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April 23, 2026Seismological Research Letters2 citationsOpen Access

The 2025 Mw 7.1 Tingri (South Tibet) Earthquake: Rupture of Normal Conjugate Optimally Oriented Faults, Shallow Coseismic Slip Deficit, and Early Afterslip

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XZXiaoyu ZouYFYuri Fialko

Key Points

  • This research aims to analyze the rupture characteristics and postseismic behavior following the 2025 Mw 7.1 Tingri earthquake.
  • Used Interferometric Synthetic Aperture Radar observations to assess coseismic and early postseismic deformation.
  • Inverted line-of-sight displacements to determine fault geometry and slip distribution.
  • Created a model of the ruptured faults with a triangular mesh and analyzed slip variation.
  • The study identified a shallow slip deficit of approximately 60%, with minimal relief from afterslip in the following months.
  • The best-fit model indicates optimal fault orientations and a moment magnitude of 7.0.
  • Geodetic observations suggest extensive off-fault damage and imply velocity-strengthening friction patterns.

Abstract

Abstract On 7 January 2025, a magnitude 7.1 earthquake struck Tingri County in the south of the Tibetan Plateau, China, producing widespread damage in the Lhatse-Sa’gya-Tingri region and adjacent areas. The earthquake ruptured a pair of conjugate north-south striking normal faults in the Dengmecuo graben, and was the largest normal earthquake instrumentally recorded in the region. We use Interferometric Synthetic Aperture Radar observations from Sentinel-1A, Advanced Land Observation Satellite-2, and Lutan-1 satellites to investigate coseismic and early postseismic deformation due to the 2025 Tingri earthquake. We invert line-of-sight displacements and pixel offsets for the fault geometry and slip distribution using an iterative scheme that incorporates a 3D curved fault geometry and layered rigidity structure constrained by seismic tomography. The ruptured faults are modeled using a triangular mesh with a linear variation in slip between the nodes. The preferred model suggests average dip angles of 60°–70° for both the main (west-dipping) rupture and the subsidiary (east-dipping) conjugate fault, indicating optimal fault orientations consistent with Byerlee’s law and coefficient of friction of 0.6–0.7. The best-fit model has a variance reduction of 91%, and an equivalent moment magnitude of 7.0. The modeled coseismic slip exhibits a large (∼60%) shallow slip deficit, only a small fraction of which is relieved by shallow afterslip in the first ∼8 months following the earthquake. The observed coseismic and postseismic deformation suggests velocity-strengthening friction, as well as extensive off-fault damage in the top several kilometers of the Earth’s crust. Contributions from the early viscoelastic and poroelastic relaxation are found to be negligible. Continued geodetic observations will help quantify the evolving roles of afterslip and viscoelastic relaxation, provide tighter constraints on the effective rheology of the lower crust, and illuminate the mechanisms of the ongoing east–west extension in the southern Tibetan rift zone.

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Cite This Study

Zou et al. (2026) studied this question.

synapsesocial.com/papers/69e9bb9e85696592c86ed38dhttps://doi.org/10.1785/0220250445
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Aftershock Triggering Mechanism by the 7 January 2025 Mw 7.1 Tingri Earthquake2025
  2. 2Coseismic Slip and Early Postseismic Deformation Characteristics of the 2025 Mw 7.0 Dingri Earthquake2026 · 2 citations
  3. 3Coseismic Kinematics and Early Afterslip Evolution of the 2025 Mw ${\mathbf{M}}_{\mathbf{w}}$ 7.1 Dingri Earthquake (Southern Tibet) From Space Geodesy2025
  4. 4Deformation Process and Mechanism of the 2025 <i>M</i> w 7.0 Dingri Earthquake in Southern Tibet Revealed by GNSS and InSAR2026 · 1 citations
  5. 5Dual-Fault Rupture and Thermo-Mechanical Setting of the 2025 Dingri Earthquake (Southern Tibet)2026