Geochronology and Geochemistry of the Xianghualing Granitic Rocks: Insights into Multi-Stage Sn-Polymetallic Mineralization in South China
Abstract
:1. Introduction
2. Geological Background
3. Sampling and Analytical Techniques
4. Results
4.1. Whole-Rock Major and Trace Elements
4.2. Zircon U-Pb Geochronology
4.3. Zircon Morphology and Textures
4.4. Zircon Trace Element Geochemistry
4.5. Discrimination of Zircon Types
5. Discussion
5.1. Classification and Tectonic Setting of Granites
5.2. Magma Evolution and Provenance Characteristics
5.3. Magmatic Intrusion and Metallogenic Age
5.4. Properties and Sources of Ore-Forming Fluids
5.5. Multi-Mineralization Events
6. Conclusions
- The granites in the Xianghualing orefield are high in SiO2, Rb, Nd, Ta and Th, but low in Mg, Sr, Ti and P. The 431 aplite dyke is an A2 type peraluminous granite, whereas other granites belong to the A1 type. These A-type granites originated from partial melting of the lower crust due to decompression in an extensional within-plate environment, and later underwent significant fractional crystallization, fluid differentiation, assimilation, and contamination.
- LA-ICP-MS U-Pb dating results show that there are multiple ages and types of zircons in granites in the Xianghualing ore field, including zircons from Paleozoic (~347 Ma) and Triassic (~206 Ma) magmatic rocks, Jurassic (~161 Ma) magmatic zircons, and Early Cretaceous (~120 Ma) and Late Cretaceous (~80 Ma) hydrothermal altered zircons.
- U-Pb dating and trace element analytical results for zircons from the three plutons indicate that the ore-forming fluids associated with tin mineralization during the Cretaceous (120–80 Ma) are crust-derived, highly differentiated, and evolved P-rich and F-rich hydrothermal fluids under reducing conditions. In addition, mantle materials contributed to magma formation in the Paleozoic (~347 Ma) and Triassic (~206 Ma), suggesting that these two periods of magmatism may have led to the initial enrichment of tin elements preceding the Jurassic and Cretaceous mineralization. The Late Cretaceous (~80 Ma) zircons may be a product of superimposed alteration by cryogenic hydrothermal fluids associated with Cretaceous magmatism (relatively large intrusions at depth and/or high-level small dykes).
- The following multi-stage magmatic evolution model of the Xianghualing ore field is proposed in this paper: Paleozoic (~347 Ma) and Triassic (~206 Ma) magmatic events resulted in initial enrichment of ore-forming elements, Jurassic (~161 Ma) magmatic-hydrothermal activity gave rise to the main mineralization stage, and hydrothermal fluids developed in the Cretaceous overprinted and modified earlier mineralization with peaks in the Early Cretaceous ~120 Ma and Late Cretaceous ~80 Ma.
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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No. | Sample No. | Pluton | Location | Rock Type |
---|---|---|---|---|
1 | XHL16-2 | Laiziling | 431dyke | aplite |
2 | XHL17-1 | Mashibei | granite porphyry | |
3 | XHL18-5 | Tongtianmiao | granite | |
4 | XHL18-8-1 | Jianfengling | albite granite | |
5 | XHL18-8-2 | albite granite | ||
6 | XHL18-8-3 | albite granite | ||
7 | XHL18-8-4 | albite granite | ||
8 | XHL18-9 | biotite granite | ||
9 | XHL18-10 | K-feldspar granite | ||
10 | XHL18-11 | lepidolite granite |
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Luo, Z.; Li, H.; Wu, J.; Sun, W.; Zhou, J.; Maulana, A. Geochronology and Geochemistry of the Xianghualing Granitic Rocks: Insights into Multi-Stage Sn-Polymetallic Mineralization in South China. Minerals 2022, 12, 1091. https://doi.org/10.3390/min12091091
Luo Z, Li H, Wu J, Sun W, Zhou J, Maulana A. Geochronology and Geochemistry of the Xianghualing Granitic Rocks: Insights into Multi-Stage Sn-Polymetallic Mineralization in South China. Minerals. 2022; 12(9):1091. https://doi.org/10.3390/min12091091
Chicago/Turabian StyleLuo, Zhaoyang, Huan Li, Jinghua Wu, Wenbo Sun, Jianqi Zhou, and Adi Maulana. 2022. "Geochronology and Geochemistry of the Xianghualing Granitic Rocks: Insights into Multi-Stage Sn-Polymetallic Mineralization in South China" Minerals 12, no. 9: 1091. https://doi.org/10.3390/min12091091
APA StyleLuo, Z., Li, H., Wu, J., Sun, W., Zhou, J., & Maulana, A. (2022). Geochronology and Geochemistry of the Xianghualing Granitic Rocks: Insights into Multi-Stage Sn-Polymetallic Mineralization in South China. Minerals, 12(9), 1091. https://doi.org/10.3390/min12091091