S036-0013
The Effect of Splay Faults on Earthquake Size and Rupture Behavior at Subduction Zones: Insights from Discrete Element Simulations
Abstract:
To better understand how megasplay faults affect earthquake sizes and ruptures, we build on recent modeling efforts based on observations of distributed extensional deformation in the Japan Trench forearc and Chile Margin, to test the effect of different types of splay faults. We model the upper plate as a wedge that is partitioned into an inner (velocity-weakening) wedge and outer (velocity-strengthening) wedge, with the splay fault marking the boundary between the two. We vary fault dip angle, dip direction, and relative distance to the downdip limit of outer (velocity-strengthening) wedge, and examine effects of changing friction conditions during seismic cycles.
Our models demonstrate that a splay normal fault can initiate during a great subduction earthquake and may then evolve during multiple seismic cycles. Moreover, our preliminary results show that the splay normal faults can facilitate the coseismic slip caused by the later megathrust earthquake, but may have less effect on the slip magnitude than the presence of a velocity-strengthening outer wedge. Furthermore, splay thrust faults can either promote coseismic slips or behave as a barrier to coseismic ruptures, depending on fault dips.