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This content will become publicly available on August 11, 2026

Title: Frictional properties of the Pelona--Orocopia--Rand schists in hydrothermal conditions and implications for seismicity in Southern California
The Pelona–Orocopia–Rand (POR) schists were emplaced during the Farallon flat subduction in the early Cenozoic and now occupy the root of major strike-slip faults of the San Andreas Fault system. The POR schists are considered frictionally stable at lower temperatures than other basement rocks, limiting the maximum depth of seismicity in Southern California. However, experimental constraints on the composition and frictional properties of POR schists are still missing. Here, we study the frictional behavior of synthetic gouge derived from Pelona, Portal, and Rand Mountain schist wall rocks under hydrothermal, triaxial conditions. We conduct velocity-step experiments from 0.04 to 1 μm/s from room temperature to 500ºC under 200 MPa effective normal stress, including a 30 MPa porefluid pressure. The frictional stability of POR schists in the lower crust is caused by a thermally activated transition from slip-rate- and state-dependent friction to inherently stable, rate-dependent creep between 300ºC and 500ºC, depending on sample composition and slip-rate. The mineralogy of POR schists shows much variability caused by different protoliths and metamorphic grades, featuring various amounts of phyllosilicates, quartz, feldspar, and amphibole. Pelona and Portal schists exhibit a velocity-weakening regime enabling the nucleation and propagation of earthquakes when exhumed in the middle crust, as in the Mojave section of the San Andreas Fault. The contrasted frictional properties of POR schists exemplify the lithological control of seismic processes and associated hazards.  more » « less
Award ID(s):
1848192
PAR ID:
10638898
Author(s) / Creator(s):
; ; ; ; ; ;
Editor(s):
Avouac, J-P
Publisher / Repository:
Elsevier
Date Published:
Journal Name:
Earth and planetary science letters
Volume:
669
Issue:
119573
ISSN:
0012-821X
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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