Controlling factors of sphalerite and galena deposition in Baiyinnuo'er skarn deposit, Inner Mongolia, China

MA Wanli, YANG He, WANG Keyong

Global Geology ›› 2020, Vol. 23 ›› Issue (3) : 135-148.

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Global Geology ›› 2020, Vol. 23 ›› Issue (3) : 135-148. DOI: 10.3969/j.issn.1673-9736.2020.03.01
Articles

Controlling factors of sphalerite and galena deposition in Baiyinnuo'er skarn deposit, Inner Mongolia, China

  • MA Wanli1, YANG He1, WANG Keyong1,2
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Abstract

The temperature, pH, fO2 and Cl- activity have been considered to be significant physicochemical parameters which controlled sulphide mineralization. Especially, the change of pH is considered to play one of the key roles in skarn deposit because of the involvement of marble. But few scholars have evaluated the impact of each parameter on mineralization. In this study, the authors have constructed thermodynamic model, calculated the important aqueous species activities in Baiyinnuo'er deposit, and evaluated the influence of these parameters on the solubility of Pb and Zn. The results show that the logfO2 decreased from -33.834 to -39.256, pH decreased from 4.0 to 3.7 and the Cl- activity increased from 0.25 to 0.30 in the main mineralization stage. The effect of fO2 was readily ruled out because the reaction of Pb and Zn precipitation did not involve changes in the valence of the element. The decreased pH was impossible to be a mineralization factor, which was confirmed by metal solubility evaluation. The Cl- activity was also considered to be a negative factor. In fact, the dominant factor of mineralization was temperature, not the combination of various parameters as previously thought. Even in the skarn stage, the main factor to make the metal solubility >10% was also the high temperature. A significant increase in pH only occurred in the post-ore stage in response to the production of large amount of calcite.

Key words

Inner Mongolia / Baiyinnuo'er deposit / thermodynamics

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MA Wanli, YANG He, WANG Keyong. Controlling factors of sphalerite and galena deposition in Baiyinnuo'er skarn deposit, Inner Mongolia, China[J]. Global Geology. 2020, 23(3): 135-148 https://doi.org/10.3969/j.issn.1673-9736.2020.03.01

References

Baker T, Achterberg E, Ryan C G,et al. 2004. Composition and evolution of ore fluids in a magmatic-hydrothermal skarn deposit.Geology,32(2):117-120.
Baker T, Lang J R. 2003. Reconciling fluid inclusions, fluid processes and fluid source in skarns:An example from the Bismark skarn deposit, Mexico.Mineralium Deposita,38(4):474-495.
Barnes H L.1979. Geochemistry of hydrothermal ore deposits. New York:Wiley Interscience, 798.
Bertelli M, Baker T, Cleverly J S,et al. 2009. Geochemical modeling of a Zn-Pb skarn:Constraints from LA-ICP-MS analysis of fluid inclusions.Journal of Geochemical Exploration,102(1):13-26.
Bodnar R J. 1993. Revised equation and table for determining the freezing point depression of H2O-NaCl solutions.Geochimica et Cosmochimica Acta,57(3):683-684.
Burnham C W. 1979. Magmas and hydrothermal fluids//Barnes H L. (ed.) Geochemistry of hydrothermal ore deposits:2nd ed. New York:John Wiley and Sons, 71-136.
Chen Y J, Chen H Y, Zaw K,et al. 2007. Geodynamic settings and tectonic model of skarn gold deposits in China:an overview.Ore Geology Reviews,31:139-169.
Hedenquist J W, Arribas A, Reynolds T J. 1998. Evolution of an intrusion centered hydrothermal system:Far Southeast-Lepanto porphyry and epithermal Cu-Au deposit.Econo-mic Geology,93(4):373-404.
Helgeson H C, Kirkham D H, Flowers G C. 1981. Theoretical prediction of the thermodynamic behavior of aqueous electrolytes at high pressures and temperatures:IV. calculation of activity coefficients, osmotic coefficients, and apparent molal and standard and relative partial molal pro-perties to 600℃ and 5 kb.American Journal of Science,281(10):1249-1516.
Hennet R J C, Crerar D A, Schwartz J. 1988. Organic complexes in hydrothermal systems.Economic Geology,83:742-764.
Hezarkhani A, Williams-Jones A E, Gammons C H. 1999. Factors controlling copper solubility and chalcopyrite deposition in the Sungun porphyry copper deposit, Ira.Mine-ralium Deposita,34(8):770-783.
Mao J W, Xie G Q, Zhang Z H,et al. 2005. Mesozoic large-scale metallogenic pluses in North China and correspon-ding geodynamic settings.Acta Petrologica Sinica,21(1):169-188. (in Chinese with English abstract)
Meinert L D, Hefton K K, Mayes D,et al. 1997. Geology, zonation, and fluid evolution of the Big Gossan Cu-Au skarn deposit, Ertsberg district, Irian Jaya.Economic Geo-logy,92(5):509-534.
Meinert L D. 2003. Formation of anhydrous and hydrous skarn in Cu-Au ore deposits by magmatic fluids.Economic Geo-logy,98(1):147-156.
Li J Y. 2006. Permian geodynamic setting of Northeast China and adjacent regions:closure of the Paleo-Asian Ocean and subduction of the Paleo-Pacific Plate.Journal of Asian Earth Sciences,26(3):207-224.
Jahn B M. 2004. The Central Asian Orogenic Belt and growth of the continental crust in the Phanerozoic//Malpas J, Fletcher C J N, Ali J R,et al. (Eds.) Aspects of the tectonic evolution of China. London:Geological Society of London, 73-100.
Jiang S H, Nie F J, Bai D H,et al. 2011. Geochronology evidence for indosinian mineralization in Baiyinnuoer Pb-Zn deposit of Inner Mongolia.Mineral Deposits,30(5):787-798. (in Chinese with English abstract)
Johnson J W, Oelker E H, Helgeson H C. 1992. SUPCRT92:A software package for calculating the standard molal thermo-dynamic properties of minerals, gases, aqueous species, and reactions from 1 to 5 000 bar and 0℃ to 1 000℃.Computers in Geoscience,18:899-947.
Kamenetsky V S, van Achterbergh E, Ryan C G,et al.2002. Extreme chemical heterogeneity of granite-derived hydrothermal fluids:An example from inclusions in a single crystal of miarolitic quartz.Geology,30:459-462.
Kwak T A P, Tan T H. 1981. The importance of CaCl2 in fluid composition trends evidence from the King Island (Dophin) skarn deposit.Economic Geology,76:955-960.
Kulik D A, Wagner T, Dmytrieva S V,et al. 2013. GEM-Selektor geochemical modeling package:revised algorithm and GEMS3K numerical kernel for coupled simulation codes.Computational Geosciences,17(1):1-24.
Ouyang H G, Mao J W, Santosh M,et al. 2014. The Early Cretaceous Weilasituo Zn-Cu-Ag vein deposit in the sou-thern Great Xing'an Range, northeast China:fluid inclusions, H, O, S, Pb isotope geochemistry and genetic implications.Ore Geology Review,56:503-515.
Pettke T, Oberli F, Audétat A,et al.2012. Recent developments in element concentration and isotope ratio analysis of individual fluid inclusions by laser ablation single and multiple collector ICP-MS.Ore Geology Reviews,44:10-38.
Qi J P, Chen Y J, Pirajno F. 2005. Geological characteristics and tectonic setting of the epithermal deposits in the northeast China.Journal of Mineralogy and Petrology,25(2):47-59 (in Chinese with English abstract).
Robinson B W, Ohmoto H. 1973. Mineralogy, fluid inclusions, and stable isotopes of the Echo Bay U-Ni-Cu depo-sit, northwest Territories, Canda.Economic Geology,68(5):635-656.
Samson I M, Williams-Jones A E, Ault K M,et al. 2008. Source of fluids forming distal Zn-Pb-Ag skarns:evidence from laser ablation-inductively coupled plasma-mass spectrometry analysis of fluid inclusions from E1 Mochito, Honduras.Geology,36:947-950.
Shu Q, Chang Z, Hammerli J,et al. 2017. Composition and evolution of fluids forming the Baiyinnuo'er Zn-Pb skarn deposit, northeastern China:insights from laser ablation ICP-MS study of fluid inclusions.Economic Geology,112(6):1441-1460.
Shu Q, Lai Y, Sun Y,et al. 2013. Ore genesis and hydrothermal evolution of the Baiyinnuo er zinc-lead skarn deposit, northeast China:Evidence from isotopes (S, Pb) and fluid inclusions.Economic Geology,108(4):835-860.
Sun M D, Xu Y G, Wilde S A, et al.2015. The Permian Dongfanghong island-arc gabbro of the Wandashan orogen, NE China:implications for paleo-Pacific subduction.Tectonophysics,659:122-136.
Wagner T, Kulik D A, Hingerl F F,et al. 2012. GEM-Selektor geochemical modeling package:TSolMod library and data interface for multicomponent phase models.Canadian Mineralogist,50(5):1173-1195.
Wang F, Zhou X H, Zhang L C,et al. 2006. Late Mesozoic volcanism in the Great Xing'an Range (NE China):ti-ming and implications for the dynamic setting of NE Asia.Earth and Planetary Science Letters,251(1/2):179-198.
Wilde S A. 2015. Final amalgamation of the Central Asian Orogenic Belt in NE China:Paleo-Asian Ocean closure versus Paleo-Pacific plate subduction-a review of the evidence.Tectonophysics,662:345-362.
Wilde S A, Zhou J B. 2015. The Late Paleozoic to Mesozoic evolution of the eastern margin of the Central Asian Orogenic Belt in China.Journal of Asian Earth Sciences,113:909-921.
Williams-Jones A E, Samson I M, Ault K M, et al.2010. The genesis of distal zinc skarns:evidence from the Mochito deposit, Honduras.Economic Geology,105(8):1411-1440.
Wu F Y, Lin J Q, Wilde S A,et al. 2005. Nature and significance of the early cretaceous giant igneous event in eastern China.Earth and Planetary Science Letters,233(1/2):103-119.
Wu F Y, Sun D Y, Li H M,et al. 2002. A-type granites in Northeastern China:age and geochemical constraints on their petrogenesis.Chemical Geology,187(1/2):143-173.
Wu F Y, Sun D Y, Ge W C,et al. 2011. Geochronology of the Phanerozoic granitoids in northeastern China.Journal of Asian Earth Sciences,41(1):1-30.
Xiao W J, Zhang L C, Qin K Z,et al. 2004. Paleozoic accretionary and collisional tectonics of the eastern Tianshan China:implication for the continental growth of central Asia.American Journal of Science,304:370-395.
Yang J H, Wu F Y, Wilde S A,et al. 2008. Petrogenesis and geodynamics of Late Archean magmatism in the eastern North China Craton:geochronological, geochemical and Nd Hf isotopic evidence.Precambrian Research,167(1/2):125-149.
Yu Q, Wang K Y, Han Y,et al. 2015. Metallogenic fluid characteristics of Baiyinnuo'er Pb-Zn deposit of Inner Mongolia.Global Geology,34(1):102-112. (in Chinese with English abstract)
Zhai D G, Liu J J, Tombros S,et al. 2018a. The genesis of the Hashitu porphyry molybdenum deposit, Inner Mongolia, NE China:constraints from mineralogical, fluid inclusion, and multiple isotope (H, O, S, Mo, Pb) stu-dies.Mineralium Deposita,53(3):377-397.
Zhai D G, Liu J J, Cook N J,et al. 2018b. Ag-Pb-Zn minera-lization at Bianjiadayuan, Inner Mongolia, NE China.Mineralium Deposita,54(1):47-66.
Zhai D G, Liu J J, Wang J P,et al. 2013.Fluid evolution of the Jiawula Ag-Pb-Zn deposit, Inner Mongolia:mineralo-gical, fluid inclusion, and stable isotopic evidence.International Geology Review,55(2):204-224.
Zhai D G, Liu J J, Zhang H Y,et al. 2014. S-Pb isotopic geochemistry, U-Pb and Re-Os geochronology of the Huanggangliang Fe-Sn deposit, Inner Mongolia, NE China.Ore Geology Review,59:109-122.
Zhang D Q, Lei Y F, Luo T Y,et al. 1991. Geological characteristics and metallogeny of the Baiyinnuo er lead-zinc deposit, Inner Mongolia.Mineral Deposits,10:304-316. (in Chinese with English abstract).
Zhao Y M, Zhang D Q. 1997. Metallogeny and prospective evaluation of copper-polymetallic deposits in the Da Hinggan Mountains and its adjacent regions. Beijing:Seismological Press, 83-106. (in Chinese with English abstract)

Funding

Supported by Self-determined Foundation of Key Laboratory of Mineral Resources Evaluation in Northeast Asia, Ministry of Natural Resources (No. DBY-ZZ-18-12).
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