Yijun Zhang, Rumeng Guo, Xiongwei Tang, Huiyou He, Lingsen Meng, Luning Li, Jianqiao Xu, Heping Sun
Abstract The southern Tibetan Plateau has been spared from the occurrence of normal faulting earthquakes exceeding Mw 7.0 for over half a century. On 7 January 2025, the Mw 7.01 Dingri earthquake occurred on the southwestern branch of the Xainza-Dinggye rift, southern Tibet, which offers an opportunity to understand the rift-related seismogenic mechanisms and regional deformation dynamics. We integrate finite-fault inversion, multiple-point-source (MPS) modeling, and slowness-enhanced backprojection imaging to investigate the detailed rupture kinematics of this event. Our results show that this rare event is characterized by dual-fault rupture involving normal slip on the main fault and strike-slip motion on the secondary fault. The obtained slip model and MPS modeling delineate three distinct subevents, highlighting significant rupture complexity. Intense high-frequency radiators, spatially aligned with coseismic slip edges, underscore the brittle–ductile transition. The 2025 Dingri event follows a linear scaling relationship between the rupture length (L) and seismogenic thickness (z), with a characteristic L/z ratio of ∼3.2 for continental normal-faulting earthquakes. The substantial earthquake size might be attributed to the unique thermo-mechanical condition of faults, evidenced by aeromagnetic, seismic tomography, and resistivity data. The interaction between strong upper-middle crust and weak lower crust, due to fluid intrusion from the mantle, likely promotes the occurrence of the 2025 Dingri earthquake.