Off-Fault Deformation in Regions of Complex Fault Geometries: The 2013, Mw7.7, Baluchistan Rupture (Pakistan)

被引:14
作者
Antoine, S. L. [1 ]
Klinger, Y. [1 ]
Delorme, A. [1 ]
Gold, R. D. [2 ]
机构
[1] Univ Paris Cite, Inst Phys globe Paris, CNRS, Paris, France
[2] US Geol Survey, Golden, CO USA
关键词
Baluchistan; earthquake; rupture; off-fault deformation; diffuse deformation; high-resolution optical image correlation; 7.7 BALOCHISTAN EARTHQUAKE; 2001; KOKOXILI-EARTHQUAKE; IMAGE CORRELATION; SURFACE RUPTURE; PLATE BOUNDARY; SLIP; DAMAGE; EVOLUTION; SYSTEM; DISPLACEMENT;
D O I
10.1029/2022JB024480
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
Observations of recent earthquake surface ruptures show that ground deformations include a localized component occurring on faults, and an off-fault component affecting the surrounding medium. This second component is also referred to as off-fault deformation (OFD). The localized component generally occurs on complex networks of faults that connect at depth onto a unique fault plane, whereas OFD consists of distributed fracturing and diffuse deformation of the bulk volume, and occurs over scales of hundreds of meters to kilometers around the faults. High-resolution optical image correlation presents a unique potential to characterize the complexity of the surface displacements, including on-fault displacements and OFDs. In this study, we used sub-pixel correlation of 0.5-m resolution optical images to measure the surface displacement field with a M(w)7.7 Baluchistan, Pakistan, rupture. Our results document significant variability in the fault displacements, associated with large proportions of OFD in regions of fault geometrical complexity. Conversely, in regions where the fault geometry is simple, surface deformation is entirely accommodated by the primary faults with 0% OFD. When combining the localized deformation on faults with the OFD, we show that the total surface displacement budget is constant along the strike of the rupture, despite strong variations observed in the rupture geometry. Based on this analysis, we propose an idealized scenario of earthquake surface deformation as a function of the rupture geometrical variations.
引用
收藏
页数:19
相关论文
共 85 条
[1]  
Allmendinger R.W., 2012, Structural geology algorithms: Vectors and tensors in structural Geology
[2]  
Antoine Solene, 2022, Mendeley Data, V3, DOI 10.17632/HV762X5DKZ.3
[3]   Diffuse Deformation and Surface Faulting Distribution from Submetric Image Correlation along the 2019 Ridgecrest, California, Ruptures [J].
Antoine, Solene L. ;
Klinger, Yann ;
Delorme, Arthur ;
Wang, Kang ;
Burgmann, Roland ;
Gold, Ryan D. .
BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2021, 111 (05) :2275-2302
[4]   The 2013, Mw 7.7 Balochistan earthquake, energetic strike-slip reactivation of a thrust fault [J].
Avouac, Jean-Philippe ;
Ayoub, Francois ;
Wei, Shengji ;
Ampuero, Jean-Paul ;
Meng, Lingsen ;
Leprince, Sebastien ;
Jolivet, Romain ;
Duputel, Zacharie ;
Helmberger, Don .
EARTH AND PLANETARY SCIENCE LETTERS, 2014, 391 :128-134
[5]  
AYDIN A, 1995, B SEISMOL SOC AM, V85, P111
[6]  
BAKR M. A., 1964, Geological map of Pakistan
[7]   Evidence for slip partitioning and bimodal slip behavior on a single fault: Surface slip characteristics of the 2013 Mw7.7 Balochistan, Pakistan earthquake [J].
Barnhart, W. D. ;
Briggs, R. W. ;
Reitman, N. G. ;
Gold, R. D. ;
Hayes, G. P. .
EARTH AND PLANETARY SCIENCE LETTERS, 2015, 420 :1-11
[8]   Ball-and-socket tectonic rotation during the 2013 Mw7.7 Balochistan earthquake [J].
Barnhart, W. D. ;
Hayes, G. P. ;
Briggs, R. W. ;
Gold, R. D. ;
Bilham, R. .
EARTH AND PLANETARY SCIENCE LETTERS, 2014, 403 :210-216
[9]   Localized fault-zone dilatancy and surface inelasticity of the 2019 Ridgecrest earthquakes [J].
Barnhart, William D. ;
Gold, Ryan D. ;
Hollingsworth, James .
NATURE GEOSCIENCE, 2020, 13 (10) :699-+
[10]   Vertical Coseismic Offsets Derived From High-Resolution Stereogrammetric DSM Differencing: The 2013 Baluchistan, Pakistan Earthquake [J].
Barnhart, William D. ;
Gold, Ryan D. ;
Shea, Hannah N. ;
Peterson, Katherine E. ;
Briggs, Richard W. ;
Harbor, David J. .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2019, 124 (06) :6039-6055