluid inclusion study
    Wang, Zhong-Liang
    Yang, Li-Qiang
    Guo, Lin-Nan
    Marsh, Erin
    Wang, Jian-Ping
    Liu, Yue
    Zhang, Chao
    Li, Rui-Hong
    Zhang, Liang
    Zheng, Xiao-Li
    Zhao, Rong-Xin
    ORE GEOLOGY REVIEWS, 2015, 65 : 701 - 717
  • [40] Fluid inclusions characteristics and ore-forming evolution of Jinwozi gold deposit.
    Pan, XF
    Liu, W
    ACTA PETROLOGICA SINICA, 2006, 22 (01) : 253 - 263