Abstract Mapped surface ruptures from the 24 August 2014 Mw 6.0 South Napa earthquake in the Napa Valley, California, show a 2-km-wide zone of distributed faulting in the southern and central West Napa fault zone (WNFZ). In the northern WNFZ at Hendry Winery (HW), however, the mapped 2014 surface ruptures encompass an ∼100-m-wide zone, implying significant narrowing of the near-surface fault zone to the north. We present a tomographic shear-wave velocity (VS) model and guided-wave data that indicate the northern WNFZ is at least 400-m wide, with multiple near-surface fault traces. Our VS model shows that the 2014 surface ruptures are underlain by discrete low-velocity zones (LVZs), and coincident guided-wave data show that the LVZs carry fault-zone guided waves. If nearby (500 m) mapped faults to the east of HW are part of the WNFZ, the entire WNFZ is more than 1 km wide in the northern Napa Valley. WNFZ guided waves travel up to 38% slower than S body waves, and low-strain guided-wave shaking is up to five times stronger than the associated body-wave shaking. Our data suggest that guided waves, traveling along distributed faults, may result in an increased shaking hazard over a 1-km-wide area of the northern Napa Valley during future significant earthquakes. In places, the 2014 surface ruptures were difficult to find one year after the earthquake, and paleoseismic trenching showed only weak evidence for faulting, which may not have been identified in trenches if the locations of the 2014 surface ruptures had not been previously mapped (Prentice et al., 2015). Guided-wave and VS tomography data, however, show strong evidence for faulting beneath the 2014 surface ruptures and at locations to the east. Although paleoseismic trenching is the gold standard for identifying near-surface faulting, methods such as peak ground velocities of guided waves may better identify immature near-surface fault traces.
Catchings et al. (Wed,) studied this question.