Title of article :
On the Effects of Non-planar Geometry for Blind Thrust Faults on Strong Ground Motion
Author/Authors :
Hideo Aochi، نويسنده , , Kim B. Olsen، نويسنده ,
Issue Information :
ماهنامه با شماره پیاپی سال 2004
Abstract :
We quantify the effects of complex fault geometry on low-frequency (< 1 Hz) strong
ground motion using numerical modeling of dynamic rupture. Our tests include the computation of
synthetic seismograms for several simple rupture scenarios with planar and curved fault approximations of
the 1994 Northridge earthquake. We use the boundary integral equation method (BIEM) to compute the
dynamic rupture process, which includes the normal stress effects along the curved fault geometries. The
wave propagation and computation of synthetic seismograms are modeled using a fourth-order finitedifference
method (FDM). The near-field ground motion is significantly affected by the acceleration,
deceleration and arrest of rupture due to the curvature of the faults, as well as the variation in directivity of
the rupture. For example, a 6-km-long hanging-wall or footwall splay with a maximum offset of 1 km can
change 1-Hz peak velocities by up to a factor of 2-3 near the fault. Our tests suggest that the differences in
waveform are larger on the hanging wall compared to those on the footwall, although the differences in
amplitude are larger in the forward rupture direction (footwall). The results imply that kinematic ground
motion estimates may be biased by the omission of dynamic rupture effects and even relatively gentle
variation in fault geometry, and even for long-period waves.
Keywords :
strong gound motion , boundary integral equation method , dynamic rupturepropagation , Non-planar geometry , blind thrust fault , and finite-difference method.
Journal title :
Pure and Applied Geophysics
Journal title :
Pure and Applied Geophysics