4.7 Article

The M7 2016 Kumamoto, Japan, Earthquake: 3-D Deformation Along the Fault and Within the Damage Zone Constrained From Differential Lidar Topography

期刊

JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH
卷 123, 期 7, 页码 6138-6155

出版社

AMER GEOPHYSICAL UNION
DOI: 10.1029/2018JB015581

关键词

earthquake deformation; faulting mechanics; lidar; differential topography

资金

  1. NSF [1625221]
  2. School of Earth and Space Exploration at Arizona State University
  3. Southern California Earthquake Center through SCEC awards [14101, 15189]
  4. Directorate For Geosciences
  5. Division Of Earth Sciences [1625221] Funding Source: National Science Foundation

向作者/读者索取更多资源

Three-dimensional near-fault coseismic deformation fields from high-resolution differential topography provide new information on the behavior of the shallow fault zone in large surface-rupturing earthquakes. Our work focuses on the 16 April 2016 M-w 7.0 Kumamoto, Japan, earthquake, which ruptured similar to 40km of the Futagawa-Hinagu Fault Zone on Kyushu Island with an oblique strike-slip mechanism and surface offset exceeding 2m. Our differential lidar analysis constrains the structural style of strain accommodation along the primary fault trace and the surrounding damage zone. We show that 3629% and 6232% of the horizontal and vertical deformation, respectively, was accommodated off the principal fault trace. The horizontal strains of up to 0.03 suggest that the approximate elastic strain limit was exceeded over a similar to 250 m width in many locations along the rupture. The inelastic deformation of the fault volume produced the observed distributed deformation at the Earth's surface. We demonstrate a novel approach for calculating 3-D displacement uncertainties, indicating errors of centimeters to a few decimeters for displacements computed over 50m horizontal windows. Errors correlate with land cover and relief, with flatter agricultural land associated with the highest displacement uncertainty. These advances provide a framework for future analyses of shallow earthquake behavior using differential topography.

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