Submitted:
16 June 2026
Posted:
23 June 2026
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Geological and Tectonic Setting
2.1. Regional Framework
2.2. Basement and Cover
2.3. Magmatism, Faulting, and Seismicity
2.4. Concentric Structures of the Study Area
3. Materials and Methods
3.1. Geophysical and Remote-Sensing Datasets
3.2. Potential-Field Reduction and Separation
3.3. Spectral Depth Estimation
3.4. Three-Dimensional Inversion
3.5. Seismic Interpretation
3.6. GIS-Based Integration and Software
4. Results
4.1. Gravity Field and Density Structure
4.2. Magnetic Anomalies and Magnetization
4.3. Spectral Depth Estimates
4.4. Seismic Constraints on Crustal Architecture
4.5. Integrated Crustal Model
5. Discussion
5.1. Deeply Rooted, Fault-Controlled Structures
5.2. A Tectono-Magmatic Origin
5.3. Exclusion of an Impact Origin
5.4. Regional Geodynamic Context
5.5. Implications for Seismic Hazard and Mineral Potential
5.6. Limitations and Future Work
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Molnar, P.; Tapponnier, P. Cenozoic Tectonics of Asia: Effects of a Continental Collision. Science 1975, 189, 419–426. [Google Scholar] [CrossRef] [PubMed]
- Tapponnier, P.; Molnar, P. Active Faulting and Cenozoic Tectonics of the Tien Shan, Mongolia, and Baykal Regions. J. Geophys. Res. 1979, 84, 3425–3459. [Google Scholar] [CrossRef]
- Abdrakhmatov, K.Y.; Aldazhanov, S.A.; Hager, B.H.; Hamburger, M.W.; Herring, T.A.; Kalabaev, K.B.; Makarov, V.I.; Molnar, P.; Panasyuk, S.V.; Prilepin, M.T.; et al. Relatively Recent Construction of the Tien Shan Inferred from GPS Measurements of Present-Day Crustal Deformation Rates. Nature 1996, 384, 450–453. [Google Scholar] [CrossRef]
- Reigber, C.; Michel, G.W.; Galas, R.; Angermann, D.; Klotz, J.; Chen, J.Y.; Papschev, A.; Arslanov, R.; Tzurkov, V.E.; Ishanov, M.C. New Space Geodetic Constraints on the Distribution of Deformation in Central Asia. Earth Planet. Sci. Lett. 2001, 191, 157–165. [Google Scholar] [CrossRef]
- Avouac, J.-P.; Tapponnier, P.; Bai, M.; You, H.; Wang, G. Active Thrusting and Folding along the Northern Tien Shan and Late Cenozoic Rotation of the Tarim Relative to Dzungaria and Kazakhstan. J. Geophys. Res. 1993, 98, 6755–6804. [Google Scholar] [CrossRef]
- Şengör, A.M.C.; Natal’in, B.A.; Burtman, V.S. Evolution of the Altaid Tectonic Collage and Palaeozoic Crustal Growth in Eurasia. Nature 1993, 364, 299–307. [Google Scholar] [CrossRef]
- Windley, B.F.; Alexeiev, D.; Xiao, W.; Kröner, A.; Badarch, G. Tectonic Models for Accretion of the Central Asian Orogenic Belt. J. Geol. Soc. Lond. 2007, 164, 31–47. [Google Scholar] [CrossRef]
- Burtman, V.S.; Skobelev, S.F.; Molnar, P. Late Cenozoic Slip on the Talas–Ferghana Fault, the Tien Shan, Central Asia. Geol. Soc. Am. Bull. 1996, 108, 1004–1021. [Google Scholar]
- Burtman, V.S. Cenozoic Crustal Shortening between the Pamir and Tien Shan and a Reconstruction of the Pamir–Tien Shan Transition Zone for the Cretaceous and Palaeogene. Tectonophysics 2000, 319, 69–92. [Google Scholar] [CrossRef]
- Seltmann, R.; Porter, T.M.; Pirajno, F. Geodynamics and Metallogeny of the Central Eurasian Porphyry and Related Epithermal Mineral Systems: A Review. J. Asian Earth Sci. 2014, 79, 810–841. [Google Scholar] [CrossRef]
- Artemieva, I.M. The Lithosphere: An Interdisciplinary Approach; Cambridge University Press: Cambridge, UK, 2011. [Google Scholar]
- Almadani, S.A.; Abdelfattah, A.K.; Mohamed, A.K. Crustal Characteristics beneath the Tien Shan Belt, Central Asia, from Receiver Function Analysis. J. Asian Earth Sci. 2020, 198, 104371. [Google Scholar]
- An, S.; Zhao, L.; Nie, S. Crustal Structure of the Tian Shan Orogen and Its Adjacent Areas from Gravity Modeling. Tectonophysics 2023, 874, 229701. [Google Scholar]
- Kaviani, A.; Sandvol, E.; Moghadas, D.; Zhu, L. Generalization of the H–κ Stacking Method to Anisotropic Media. J. Geophys. Res. Solid Earth 2015, 120, 2053–2065. [Google Scholar]
- Li, Y.; Wang, C.-Y.; Shen, X. Active Crustal Deformation in the Tian Shan Region, Central Asia. Tectonophysics 2021, 812, 228919. [Google Scholar]
- Gao, Y.; Chen, Y.; Fang, H. Mantle Dynamics in Central Asia from Joint Inversion of Receiver Functions and Surface Waves. J. Geophys. Res. Solid Earth 2025, 130, e2024JB030061. [Google Scholar]
- Farr, T.G.; Rosen, P.A.; Caro, E.; Crippen, R.; Duren, R.; Hensley, S.; Kobrick, M.; Paller, M.; Rodriguez, E.; Roth, L.; et al. The Shuttle Radar Topography Mission. Rev. Geophys. 2007, 45, RG2004. [Google Scholar] [CrossRef]
- Pavlis, N.K.; Holmes, S.A.; Kenyon, S.C.; Factor, J.K. The Development and Evaluation of the Earth Gravitational Model 2008 (EGM2008). J. Geophys. Res. Solid Earth 2012, 117, B04406. [Google Scholar] [CrossRef]
- Bassin, C.; Laske, G.; Masters, G. The Current Limits of Resolution for Surface Wave Tomography in North America (CRUST2.0). Eos Trans. AGU 2000, 81, F897. [Google Scholar]
- Mooney, W.D.; Laske, G.; Masters, T.G. CRUST 5.1: A Global Crustal Model at 5° × 5°. J. Geophys. Res. Solid Earth 1998, 103, 727–747. [Google Scholar] [CrossRef]
- Blakely, R.J. Potential Theory in Gravity and Magnetic Applications; Cambridge University Press: Cambridge, UK, 1995. [Google Scholar]
- Telford, W.M.; Geldart, L.P.; Sheriff, R.E. Applied Geophysics, 2nd ed.; Cambridge University Press: Cambridge, UK, 1990. [Google Scholar]
- Nabighian, M.N.; Grauch, V.J.S.; Hansen, R.O.; LaFehr, T.R.; Li, Y.; Peirce, J.W.; Phillips, J.D.; Ruder, M.E. The Historical Development of the Magnetic Method in Exploration. Geophysics 2005, 70, 33ND–61ND. [Google Scholar] [CrossRef]
- Miller, H.G.; Singh, V. Potential Field Tilt—A New Concept for Location of Potential Field Sources. J. Appl. Geophys. 1994, 32, 213–217. [Google Scholar] [CrossRef]
- Spector, A.; Grant, F.S. Statistical Models for Interpreting Aeromagnetic Data. Geophysics 1970, 35, 293–302. [Google Scholar] [CrossRef]
- Reid, A.B.; Allsop, J.M.; Granser, H.; Millett, A.J.; Somerton, I.W. Magnetic Interpretation in Three Dimensions Using Euler Deconvolution. Geophysics 1990, 55, 80–91. [Google Scholar] [CrossRef]
- Li, Y.; Oldenburg, D.W. 3-D Inversion of Gravity Data. Geophysics 1998, 63, 109–119. [Google Scholar] [CrossRef]
- Li, Y.; Oldenburg, D.W. 3-D Inversion of Magnetic Data. Geophysics 1996, 61, 394–408. [Google Scholar] [CrossRef]
- Dueker, K.G.; Sheehan, A.F. Mantle Discontinuity Structure from Midpoint Stacks of Converted P to S Waves across the Yellowstone Hotspot Track. J. Geophys. Res. Solid Earth 1997, 102, 8313–8327. [Google Scholar] [CrossRef]
- Grieve, R.A.F.; Pilkington, M. The Signature of Terrestrial Impacts. AGSO J. Aust. Geol. Geophys. 1996, 16, 399–420. [Google Scholar]
- French, B.M.; Koeberl, C. The Convincing Identification of Terrestrial Meteorite Impact Structures: What Works, What Doesn’t, and Why. Earth-Sci. Rev. 2010, 98, 123–170. [Google Scholar]
- Artemieva, I.M. Lithosphere Structure in Europe from Thermal Isostasy. Earth Planet. Sci. Lett. 2019, 506, 179–195. [Google Scholar]




| Data type | Source / method | Spatial resolution | Purpose |
|---|---|---|---|
| Gravity | Regional gravimetric surveys; global model cross-check [18] | 2–5 km | Mapping crustal density heterogeneity |
| Magnetic | Aeromagnetic surveys (RTP) | 1–3 km | Mapping magnetized bodies and intrusions |
| Seismic | Deep seismic sounding (DSS) profiles | Profile-based | Conrad and Moho depths; crustal segmentation |
| Remote sensing | DEM (SRTM) and satellite imagery [17] | 30–90 m | Surface structure mapping; terrain correction |
| Method | Data used | Objective |
|---|---|---|
| 3D inversion | Gravity, magnetic | Reconstruction of density and susceptibility |
| Spectral analysis | Gravity, magnetic | Estimation of ensemble source depths |
| Euler deconvolution | Gravity, magnetic | Independent depth and edge estimation |
| Seismic interpretation | DSS profiles | Identification of crustal discontinuities |
| GIS-based mapping | Integrated datasets | Visualization and spatial analysis |
| Parameter | Value range |
|---|---|
| Crustal thickness (Moho depth) | 35–55 km |
| Depth to Conrad discontinuity | 15–25 km |
| Density contrast of concentric cores | 150–350 kg/m³ (0.15–0.35 g/cm³) |
| Magnetic susceptibility | (1–8) × 10⁻³ SI |
| Imaged depth extent of structures | ≈ 25–30 km |
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