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3D architecture and complex behavior along the simple central San Andreas fault

Earth Sciences

3D architecture and complex behavior along the simple central San Andreas fault

Y. Cheng, R. Bürgmann, et al.

Discover the complexities of the Central San Andreas Fault as Yifang Cheng, Roland Bürgmann, and Richard M. Allen explore its seismic and aseismic behaviors. Their extensive analysis of over 75,000 earthquakes unveils a nuanced understanding of fine-scale fault architecture and its implications for future faulting behavior.... show more
Abstract
The central San Andreas Fault (CSAF) exhibits a simple linear large-scale fault geometry, yet seismic and aseismic deformation features vary in a complex way along the fault. Here we investigate fault zone behaviors using geodetic observation, seismicity and microearthquake focal mechanisms. We employ an improved focal-mechanism characterization method using relative earthquake radiation patterns on 75,164 M_l ≥ 1 earthquakes along a 2-km-wide, 190-km-long segment of the CSAF, from 1984 to 2015. The data reveal the 3D fine-scale structure and interseismic kinematics of the CSAF. Our findings indicate that the first-order spatial variations in interseismic fault creep rate, creep direction, and the fault zone stress field can be explained by a simple fault coupling model. The inferred 3D mechanical properties of a mechanically weak and poorly coupled fault zone provide a unified understanding of the complex fine-scale kinematics, indicating distributed slip deficits facilitating small-to-moderate earthquakes, localized stress heterogeneities, and complex multi-scale ruptures along the fault. Through this detailed mapping, we aim to relate the fine-scale fault architecture to potential future faulting behavior along the CSAF.
Publisher
Nature Communications
Published On
Jun 25, 2024
Authors
Yifang Cheng, Roland Bürgmann, Richard M. Allen
Tags
San Andreas Fault
seismicity
aseismic deformation
focal mechanisms
fault zone behavior
creep rate
mechanically weak
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