Tectonic Evolution and Structural Control of Dike-Hosted Orogenic Gold Deposits in the Yana–Kolyma Collision Orogen (Eastern Siberia): Insights from the Eastern Margin of the Siberian Craton
Abstract
:1. Introduction
2. Regional Geology, Magmatism, and Metallogenic Setting
2.1. Regional Geology
2.2. Magmatism
2.2.1. Main Kolyma Batholith Belt
2.2.2. Uyandina–Yasachnaya Volcanic Belt
2.2.3. Transverse Magmatic Series
2.3. Regional Metallogeny
2.3.1. Orogenic Metallogeny
2.3.2. Post-Orogenic Metallogeny
2.4. District Geology and Mineralization
3. Materials and Methods
4. Results
4.1. Structural Analysis of Two Au Districts in the Parautochthon of the Charky–Indigirka Thrust
4.1.1. Vyun Gold Deposit
4.1.2. The Shumny Area
4.2. Structural Analysis of the Allochthon of the Charky–Indigirka Thrust
5. Discussion
5.1. Style of Deformation, Space–Time Distribution, and Structural Control
5.1.1. Pre-Mineralization
5.1.2. Mineralization
5.1.3. Post-Mineralization
5.2. Correlation Mineralization and Regional Deformation
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Features | Deformation Events | |||
---|---|---|---|---|
D1 | D2 | D3 | D4 | |
Structures | NW-SE folds (F1/1) with a steep axial surface Sas1/1 and b1/1 dipping 0° to 10°; S1: interlayer decollements, intrastratal ramps, NW thrusts, transverse and oblique ramps, cleavage of the fault, boudinage (L1/1); slickenlines downdip the rocks (l1); N-W folds F1/2 b with gently dipping axial surface Sas1/2 and b1/2 dipping 0° to 10° | S-type N-S, NW-SE, NE-SW folds (F2) with b2 dipping 40° to 80°; S2: NW-SE sinistral strike-slip fault, horizontal slickenlines (l2) | Z-type E-W folds (F3) with b3 dipping 40° to 80°; NW-SE dextral strike-slip fault, horizontal slickenlines (l3), boudinage (L3) | Low-amplitude NE and NNW normal faults S4, slickenlines downdip the faults |
Kinematics of NW faults | Thrust | Sinistral strike-slip fault | Dextral strike-slip fault | Normal fault |
Mineralization | Au Ore veins and disseminated refractory ores | Au-Sb Ore veins | ||
Metamorphism | Greenschist metamorphism of the wall rock | |||
Magmatism, age | Pre-ore magmatism: mafic, intermediate, and felsic dikes, strike NE-SW 151–145 Ma; granitoids, 144.5 Ma | |||
Orientation maximum principal stress | NE-SW | E-W | N-S | W-E |
Graphical model |
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Fridovsky, V.Y.; Kudrin, M.V. Tectonic Evolution and Structural Control of Dike-Hosted Orogenic Gold Deposits in the Yana–Kolyma Collision Orogen (Eastern Siberia): Insights from the Eastern Margin of the Siberian Craton. Geosciences 2025, 15, 168. https://doi.org/10.3390/geosciences15050168
Fridovsky VY, Kudrin MV. Tectonic Evolution and Structural Control of Dike-Hosted Orogenic Gold Deposits in the Yana–Kolyma Collision Orogen (Eastern Siberia): Insights from the Eastern Margin of the Siberian Craton. Geosciences. 2025; 15(5):168. https://doi.org/10.3390/geosciences15050168
Chicago/Turabian StyleFridovsky, Valery Yurievich, and Maxim Vasilievich Kudrin. 2025. "Tectonic Evolution and Structural Control of Dike-Hosted Orogenic Gold Deposits in the Yana–Kolyma Collision Orogen (Eastern Siberia): Insights from the Eastern Margin of the Siberian Craton" Geosciences 15, no. 5: 168. https://doi.org/10.3390/geosciences15050168
APA StyleFridovsky, V. Y., & Kudrin, M. V. (2025). Tectonic Evolution and Structural Control of Dike-Hosted Orogenic Gold Deposits in the Yana–Kolyma Collision Orogen (Eastern Siberia): Insights from the Eastern Margin of the Siberian Craton. Geosciences, 15(5), 168. https://doi.org/10.3390/geosciences15050168