Crustal stress state and seismic hazard along southwest segment of the Longmenshan thrust belt after Wenchuan Earthquake

Xianghui Qin , Chengxuan Tan , Qunce Chen , Manlu Wu , Chengjun Feng

Journal of Earth Science ›› 2014, Vol. 25 ›› Issue (4) : 676 -688.

PDF
Journal of Earth Science ›› 2014, Vol. 25 ›› Issue (4) : 676 -688. DOI: 10.1007/s12583-014-0457-z
Article

Crustal stress state and seismic hazard along southwest segment of the Longmenshan thrust belt after Wenchuan Earthquake

Author information +
History +
PDF

Abstract

The crustal stress and seismic hazard estimation along the southwest segment of the Longmenshan thrust belt after the Wenchuan Earthquake was conducted by hydraulic fracturing for in-situ stress measurements in four boreholes at the Ridi, Wasigou, Dahegou, and Baoxing sites in 2003, 2008, and 2010. The data reveals relatively high crustal stresses in the Kangding region (Ridi, Wasigou, and Dahegou sites) before and after the Wenchuan Earthquake, while the stresses were relatively low in the short time after the earthquake. The crustal stress in the southwest of the Longmenshan thrust belt, especially in the Kangding region, may not have been totally released during the earthquake, and has since increased. Furthermore, the Coulomb failure criterion and Byerlee’s law are adopted to analyzed in-situ stress data and its implications for fault activity along the southwest segment. The magnitudes of in-situ stresses are still close to or exceed the expected lower bound for fault activity, revealing that the studied region is likely to be active in the future. From the conclusions drawn from our and other methods, the southwest segment of the Longmenshan thrust belt, especially the Baoxing region, may present a future seismic hazard.

Keywords

Wenchuan Earthquake / Longmenshan thrust belt / in-situ stress measurement / crustal stress state / Coulomb failure criterion / seismic hazard

Cite this article

Download citation ▾
Xianghui Qin, Chengxuan Tan, Qunce Chen, Manlu Wu, Chengjun Feng. Crustal stress state and seismic hazard along southwest segment of the Longmenshan thrust belt after Wenchuan Earthquake. Journal of Earth Science, 2014, 25(4): 676-688 DOI:10.1007/s12583-014-0457-z

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Allan C R. Field Study of a Highly Active Fault Zone: The Xianshuihe Fault of Southwestern China. Geol. Soc. Am. Bull., 1991, 103(9): 1178-1199.

[2]

Amadei B, Stephansson O. Rock Stress and Its Measurement, 1997 London: Chapman & Hall

[3]

Barton C A, Zoback M D, Moos D. Fluid Flow along Potentially Active Faults in Crystalline Rock. Geology, 1995, 23: 683-686.

[4]

Blanpied M L, Lockner D A, Byerlee J D. Fault Stability Inferred from Granite Sliding Experiments at Hydrothennal Conditions. Geophys. Res. Lett., 1991, 18(4): 609-612.

[5]

Blanpied M L, Lockner D A, Byerlee J D. Frictional Slip of Granite at Hydrothermal Conditions. J. Geophys. Res. (Solid Earth), 1995, 100(B7): 13045-13064.

[6]

Brace W F, Kohlstedt D L. Limits on Lithospheric Stress Imposed by Laboratory Experiments. J. Geophys. Res., 1980, 85(B11): 6248-6252.

[7]

Brown E T, Hoek E. Trends in Relationship between Measured In-Situ Stresses and Depth. Int. J. Rock Mech. Min. Sci. & Geomech. Abstr., 1978, 15: 211-215.

[8]

Burchfiel B C, Royden L H, van der Hilst R D, . A Geological and Geophysical Context for the Wenchuan Earthquake of 12 May 2008, Sichuan, People’s Republic of China. GSA Today, 2008, 18(7): 4-11.

[9]

Byerlee J D. Friction of Rocks. Pure & Applied Geophysics, 1978, 116(4/5): 615-626.

[10]

Carpenter B M, Marone C, Saffer D M. Frictional Behavior of Materials in the 3D SAFOD Volume. Geophys. Res. Lett., 2009, 36 L05320.

[11]

Deng Q D, Chen S F, Zhao X L. Tectonics, Seismicity, and Dynamics of the Longmen Shan Mountains and Its Adjacent Region. Seismology and Geology, 1994, 16(4): 389-403.

[12]

Deng Q D, Zhang P Z, Ran Y K, . Basic Characteristics of Active Tectonics of China. Science in China Series D: Earth Sciences, 2003, 46(4): 356-372.

[13]

Feng C J, Chen Q C, Wu M L, . Analysis of Hydraulic Fracturing Stress Measurement Data-Discussion of Methods Frequently Used to Determine Instantaneous Shut-in Pressure. Rock and Soil Mechanics, 2012, 33(7): 2149-2159.

[14]

Guo Q L, Wang C H, Ma H S, . In-Situ Hydr-fracture Stress Measurement before and after the Wenchuan Ms 8 Earthquake of China. Chinese J. Geophys., 2009, 52(5): 1395-1401.

[15]

Haimson B C. Near-Surface and Deep Hydrofracturing Stress Measurements in the Waterloo Quartzite. Int. J. Rock Mech. Min. Sci., 1980, 17: 81-88.

[16]

Haimson B C, Cornet F H. ISRM Suggested Methods for Rock Stress Estimation-Part 3: Hydraulic Fracturing (HF) and/or Hydraulic Testing of Pre-Existing Fractures (HTPF). Int. J. Rock Mech. Min. Sci., 2003, 40: 1011-1020.

[17]

Hayashi K, Haimson B C. Characteristics of Shut-In Curves in Hydraulic Fracturing Stress Measurements and Determination of In Situ Minimum Compressive Stress. J. Geophys. Res., 1991, 96(B11): 18311-18321.

[18]

Hubbard J, Shaw J H. Uplift of the Longmen Shan and Tibetan Plateau, and the 2008 Wenchuan (M=7.9) Earthquake. Nature, 2009, 458: 194-497.

[19]

Hubbard J, Shaw J H, Klinger Y. Structural Setting of the 2008 Mw 7.9 Wenchuan, China, Earthquake. Bull. Seismol. Soc. Am., 2010, 100(5B): 2713-2735.

[20]

Institute of Crustal Dynamics Hydro-Fracture In-Situ Stress Measurements in ZK1 Borehole in Xiaotiandu Hydropower Station, 2003 Beijing: Seismological Press

[21]

Jaeger J C, Cook N G W, Zimmerman R W. Fundamentals of Rock Mechanics (4th Edition), 2007 Oxford: Blackwell Publishing

[22]

Jia D, Li Y Q, Lin A M, . Structural Model of 2008 Mw 7.9 Wenchuan Earthquake in the Rejuvenated Longmen Shan Thrust Belt, China. Tectonophysics, 2010, 491: 174-184.

[23]

Jin W Z, Tang L J, Yang K M, . Segment of the Longmen Mountains Thrust Belt, Western Sichuan Foreland Basin, SW China. Tectonophysics, 2010, 485: 107-121.

[24]

Jing F, Sheng Q, Zhang Y H. Research on Distribution Rule of Shallow Crustal Geostress in China Mainland. Chin. J. Rock Mech. Eng., 2007, 26(10): 2057-2062.

[25]

Jones O T. Faulting and Dyke Formation-The Dynamics of Faulting and Dyke Formation: With Application to Britain. Nature, 1942, 3789: 651-652.

[26]

Li F Q, Zhang B C, Su K Z. Reservoir Induced Earthquake Risk in the Yangtze Gorges Dam Area, 1993 Beijing: Seismological Press

[27]

Li H B, Wang H, Xu Z Q, . Characteristics of the Fault-Related Rocks, Fault Zone and the Principal Slip Zone in the Wenchuan Earthquake Scientific Drilling Project Hole-1 (WSFD-1). Tectonophysics, 2013, 584: 23-42.

[28]

Li, Y. Q., Jia, D., Shaw, J. H., et al., 2010. Structural Interpretation of the Co-Seismic Faults of the Wenchuan Earthquake: Three-Dimensional Modeling of the Longmen Shan Fold-and-Thrust Belt. J. Geophys. Res., 115. doi:10.1029/2009JB006824

[29]

Li Z W, Liu S G, Chen H D, . Structural Segmentation and Zonation and Differential across and along the Longmen Thrust Belt, West Sichuan, China. Journal of Chengdu University of Technology (Science & Technology Edition), 2008, 35(4): 440-453.

[30]

Geophys. Res. Lett., 2003, 27 20

[31]

Lin A M, Ren Z K, Jia D, . Co-Seismic Thrusting Rupture and Slip Distribution Produced by the 2008 M w 7.9 Wenchuan Earthquake, China. Tectonophysics, 2009, 471(3/4): 203-215.

[32]

Lin W R, Saito S, Sanada Y, . Principal Horizontal Stress Orientations Prior to the 2011 Mw 9.0 Tohoku-Oki, Japan, Earthquake in Its Source Area. Geophys. Res. Lett., 2011, 38 L00G10.

[33]

Lin W R, Conin M, Moore C, . Stress State in the Largest Displacement Area of the 2011 Tohoku-Oki Earthquake. Science, 2013, 339: 687-690.

[34]

Liu B Y, Shi B P. The State of Stress of the Ms 8.0 Wenchuan Earthquake Faulting and Its Implication to the Aftershock Hazard. Chinese J. Geophys., 2011, 54(4): 1002-1009.

[35]

Liu J, Xiong T Y, Zhao Y, . Kinematic Characteristics of Longmenshan Active Fault Zone and Its Tectonic Implication. J. Jilin Univ. (Earth Sci.), 2012, 42(S2): 320-330.

[36]

Lockner D A, Summers R, Byerlee J D. Effects of Temperature and Sliding Rate on Frictional Strength of Granite. Pure Applied Geophysics, 1986, 124: 445-469.

[37]

Luo G, Liu M. Stress Evolution and Fault Interactions before and after the 2008 Great Wenchuan Earthquake. Tectonophysics, 2010, 491: 127-140.

[38]

Papadimitriou E, Wen X Z, Karakostas V, . Earthquake Triggering along the Xianshuihe Fault Zone of Western Sichuan, China. Pure and Applied Geophysics, 2004, 161(8): 1683-1707.

[39]

Parsons T, Ji C, Kirby E. Stress Changes from the 2008 Wenchuan Earthquake and Increased Hazard in the Sichuan Basin. Nature, 2008, 454(7203): 509-510.

[40]

Qi S W, Xu Q, Lan H X, . Spatial Distribution Analysis of Landslides Triggered by 2008.5.12 Wenchuan Earthquake, China. Engineering Geology, 2010, 116: 95-108.

[41]

Ran Y K, Chen L C, Cheng J W, . Late Quaternary Surface Deformation and Rupture Behavior of Strong Earthquake on the Segment North of Mianning of the Anninghe Fault. Science in China Series D: Earth Sciences, 2008, 51(9): 1224-1237.

[42]

Shan B, Xiong X, Zheng Y, . Stress Changes on Major Faults Caused by Mw 7.9 Wenchuan Earthquake, May 12, 2008. Science in China Series D: Earth Sciences, 2009, 52(5): 593-601.

[43]

Shan B, Xiong X, Wang R J, . Coulomb Stress Evolution along Xianshuihe-Xiaojiang Fault System since 1713 and Its Interaction with Wenchuan Earthquake, May 12, 2008. Earth Planet. Sci. Lett., 2013, 377/378: 199-210.

[44]

Shao Z G, Zhou L Q, Jiang C S, . The Impact of Wenchuan Ms 8.0 Earthquake on the Seismic Activity of Surrounding Faults. Chinese J. Geophys., 2010, 53(8): 1784-1795.

[45]

Su S R, Huang R Q, Wang S T. Effect of Faults on In Situ Stress and Application in Engineering, 2002 Beijing: Science Press, 21-30.

[46]

Tang C, Zhu J, Qi X, . Landslides Induced by the Wenchuan Earthquake and the Subsequent Strong Rainfall Event: A Case Study in the Beichuan Area of China. Engineering Geology, 2011, 22-33.

[47]

Tang H M, Jia H B, Hu X L, . Characteristics of Landslides Induced by the Great Wenchuan Earthquake. Journal of Earth Science, 2010, 21(1): 104-113.

[48]

Tang W Q, Liu Y P, Chen Z L, . GPS Study on Longmenshan Fracture Belt Zone. Journal of Geodesy and Geodynamics, 2004, 24(3): 57-59.

[49]

Geophys. Res. Lett., 2008, 35 17

[50]

Verberne B A, He C R, Spiers C J. Frictional Properties of Sedimentary Rocks and Natural Fault Gouge from the Longmen Shan Fault Zone, Sichuan, China. Bull. Seismol. Soc. Am., 2010, 100: 2767-2790.

[51]

Wan Y G, Shen Z K, Sheng S Z, . The Influence of 2008 Wenchuan Earthquake on Surrounding Faults. Acta Seismologica Sinica, 2009, 31(2): 128-139.

[52]

Wan Y G, Shen Z K. Static Coulomb Stress Changes on Faults Caused by the 2008 M w 7.9 Wenchuan, China Earthquake. Tectonophysics, 2010, 491(1–4): 105-118.

[53]

Wang H, Liu J, Shi Y L, . Dynamic Modeling of Interactions between Big Earthquakes along the Xianshuihe Fault Zone. Science in China Series D: Earth Sciences, 2008, 51(10): 1388-1400.

[54]

Wang Y H, Cui X F, Hu X P, . Study on the Stress State in Upper Crust of China Mainland Based on In-Situ Stress Measurements. Chinese J. Geophys., 2012, 55(9): 3016-3027.

[55]

Wen X Z, Ma S L, Xu X W, . Historical Pattern and Behavior of Earthquake Ruptures along the Eastern Boundary of the Sichuan-Yunnan-Block, Southwestern China. Physics of the Earth and Planetary Interiors, 2008, 168(1/2): 16-36.

[56]

Wen X Z, Zhang P Z, Du F, . The Background of Historical and Modern Seismic Activities of Occurrence of the M s 8.0 Wenchuan, Sichuan Earthquake. Chinese J. Geophys., 2009, 52(2): 444-454.

[57]

Wen X Z, Du F, Zhang P Z, . Correlation of Major Earthquake Sequences on the Northern and Eastern Boundaries of the Bayan Har Block, and Its Relation to the 2008 Wenchuan Earthquake. Chinese J. Geophys., 2011, 54(3): 706-716.

[58]

Wu M L, Zhang Y Q, Liao C T, . Preliminary Results of In-Situ Stress Measurements along the Longmenshan Fault Zone after the Wenchuan M s 8.0 Earthquake. Acta Geologica Sinica, 2009, 83(4): 746-753.

[59]

Wu Z H, Barosh P J, Zhang Z C, . Effect from the Wenchuan Earthquake and Seismic Hazard in the Longmenshan Mountains at the Eastern Margin of the Tibetan Plateau. Engineering Geology, 2012, 28-36.

[60]

Xie F R, Cui X F, Zhao J T. Regional Division of the Recent Tectonic Stress Field in China and Adjacent Area. Chinese J. Geophys., 2004, 47(4): 654-662.

[61]

Xie F R, Qiu Z H, Wang Y, . Earth Stress Observation and Earthquake Prediction. Recent Developments in World Seismology, 2005, 317(5): 54-59.

[62]

Xu C, Xu X W, Dai F C, . Landslide Hazard Mapping Using GIS and Weight of Evidence Model in Qingshui River Watershed of 2008 Wenchuan Earthquake Struck Region. Journal of Earth Science, 2012, 23(1): 97-120.

[63]

Xu X W, Wen X Z, Zhen R Z, . Pattern of Latest Tectonic Motion and Its Dynamics for Active Blocks in Sichuan-Yunnan Region, China. Science in China Series D: Earth Sciences, 2003, 46(Suppl.): 210-226.

[64]

Xu Z Q, Ji S C, Li H B, . Uplift of the Longmen Shan Range and the Wenchuan Earthquake. Episodes, 2008, 31(3): 291-301.

[65]

Yang S X, Yao R, Cui X F. Analysis of the Characteristics of Measured Stress in Chinese Mainland and Its Active Block and North-South Seismic Belt. Chinese J. Geophys., 2012, 55(12): 4207-4217.

[66]

Yi G X, Wen X Z, Wang S W, . Study on Fault Sliding Behaviors and Strong Earthquake Risk of the Longmenshan-Minshan Fault Zones from Current Seismicity Parameters. Earthquake Research in China, 2006, 22(2): 117-125.

[67]

Yi G X, Long F, Zhang Z W. Spatial and Temporal Variation of Focal Mechanisms for Aftershocks of the 2008 M s 8.0 Wenchuan Earthquake. Chinese J. Geophys., 2012, 55(4): 1213-1227.

[68]

Zhang L, He C R. Frictional Properties of Natural Gouges from Longmenshan Fault Zone Ruptured during the Wenchuan M w 7.9 Earthquake. Tectonophysics, 2013, 594: 149-164.

[69]

Zhang P Z, Xu X W, Wen X Z, . Slip Rates and Recurrence Intervals of the Longmenshan Active Fault Zone and Tectonic Implications for the Mechanism of the May 12 Wenchuan Earthquake, 2008, Sichuan, China. Chinese J. Geophys., 2008, 51(4): 1066-1073.

[70]

Zhang Q W, Zhang P Z, Wang C, . Earthquake Triggering and Delaying Caused by Fault Interaction on Xianshuihe Fault Belt, Southwestern China. Acta Seismologica Sinica, 2003, 25(2): 156-165.

[71]

Zhao D A, Chen Z M, Cai X L, . Analysis of Distribution Rule of Geostress in China. Chin. J. Rock Mech. Eng., 2007, 26(6): 1265-1271.

[72]

Zheng Y, Ma H, J, . Source Mechanism of Strong Aftershocks (Ms≥5.6) the 2008/05/12 Wenchuan Earthquake and the Implication for Seismotectonics. Science in China Series D: Earth Sciences, 2009, 52(5): 739-753.

[73]

Zhou Y S, He C R. The Rheological Structures of Crustal and Mechanics of High-Angle Reverse Fault Slip for Wenchuan M s 8.0 Earthquake. Chinese J. Geophys., 2009, 52(2): 474-484.

[74]

Zhu H, Wen X Z. Static Stress Triggering Effects Related with Ms 8.0 Wenchuan Earthquake. Journal of Earth Science, 2010, 21(1): 32-41.

[75]

Zoback M D, Healy J H. In-Situ Stress Measurements to 3.5 km Depth in the Cajon Pass Scientific Research Borehole: Implications for the Mechanics of Crustal Faulting. J. Geophys. Res., 1992, 97(B4): 5039-5057.

[76]

Zoback M D, Townend J. Implications of the Hydrostatic Pore Pressures and High Crustal Strength for the Deformation of Intraplate Lithosphere. Tectonophysics, 2001, 336(1–4): 19-30.

[77]

Zoback M D. Reservoir Geomechanics, 2007 Cambridge: Cambridge University Press, 123-139.

AI Summary AI Mindmap
PDF

120

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/