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Rapid fault healing from cementation controls the dynamics of deep slow slip and tremor

Abstract

Despite its status as one of the most important discoveries in geophysics, the physical mechanism(s) responsible for slow slip events (SSEs) are not well understood. Here, we synthesize observations of deep SSEs in the Cascadia Subduction Zone and argue that rapid, cohesive fault strengthening may control the dynamics of deep SSEs. Cohesive strength is frequently ignored in constitutive laws used to describe fault rheology in numerical simulations of earthquakes and SSEs alike. To demonstrate its importance, we perform and analyze a suite of petrological experiments that simulate fault healing under representative pressure and temperature conditions. We show that significant cohesive strength recovery caused by dissolution-precipitation processes occurs on timescales of just a few hours. Together, our experimental and observational results support the idea that cohesion is a key component of fault strength under SSE conditions and highlight the need for its inclusion in both future experiments and numerical models of fault slip.

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Amanda Thomas, Jim M Watkins, Nicholas M. Beeler, Melodie French, Whitney M. Behr, Mark H. Reed. 2025-11-19. Rapid fault healing from cementation controls the dynamics of deep slow slip and tremor. https://doi.org/10.1126/sciadv.adz2832

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