THE RUPTURE PROCESS OF THE MANJIL, IRAN EARTHQUAKE OF 20 JUNE 1990 AND IMPLICATIONS FOR INTRAPLATE STRIKE-SLIP EARTHQUAKES

被引:3
|
作者
Choy, George L. [1 ]
Zednik, Jan [2 ]
机构
[1] US Geol Survey, Denver, CO 80255 USA
[2] Acad Sci Czech Republ, Inst Geophys, CR-14131 Prague 4, Czech Republic
关键词
D O I
10.1023/A:1023336723587
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
In terms of seismically radiated energy or moment release, the earthquake of 20 January 1990 in the Manjil Basin-Alborz Mountain region of Iran is the second largest strike-slip earthquake to have occurred in an intracontinental setting in the past decade. It caused enormous loss of life and the virtual destruction of several cities. Despite a very large meizoseismal area, the identification of the causative faults has been hampered by the lack of reliable earthquake locations and conflicting field reports of surface displacement. Using broadband data from global networks of digitally recording seismographs, we analyse broadband seismic waveforms to derive characteristics of the rupture process. Complexities in waveforms generated by the earthquake indicate that the main shock consisted of a tiny precursory subevent followed in the next 20 seconds by a series of four major subevents with depths ranging from 10 to 15 km. The focal mechanisms of the major subevents, which are predominantly strike-slip, have a common nodal plane striking about 285 degrees-295 degrees. Based on the coincidence of this strike with the dominant tectonic fabric of the region we presume that the EW striking planes are the fault planes. The first major subevent nucleated slightly south of the initial precursor. The second subevent occurred northwest of the initial precursor. The last two subevents moved progressively southeastward of the first subevent in a direction collinear with the predominant strike of the fault planes. The offsets in the relative locations and the temporal delays of the rupture subevents indicate heterogeneous distribution of fracture strength and the involvement of multiple faults. The spatial distribution of teleseismic aftershocks, which at first appears uncorrelated with meizoseismal contours, can be decomposed into stages. The initial activity, being within and on the periphery of the rupture zone, correlates in shape and length with meizoseismal lines. In the second stage of activity the aftershock zone expands and appears to cluster about the geomorphic and geologic features several tens of kilometres from the rupture zone. The activity is interpreted as a regional response to quasistatic stress migration along zones of tectonic weakness. The radiated energy of the main shock and the estimate of seismic moment yields an apparent stress of 20 bars. High apparent stress may be typical of strike slip earthquakes occurring in intracontinental environments undergoing continental collision.
引用
收藏
页码:45 / 63
页数:19
相关论文
共 50 条
  • [31] The 20 january 2007 Odaesan, Korea, earthquake sequence: Reactivation of a buried strike-slip fault?
    Lamont-Doherty Earth Observatory of Columbia University, Palisades, NY 10964, United States
    不详
    Bull. Seismol. Soc. Am., 3 (1120-1137):
  • [32] The 20 January 2007 Odaesan, Korea, Earthquake Sequence: Reactivation of a Buried Strike-Slip Fault?
    Kim, Won-Young
    Choi, Hoseon
    Noh, Myunghyun
    BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2010, 100 (03) : 1120 - 1137
  • [33] Stress Interactions between an Interplate Thrust Earthquake and an Intraplate Strike-Slip Event: A Case Study of 2018 Mw 7.9 Gulf of Alaska Earthquake
    Huang, Luyuan
    Tao, Tao
    Gao, Rui
    Shi, Yaolin
    BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2022, 112 (02) : 695 - 703
  • [34] A Comparison of Geodetic and Geologic Rates Prior to Large Strike-Slip Earthquakes: A Diversity of Earthquake-Cycle Behaviors?
    Dolan, James F.
    Meade, Brendan J.
    GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2017, 18 (12): : 4426 - 4436
  • [35] The 20th anniversary of the Eastern Marmara Earthquakes: active tectonics of continental strike-slip faults
    Mustapha Meghraoui
    Cengiz Yıldırım
    Cengiz Zabcı
    Serdar Akyüz
    Semih Ergintav
    Mediterranean Geoscience Reviews, 2021, 3 (1) : 1 - 1
  • [36] Evidence for deep crustal seismic rupture in a granulite-facies, intraplate, strike-slip shear zone, northern Saskatchewan, Canada
    Orlandini, Omero F.
    Mahan, Kevin H.
    Williams, Michael J.
    Regan, Sean P.
    Mueller, Karl J.
    GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 2019, 131 (3-4) : 403 - 425
  • [37] EARTHQUAKES ON THE KAZERUN LINE IN THE ZAGROS MOUNTAINS OF IRAN - STRIKE-SLIP FAULTING WITHIN A FOLD-AND-THRUST BELT
    BAKER, C
    JACKSON, J
    PRIESTLEY, K
    GEOPHYSICAL JOURNAL INTERNATIONAL, 1993, 115 (01) : 41 - 61
  • [38] Source mechanism of the 1998 Mw 7.4 intraplate strike-slip earthquake in the West Philippine Basin revealed by Coulomb stress changes
    Lin, Yi-Chin
    Lin, Jing-Yi
    TECTONOPHYSICS, 2016, 692 : 143 - 151
  • [39] Co-seismic strike-slip surface rupture and displacement produced by the 2010 MW 6.9 Yushu earthquake, China, and implications for Tibetan tectonics
    Lin, Aiming
    Rao, Gang
    Jia, Dong
    XiaojunWu
    Yan, Bing
    Ren, Zhikun
    JOURNAL OF GEODYNAMICS, 2011, 52 (3-4) : 249 - 259
  • [40] The Menyuan, Qinghai MS6.9 Earthquake on January 8, 2022: A Strike-slip Cascading Rupture Event
    Liang Shan-shan
    Xu Zhi-guo
    Zhang Guang-wei
    Shi Jian-yu
    Zou Li-ye
    Pure and Applied Geophysics, 2023, 180 : 829 - 850