T002-0002
3D fault architecture controls the dynamism of earthquake swarms

Monday, 7 December 2020
Poster
Zachary E. Ross, California Institute of Technology, Seismological Laboratory, Pasadena, CA, United States, Elizabeth S Cochran, U.S. Geological Survey, Earthquake Science Center, Pasadena, CA, United States, Daniel T Trugman, Los Alamos National Laboratory, Earth and Environmental Sciences: Geophysics (EES-17), Los Alamos, NM, United States and Jonathan Daniel Smith, California Institute of Technology, Division of Geological and Planetary Sciences, Pasadena, CA, United States
Abstract:
The vibrant evolutionary patterns made by earthquake swarms are incompatible with standard, effectively two-dimensional (2D) models for general fault architecture. We leverage advances in earthquake monitoring with a deep-learning algorithm to image a fault zone hosting a 4-year-long swarm in southern California. We infer that fluids are naturally injected into the fault zone from below and diffuse through strike-parallel channels while triggering earthquakes. A permeability barrier initially limits up-dip swarm migration but ultimately is circumvented. This enables fluid migration within a shallower section of the fault with fundamentally different mechanical properties. Our observations provide high-resolution constraints on the processes by which swarms initiate, grow, and arrest. These findings illustrate how swarm evolution is strongly controlled by 3D variations in fault architecture.