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    Volume 31 Issue 3
    May  2006
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    ZHENG You-ye, GAO Shun-bao, ZHANG Da-quan, ZHANG Gang-yang, MA Guo-tao, CHENG Shun-bo, 2006. Ore-Forming Fluid Controlling Mineralization in Qulong Super-Large Porphyry Copper Deposit, Tibet. Earth Science, 31(3): 349-354.
    Citation: ZHENG You-ye, GAO Shun-bao, ZHANG Da-quan, ZHANG Gang-yang, MA Guo-tao, CHENG Shun-bo, 2006. Ore-Forming Fluid Controlling Mineralization in Qulong Super-Large Porphyry Copper Deposit, Tibet. Earth Science, 31(3): 349-354.

    Ore-Forming Fluid Controlling Mineralization in Qulong Super-Large Porphyry Copper Deposit, Tibet

    • Received Date: 2005-07-16
    • Publish Date: 2006-05-25
    • The Qulong porphyry copper deposit is the largest recently found in the Gangdise metallogenic belt. It was formed in the Miocene. The original fluid inclusions can be divided into five types according to the compositions of liquid, gas and single minerals The temperature of the main ore-forming phase ranges from 240 to 650 ℃ and the salinity is about 0.18wt.%-52.04wt.%. The fluids can be classified into two types including high salinity and high density, low salinity and low density. Daughter mineral inclusions, liquid and gas inclusions are coexistent and their homogeneous temperature is approximate, however salinity is quite different, showing that the fluid underwent the process of boiling. A study of the H and O isotopes and trace and rare elements of a single mineral indicates that the mineralization substance comes from the system of porphyry magma and fluid belonging to the NaCl (F) -KCl (F) -C2H6-HCO3-CaSO4 type fluid, which comes from magma and natural hot-brine. The fluid is characteristically reducing and acid, with high temperature, high salinity, high mineralization degree, and high oxygen fugacity.The fluid has high concentrations of Na+, K+, Cl-, SO42-, CO2 etc., with high F-(F-/Cl- > 1, average 5.66), which was good for the transfer of Fe2+ and Cu2+, finally concentrated and formed the deposit, and is the necessary condition for the Qulong super-large porphyry copper deposit to form. Decompression and the mixing of different quality fluids is the main mechanism for the depositing of metalions. The mineralizated depth is also discussed and could be regarded as the prospecting base of mineral deposit.

       

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    • Wang, Z. G., Zhang, Z. X., 1991. Calculation code of physical and chemical parameters of composition in fluid inclusion in minerals. Geology and Prospecting, 27 (7): 22-27 (in Chinese with English abstract).
      Zheng, Y. Y., Xue, Y. X., Cheng, L. J., etal., 2004. Finding, characteristics and significances of Qulong superlarge porphyry copper (molybdenum) deposit, Tibet. Earth Science—Journal of China University of Geosciences, 29 (1): 103-108 (in Chinese with English abstract).
      Zhu, H. P., Wang, L. J., 2001. Quadrupole mass spectrometer analy sis of gases fluid inclusion. Science in China (Series D), 31 (7): 586-590 (inChinese).
      王真光, 张姿旭, 1991. 矿物包裹体成分物理化学参数的计算程序. 地质与勘探, 27 (7): 22-27. https://www.cnki.com.cn/Article/CJFDTOTAL-DZKT199107004.htm
      郑有业, 薛迎喜, 程力军, 等, 2004. 西藏驱龙超大型斑岩铜(钼) 矿床: 发现、特征及意义. 地球科学———中国地质大学学报, 29 (1): 103-108. https://www.cnki.com.cn/Article/CJFDTOTAL-DQKX200401018.htm
      朱和平, 王莉娟, 2001. 四极质谱测定流体包裹体中的气相. 中国科学(D辑), 31 (7): 586-590. https://www.cnki.com.cn/Article/CJFDTOTAL-JDXK200107007.htm
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