
Estimation of the Maximum Magnitude of Normal Faults and Seismic Risk in the Southern Tibetan Rift Zones
Hu Guiming, Xu Yueren, Liu Han¹, Yuan Ruimin¹, Lu Lingyu¹
Estimation of the Maximum Magnitude of Normal Faults and Seismic Risk in the Southern Tibetan Rift Zones
In the southern Tibetan rift zones, there are several approximately north-south trending rifts distributed from west to east. As important tectonic extensional zones within the blocks, these rifts have developed a series of normal faults and experienced multiple strong earthquakes. Since the Late Quaternary, this region has exhibited intense tectonic activity with frequent earthquakes causing serious disasters. For instance, the January 7, 2025 Mw7.1 (CENC: Ms6.9) Tingri earthquake demonstrated the characteristics of “small earthquake with major disaster consequences”. To assess the seismogenic potential of normal faults within the rift zones and understand their disaster-inducing competence, this study divides 92 normal fault zones based on geometric characteristics and statistically analyzed fault trace lengths. Under the assumption of full-length surface rupture along fault traces during earthquakes, combined with empirical relationships between normal fault rupture length and moment magnitude, we estimated the maximum potential magnitudes of normal faults in the rift zones. Results indicate that these normal faults have upper seismogenic limits ranging from Mw6.5 to Mw7.5, with numerous historical seismic gaps. While generally demonstrating strong seismogenic competence, they exhibit an eastward-increasing strength pattern. Bounded by major fault zones to the north and south, and considering multiple historical seismic gaps along the southern magethrust (particularly in the context of accelerated Coulomb stress loading following the 2015 Nepal Mw7.8 earthquake and potential interaction/triggering effects between major boundary faults), the normal faults south of Yarlung Tsangpo River, especially those in the Tingri-Nyalam and Xiongqu fault, show high potential for future strong earthquakes.
southern Tibetan rift system / normal fault / maximum magnitude / earthquake / linkage and triggering effect / tectonics
Ader, T., Avouac, J. P., Jing, L. Z., et al., 2012. Convergence Rate across the Nepal Himalaya and Interseismic Coupling on the Main Himalayan Thrust: Implications for Seismic Hazard. Journal of Geophysical Research: Solid Earth, 117(B4): B04403. https://doi.org/10.1029/2011JB009071
|
Anderson, H., Jackson, J., 1987. Active Tectonics of the Adriatic Region. Geophysical Journal of the Royal Astronomical Society, 91(3): 937-983. https://doi.org/10.1111/j.1365-246X.1987.tb01675.x
|
Armijo, R., Tapponnier, P., Mercier, J. L., et al., 1986. Quaternary Extension in Southern Tibet: Field Observations and Tectonic Implications. Journal of Geophysical Research: Solid Earth, 91(B14): 13803-13872. https://doi.org/10.1029/JB091iB14p13803
|
Bilham, R., 2019. Himalayan Earthquakes: A Review of Historical Seismicity and Early 21st Century Slip Potential, Himalayan Tectonics: A Modern Synthesis. Geological Society, London, 483.
|
Bollinger, L., Tapponnier, P., Sapkota, S., 2015. Balance and Deficit of Seismic Slip in Central Nepal: Implication for a Repeat of the 1344 Earthquake in Nepal. Journal of Nepal Geology Society, 48: 25.
|
Chen, H., Qu, C. Y., Zhao, D. Z., et al., 2024. Large-Scale Extensional Strain in Southern Tibet from Sentinel-1 InSAR and GNSS Data. Geophysical Research Letters, 51(19): e2024GL110512. https://doi.org/10.1029/2024GL110512
|
Chen, J., Chen, Y. K., Ding, G. Y., et al., 2003. Surface Rupture Zones of the 2001 Earthquake Ms 8.1 West of Kunlun Pass, Northern Qinqhai-Xizang Plateau. Quaternary Sciences, 23(6): 629-639, 717-718 (in Chinese with English abstract).
|
Chen, Q. Z., Freymueller, J. T., Wang, Q., et al., 2004. A Deforming Block Model for the Present-Day Tectonics of Tibet. Journal of Geophysical Research: Solid Earth, 109(B1): 97. https://doi.org/10.1029/2002JB002151
|
Cheng, J., Xu, C., Ma, J., et al., 2023. From Active Fault Segmentation to Risks of Earthquake Hazards and Property and Life Losses—A Case Study from the Xianshuihe-Xiaojiang Fault Zone. Science China Earth Sciences, 66(6): 1345-1364. https://doi.org/10.1007/s11430-022-1076-y
|
Deng, Q. D., Gao, X., Chen, G. H., et al., 2010. Recent Tectonic Activity of Bayankala Fault-Block and the Kunlun-Wenchuan Earthquake Series of the Tibetan Plateau. Earth Science Frontiers, 17(5): 163-178 (in Chinese with English abstract).
|
DePolo, C. M., Clark, D. G., Slemmons, D. B., et al., 1991. Historical Surface Faulting in the Basin and Range Province, Western North America: Implications for Fault Segmentation. Journal of Structural Geology, 13(2): 123-136. https://doi.org/10.1016/0191-8141(91)90061-m
|
Di Giacomo, D., 2020. ISC-GEM Solution for the Haiyuan Earthquake of 16 December 1920. ISC Seismological Dataset Repository, Edinburgh.
|
Doser, D.I., Smith, R.B., 1989. An Assessment of Source Parameters of Earthquakes in the Cordillera of the Western United States. Bulletin of the Seismological Society of America, 79: 1383-1409.
|
Eaton, G. P., 1982. The Basin and Range Province: Origin and Tectonic Significance. Annual Review of Earth and Planetary Sciences, 10(1): 409. https://doi.org/10.1146/annurev.ea.10.050182.002205
|
Elliott, J. L., Grapenthin, R., Parameswaran, R. M., et al., 2022. Cascading Rupture of a Megathrust. Science Advances, 8(18): eabm4131. https://doi.org/10.1126/sciadv.abm4131
|
Elliott, J. R., Walters, R. J., England, P. C., et al., 2010. Extension on the Tibetan Plateau: Recent Normal Faulting Measured by InSAR and Body Wave Seismology. Geophysical Journal International, 183(2): 503-535.
|
Feng, X., Ma, J., Zhou, Y., et al., 2020. Geomorphology and Paleoseismology of the Weinan Fault, Shaanxi, Central China, and the Source of the 1556 Huaxian Earthquake. Journal of Geophysical Research: Solid Earth, 125(12): e2019JB017848. https://doi.org/10.1029/2019JB017848
|
Gao, Y., Li, M., Wu, Z. H., et al., 2024. Late Quaternary Normal Faulting along the Western Boundary Fault of Peiku Co Graben in Southern Nyalam-Coqen Rift: Implications for Extensional Deformation in Southern Tibet and Seismic Hazard. Journal of Structural Geology, 181: 105087. https://doi.org/10.1016/j.jsg.2024.105087
|
Gao, Y., Wu, Z. H., Zuo, J. M., et al., 2024. Spatial-Temporal Activity of Quaternary Faults at Southern End of Nyalam-Coqen Rift, Southern Tibet. Earth Science, 49(7): 2552-2569 (in Chinese with English abstract).
|
Glasgow, M. E., Schmandt, B., Bilek, S. L., 2023. Cascading Multi-Segment Rupture in an Injection-Induced Earthquake Sequence with a Mw 5.3 Mainshock. Earth and Planetary Science Letters, 620: 118335. https://doi.org/10.1016/j.epsl.2023.118335
|
Ha, G. H., Wu, Z. H., Gai, H. L., et al., 2019a. New Discovery of Surface Rupture of Large Paleo-Earthquake along Northern Pagri-Duoqing Co Graben, Southern Yadong-Gulu Rift. Acta Geologica Sinica-English Edition, 93(4): 1135-1136. https://doi.org/10.1111/1755-6724.13829
|
Ha, G. H., Wu, Z. H., Liu, F., 2019b. Late Quaternary Vertical Slip Rates along the Southern Yadong-Gulu Rift, Southern Tibetan Plateau. Tectonophysics, 755: 75-90. https://doi.org/10.1016/j.tecto.2019.02.014
|
Hou, J. J., Han, M. K., Chai, B. L., et al., 1998. Geomorphological Observations of Active Faults in the Epicentral Region of the Huaxian Large Earthquake in 1556 in Shaanxi Province, China. Journal of Structural Geology, 20(5): 549-557. https://doi.org/10.1016/S0191-8141(97)00112-0
|
Hough, S. E., Hutton, K., 2008. Revisiting the 1872 Owens Valley, California, Earthquake. Bulletin of the Seismological Society of America, 98(2): 931-949. https://doi.org/10.1785/0120070186
|
Hu, Y., Han, S., Wu, Z. H., et al., 2024. Major Active Faults and Recent Coseismic Surface Rupture Characteristics of the Horba-Tsam Tso Rift in Southern Tibet. Progress in Earthquake Sciences, 54(10): 649-660 (in Chinese with English abstract).
|
Huang, T., Wu, Z. H., Han, S., et al., 2024. The Basic Characteristics of Active Faults in the Region of Xigaze, Xizang and the Assessment of Potential Earthquake Disaster Risks. Progress in Earthquake Sciences, 54(10): 696-711 (in Chinese with English abstract).
|
Institute of Geology, National Seismological Administration, 1992. Active Faults in the Central Tibet. Seismological Press, Beijing (in Chinese with English abstract).
|
Jackson, J., 1994. Active Tectonics of the Aegean Region. Annual Review of Earth and Planetary Sciences, 22: 239-271. https://doi.org/10.1146/annurev.ea.22.050194.001323
|
Li, Y. B., Ran, Y. K., Wang, H., et al., 2016. Paleoseismic Records of Large Earthquakes on the Cross-Basin Fault in the Salt Lake Pull-apart Basin and Cascade Rupture Events on the Haiyuan Fault. Seismology and Geology, 38(4): 830-843 (in Chinese with English abstract).
|
Li, Y. C., Shan, X. J., Qu, C. Y., et al., 2025. Slip Deficit Rate and Seismic Potential on Crustal Faults in Tibet. Geophysical Research Letters, 52(1): e2024GL112122. https://doi.org/10.1029/2024GL112122
|
Liang P., Xu, Y., Zhou, X., et al., 2025. Coseismic Surface Ruptures of M W7.8 and M W7.5 Earthquakes Occurred on February 6, 2023, and Seismic Hazard Assessment of the East Anatolian Fault Zone, Southeastern Türkiye. Scientia Sinica (Terrae), 55(2): 626-641 (in Chinese with English abstract).
|
Liu, J., Ji, C., Zhang, J. Y., et al., 2015. Tectonic Setting and General Features of Coseismic Rupture of the 25 April, 2015 M W7.8 Gorkha, Nepal Earthquake. Chinese Science Bulletin, 60(27): 2640-2655 (in Chinese with English abstract).
|
Liu, J., Xu, J., Ou, Q., et al., 2023. Discussion on the Overestimated Magnitude of the 1920 Haiyuan Earthquake. Acta Seismologica Sinica, 45(4): 579-596 (in Chinese with English abstract).
|
Liu, L., Shao, Y. X., Wang, W., et al., 2022. Study on the Tectonic Geomorphology and Fault Activity Characteristics of the Zhongba Rift, Southern Tibet. Earth Science, 47(8): 3029-3044 (in Chinese with English abstract).
|
Liu-Zeng, J., Shao, Y. X., Klinger, Y., et al., 2015. Variability in Magnitude of Paleoearthquakes Revealed by Trenching and Historical Records, along the Haiyuan Fault, China. Journal of Geophysical Research: Solid Earth, 120(12): 8304-8333. https://doi.org/10.1002/2015JB012163
|
Liu-Zeng, J., Zhang, Z., Rollins, C., et al., 2020. Postseismic Deformation Following the 2015 M W7.8 Gorkha (Nepal) Earthquake: New GPS Data, Kinematic and Dynamic Models, and the Roles of Afterslip and Viscoelastic Relaxation. Journal of Geophysical Research: Solid Earth, 125(9): e2020JB019852. https://doi.org/10.1029/2020JB019852
|
Molnar, P., England, P., Martinod, J., 1993. Mantle Dynamics, Uplift of the Tibetan Plateau, and the Indian Monsoon. Reviews of Geophysics, 31(4): 357-396. https://doi.org/10.1029/93RG02030
|
Molnar, P., Tapponnier, P., 1978. Active Tectonics of Tibet. Journal of Geophysical Research: Solid Earth, 83(B11): 5361-5375. https://doi.org/10.1029/JB083iB11p05361
|
Ou, Q., Kulikova, G., Yu, J., et al., 2020. Magnitude of the 1920 Haiyuan Earthquake Reestimated Using Seismological and Geomorphological Methods. Journal of Geophysical Research: Solid Earth, 125(8): e2019JB019244. https://doi.org/10.1029/2019JB019244
|
Ren, C. M., Wang, Z. X., Taymaz, T., et al., 2024. Supershear Triggering and Cascading Fault Ruptures of the 2023 Kahramanmaraş, Türkiye, Earthquake Doublet. Science, 383(6680): 305-311. https://doi.org/10.1126/science.adi1519
|
Rodriguez Padilla, A. M., Oskin, M. E., Brodsky, E. E., et al., 2024. The Influence of Fault Geometrical Complexity on Surface Rupture Length. Geophysical Research Letters, 51(20): e2024GL109957. https://doi.org/10.1029/2024GL109957
|
Royden, L. H., Burchfiel, B. C., King, R. W., et al., 1997. Surface Deformation and Lower Crustal Flow in Eastern Tibet. Science, 276(5313): 788-790. https://doi.org/10.1126/science.276.5313.788
|
Science and Technology Commission of the Tibet Autonomous Region, 1982. Compilation of Historical Materials of Earthquakes in Tibet. Tibet People’s Publishing House, Tibet (in Chinese).
|
Shao, Y.X., Wang, A.S., Liu, J., et al. 2025. Preliminary Results of Surface Rupture Characteristics and Field Coseismic Displacement Measurement of the Dingri Earthquake in Tibet on January 7, 2025. Earth Science, 50(5): 1677-1695 (in Chinese with English abstract).
|
Shi, F., Liang, M. J., Luo, Q. X., et al., 2025. Seismogenic Fault and Coseismic Surface Deformation of the Dingri M S6.8 Earthquake in Xizang, China. Seismology and Geology, 47(1): 1-15 (in Chinese)
|
Srivastava, H.N.,Verma, M., Bansal, B.K., et al., 2013. Discriminatory Characteristics of Seismic Gaps in Himalaya. Geomatics, Natural Hazards and Risk, 6(3): 224-242. https://doi.org/10.1080/19475705.2013.839483
|
Tian, T. T., Wu, Z. H., 2023. Recent Prehistoric Major Earthquake Event of Dingmucuo Normal Fault in the Southern Segment of Shenzha-Dingjie Rift and Its Seismic Geological Significance. Geological Review, 69(S1): 53-55 (in Chinese with English abstract).
|
Wan, Y. G., Sheng, S. Z., Li, X., et al., 2015. Stress Influence of the 2015 Nepal Earthquake Sequence on Chinese Mainland. Chinese Journal of Geophysics, 58(11): 4277-4286 (in Chinese with English abstract).
|
Wang, H., Wright, T. J., Jing, L. Z., et al., 2019. Strain Rate Distribution in South-Central Tibet from Two Decades of InSAR and GPS. Geophysical Research Letters, 46(10): 5170-5179. https://doi.org/10.1029/2019GL081916
|
Wells, D. L., Coppersmith, K. J., 1994. New Empirical Relationships among Magnitude, Rupture Length, Rupture Width, Rupture Area, and Surface Displacement. Bulletin of the Seismological Society of America, 84(4): 974-1002. https://doi.org/10.1785/bssa0840040974
|
Wu, Z. H., 2024. The M W≥6.5 Strong Earthquake Events since 1990 around the Tibetan Plateau and Control-Earthquake Effect of Active Tectonic System. Progress in Earthquake Sciences, 54(1): 10-24 (in Chinese with English abstract).
|
Wu, Z. H., Ha, G., Wang, H., et al., 2019. Abnormal Disappearance of Duoqing Co Lake between November 2015 and April 2016, Due to Far-Field Aseismic Creeping of the Southern Yadong-Gulu Rift of Tibet, Triggered by the 2015 M S8.1 Nepal Earthquake. International Geology Review, 61(18): 2313-2327. https://doi.org/10.1080/00206814.2019.1594410
|
Wu, Z. H., Ye, P. S., Barosh, P. J., et al., 2011. The October 6, 2008 M W6.3 Magnitude Damxung Earthquake, Yadong-Gulu Rift, Tibet, and Implications for Present-Day Crustal Deformation within Tibet. Journal of Asian Earth Sciences, 40(4): 943-957. https://doi.org/10.1016/j.jseaes.2010.05.003
|
Wu, Z. H., Zhang, Y. S., Hu, D. G., et al., 2008. Quaternary Normal Faulting and Its Dynamic Mechanism of the Cona-Nariyong Co Graben in South-Eastern Tibet. Quaternary Sciences, 28(2): 232-242 (in Chinese with English abstract).
|
Wu, Z. H., Zhao, G. M., Liu, J., 2016. Tectonic Genesis of the 2015 Ms8.1 Nepal Great Earthquake and Its Influence on Future Strong Earthquake Tendency of Tibetan Plateau and Its Adjacent Region. Acta Geologica Sinica, 90(6): 1062-1085 (in Chinese with English abstract).
|
Wu, Z. H., Zhao, G. M., Long, C. X., et al., 2014. The Seismic Hazard Assessment around South-East Area of Qinghai-Xizang Plateau: A Preliminary Results from Active Tectonics System Analysis. Acta Geologica Sinica, 88(8): 1401-1416 (in Chinese with English abstract).
|
Wu, Z. M., Shentu, B.M., Cao, Z. Q., et al., 1990. The Surface Ruptures of Danxung (Tibet) Earthquake (M=8) in 1411. Seismology and Geology, 12(2): 98-108, 193-194.
|
Xiong, W., Tan, K., Liu, G., et al., 2015. Effects of the 2015-2015 Mw7.9 Earthquake in Nepal on Co-Seismic and Post-Earthquake Stress of Active Faults on the Qinghai-Tibet Plateau. Chinese Journal of Geophysics, 58(11): 4305-4316 (in Chinese with English abstract).
|
Xu, J., Li, H. Y., Shao, Z. G., et al., 2016. Effects of the 2015 Nepal M S8.1 Earthquake on China’s Mainland Based on Coulomb Stress Changes. Earthquake, 36(1): 69-77 (in Chinese with English abstract).
|
Xu, X. W., Deng, Q. D., 1988. The Basin-Range Structure in the Tensile Area at the Northern Part of Shanxi Province and Its Mechanism of Formation. Earthquake Research in China, 4(2): 19-27 (in Chinese with English abstract).
|
Xu, X. W., Li, F., Cheng, J., et al., 2023. Advances in Research on Active Faults and Exploration of Relevant Frontier Scientific Problems. Coal Geology & Exploration, 51(12): 1-16 (in Chinese with English abstract).
|
Xu, X. Y., 2019. Late Quaternary Activity and Its Environmental Effects of the N-S Trend Kharta Fault in Xainza-Dinggye Rift, Southern Tibet (Dissertation). Institute of Geology, China Earthquake Administration, Beijing (in Chinese).
|
Xu, Y. R., He, H. L., Deng, Q. D., et al., 2018. The CE 1303 Hongdong Earthquake and the Huoshan Piedmont Fault, Shanxi Graben: Implications for Magnitude Limits of Normal Fault Earthquakes. Journal of Geophysical Research: Solid Earth, 123(4): 3098-3121. https://doi.org/10.1002/2017JB014928
|
Xu, Y., Zhang, Y., 2023. Analysis of the Reasons Why Surface Wave Magnitude is Higher than Moment Magnitude in the Mainland of China from the Perspective of Source Rupture Parameters. Acta Scientiarum Naturalium Universitatis Pekinensis, 59(3): 407-414 (in Chinese with English abstract).
|
Yang, P. X., Chen, Z. W., Zhang, J., et al., 2010. Structure and Activity between Cuoga Co and Nala Co of the Gyaring Co Fault Belt in Centeral Tibet Plateau. Quaternary Sciences, 30(5): 1012-1019 (in Chinese with English abstract).
|
Zhang, P.Z., Wang, W.T., Gan, W.J., et al., 2022. Present-Day Deformation and Geodynamic Processes of the Tibetan Plateau. Acta Geologica Sinica, 96(10):3297-3313 (in Chinese with English abstract).
|
Zhang, P. Z., Slemmons, D. B., Mao, F. Y., 1991. Geometric Pattern, Rupture Termination and Fault Segmentation of the Dixie Valley—Pleasant Valley Active Normal Fault System, Nevada, U.S.A.. Journal of Structural Geology, 13(2): 165-176. https://doi.org/10.1016/0191-8141(91)90064-P
|
Zheng, G., Wang, H., Wright, T. J., et al., 2017. Crustal Deformation in the India-Eurasia Collision Zone from 25 Years of GPS Measurements. Journal of Geophysical Research: Solid Earth, 122(11): 9290-9312. https://doi.org/10.1002/2017JB014465
|
Zuo, J. M., Wu, Z. H., Gai, H. L., et al., 2020. The Latest Prehistoric Earthquake Relics and Its Age Evidence in Chongba Yumtso Fault Section of Duoqing Co Graben, Southern Tibet. Quaternary Sciences, 40(5): 1323-1333 (in Chinese with English abstract).
|
Zuo, J. M., Wu, Z. H., Ha, G. H., et al., 2021. Spatial Variation of nearly NS-Trending Normal Faulting in the Southern Yadong-Gulu Rift, Tibet: New Constraints from the Chongba Yumtso Fault, Duoqing Co Graben. Journal of Structural Geology, 144: 104256. https://doi.org/10.1016/j.jsg.2020.104256
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