Mechanisms of Transient Postseismic Deformation Following the 2001 Mw 7.8 Kunlun (China) Earthquake

被引:38
|
作者
Diao, Faqi [1 ,2 ]
Xiong, Xiong [1 ]
Wang, Rongjiang [3 ]
机构
[1] Chinese Acad Sci, Inst Geodesy & Geophys, Key Lab Dynam Geodesy, Wuhan 430077, Peoples R China
[2] Chinese Acad Sci, Grad Univ, Beijing 100038, Peoples R China
[3] GFZ German Res Ctr Geosci, D-14473 Potsdam, Germany
基金
中国国家自然科学基金;
关键词
Kunlun earthquake; GPS; postseismic deformation; viscoelastic relaxation; afterslip; POWER-LAW FLOW; LANDERS EARTHQUAKE; SURFACE RUPTURE; KOKOXILI-EARTHQUAKE; TAIWAN EARTHQUAKE; IZMIT EARTHQUAKE; TIBETAN PLATEAU; NORTHERN TIBET; LOWER CRUST; FAULT SLIP;
D O I
10.1007/s00024-010-0154-5
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Using global positioning system (GPS) technology, significant postseismic surface displacements were observed within the first 4 months after the 2001 Mw 7.8 Kunlun earthquake which occurred in China. In this study, we investigated the mechanisms that may have possibly contributed to the postseismic deformations that have been observed. Based on the modeling results, we find that an afterslip model can interpret postseismic displacements in the near field even when the fault plane is extended to the bottom of the crust (similar to 70 km). Models based on the viscoelastic relaxation theory showed a large discrepancy in the spatial pattern of the deformation compared with what has been observed. Thus, we infer that both mechanisms cannot interpret the observed postseismic deformation independently. A combination of afterslip and viscoelastic relaxation can further improve the data fit, especially at sites far from the fault. With maximum afterslip of similar to 0.4 m occurring at a depth of 10 km in the central section, the combined model shows that the estimated afterslip occurred mostly on and below the coseismic rupture plane, as well as on its eastern extension. The estimated moment released by the afterslip in the first 4 months is almost 40% of that released by the coseismic slip. The best-fitting viscoelastic relaxation model shows a "weak" upper mantle with a viscosity of similar to 1.0 X 10(18) Pa s. The combined model also suggests the existence of a lower crust with viscosity larger than 1.0 X 10(18) Pa s, although it cannot be constrained accurately.
引用
收藏
页码:767 / 779
页数:13
相关论文
共 50 条
  • [21] Evidence for postseismic deformation of the lower crust following the 2004 Mw6.0 Parkfield earthquake
    Bruhat, Lucile
    Barbot, Sylvain
    Avouac, Jean-Philippe
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2011, 116
  • [22] Activation of a Minor Graben and Pull-Apart Basin Just East of Bukadaban during the 2001 Kunlun Earthquake (Mw 7.8)
    Chang, Hong
    Li, Le-yi
    Molnar, Peter
    Niemi, Nathan A.
    BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2016, 106 (06) : 2922 - 2926
  • [23] Coseismic and Early Postseismic Deformation of the 2016 Mw 7.8 Kaikōura Earthquake, New Zealand, from Continuous GPS Observations
    Xiaoning Su
    Guojie Meng
    Lina Su
    Weiwei Wu
    Tai Liu
    Pure and Applied Geophysics, 2020, 177 : 285 - 303
  • [24] Role of Poroelasticity and Viscoelasticity during the Postseismic Deformation of the 2021 Mw 7.4 Maduo, China, Earthquake
    Tang, Xiongwei
    Guo, Rumeng
    Xu, Jianqiao
    Zheng, Yong
    SEISMOLOGICAL RESEARCH LETTERS, 2023, 94 (05) : 2192 - 2201
  • [25] Postseismic Deformation Following the 2015 Mw7.8 Gorkha (Nepal) Earthquake: New GPS Data, Kinematic and Dynamic Models, and the Roles of Afterslip and Viscoelastic Relaxation
    Liu-Zeng, J.
    Zhang, Z.
    Rollins, C.
    Gualandi, A.
    Avouac, J. -P.
    Shi, H.
    Wang, P.
    Chen, W.
    Zhang, R.
    Zhang, P.
    Wang, W.
    Li, Y.
    Wang, T.
    Li, Z.
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2020, 125 (09)
  • [26] Inference of postseismic deformation mechanisms of the 1923 Kanto earthquake
    Pollitz, Fred F.
    Nyst, Marleen
    Nishimura, Takuya
    Thatcher, Wayne
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2006, 111 (B5)
  • [27] The numerical simulation and discussion on mechanism of postseismic deformation after Kunlun Ms 8.1 earthquake
    Shao Zhi-Gang
    Fu Rong-Shan
    Xue Ting-Xiao
    Huang Jian-Hua
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2008, 51 (03): : 805 - 816
  • [28] Postseismic deformation following the 1991 Racha, Georgia, earthquake
    Podgorski, J.
    Hearn, E. H.
    McClusky, S.
    Reilinger, R.
    Taymaz, T.
    Tan, O.
    Prilepin, M.
    Guseva, T.
    Nadariya, M.
    GEOPHYSICAL RESEARCH LETTERS, 2007, 34 (04)
  • [29] Postseismic deformation following the 1906 San Francisco earthquake
    Kenner, SJ
    Segall, P
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2000, 105 (B6) : 13195 - 13209
  • [30] Coseismic and postseismic deformation associated with the 2016 Mw 7.8 Kaikoura earthquake, New Zealand: fault movement investigation and seismic hazard analysis
    Jiang, Zhongshan
    Huang, Dingfa
    Yuan, Linguo
    Hassan, Abubakr
    Zhang, Lupeng
    Yang, Zhongrong
    EARTH PLANETS AND SPACE, 2018, 70