Fluid Inclusion Characteristics and Genesis of the Galonggema Cu-Polymetallic Deposit, Qing Hai, China

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Authors

  • Key Laboratory of Metallogenic Prediction of Nonferrous Metals, Ministryof Education, School of Geosciences and Info-physics, Central South University, Changsha ,CN
  • Key Laboratory of Metallogenic Prediction of Nonferrous Metals, Ministryof Education, School of Geosciences and Info-physics, Central South University, Changsha ,CN
  • Key Laboratory of Metallogenic Prediction of Nonferrous Metals, Ministryof Education, School of Geosciences and Info-physics, Central South University, Changsha ,CN
  • Qinghai Nonferrous Metals Geological Exploration Institute, Qinghai ,CN
  • Qinghai Nonferrous Metals Geological Exploration Institute, Qinghai ,CN
  • Key Laboratory of Metallogenic Prediction of Nonferrous Metals, Ministryof Education, School of Geosciences and Info-physics, Central South University, Changsha ,CN

Keywords:

Fluid Inclusions, Ore-Forming Fluid, Galonggema, Deposit Genesis.

Abstract

The Galongema Cu-polymetallic deposit located at the joint area between the Jinwulan-Jinshajiang suture zone and Ganzi-Litang suture zone in the Tibetan Plateau have experienced the ancient Tethyan tectonic evolution and the Himalayan orogeny and is characterized by excellent metallogenic conditions. Fluid inclusion study on the basis of identifying different ore-forming stages provides insight into the genesis of this deposit. According to fluid inclusion petrography, there are two types of fluid inclusions, namely aqueous liquid-vapor inclusions and CO2-bearing inclusions. There are two identified primary ore-forming events, namely an early-stage volcanic-sedimentary hydrothermal event(A) and a late-stagemoderatetemperature hydrothermal event (B) that caused extensive precipitation of sulfides. Primary fluid inclusion assemblages formed at stages A3, B1 and B2 have been identified in the Galonggema deposit. According to microthermometric analysis, fluid evolution of the Galonggema deposit was not continuous and the fluids at different stages had different physicochemical properties. Fluid inclusion study shows that the fluids responsible for the early-stage mineralization were derived from volcanic exhalative activities with involvement of significant sea water. In contrast, the fluids responsible for the late-stage mineralization were derived from a more recent magma and were mixed with low-salinity ground water. In terms of deposit characteristics and ore-forming process, the Galonggema deposit is distinguishable from typical volcanogenic massive sulfide (VMS) deposits and the enrichment of ore-forming material was related to overprint of late hydrothermal alteration over a pre-existing sedimentary exhalative deposit. The tectonic evolution of the Galonggema deposit can be divided into three stages. The earliest stagewas represented by marine volcanic eruption that caused the early-stage volcanic-sedimentary (hydrothermal) mineralization. During the second stage, the Galonggema area experienced compression in NE-SW direction so that the strata were strongly folded to form an anticline with the volcanic vent as the centre. The latest stage represented moderate-temperature magmatic-hydrothermal mineralization related to emplacement of a late intermediate to felsic magma. The magmatic fluids that migrated up along the faulted belt superimposed the early-formed orebodies to form new mineralization and resulted in alteration of the country rock around the structural belt.

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Author Biography

Wenbing Song, Key Laboratory of Metallogenic Prediction of Nonferrous Metals, Ministryof Education, School of Geosciences and Info-physics, Central South University, Changsha

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Published

2022-10-19

How to Cite

Zhang, C., Lai, J., Wu, B., Zheng, Z., Wu, A., & Song, W. (2022). Fluid Inclusion Characteristics and Genesis of the Galonggema Cu-Polymetallic Deposit, Qing Hai, China. Journal of Mines, Metals and Fuels, 64(12), 645–652. Retrieved from http://informaticsjournals.com/index.php/jmmf/article/view/31629

 

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