Since ground shaking increases with rupture speed during earthquakes, the velocity transition from sub-Rayleigh to supershear in mode II fracture is crucial for the propagation of seismic ruptures and associated strong ground motions. We employ a newly conceived 2-dimensional hybrid Finite Element Method and Peridynamic (FEM/PD-2D) model to investigate the transition from sub-Rayleigh to supershear in dry and fluid-saturated media. The FEM is used to simulate fluid flow, while PD is used to describe solid deformation. We first verify the results of the FEM/PD-2D model against two experimental configurations: (a) rupture propagation along a Homalite plate with a pre-notch subjected to impact shear loading and, (b) rupture propagation along a friction interface between two PMMA blocks. Once the robustness of the FEM/PD-2D model has been verified, we apply it to explore rupture propagation along both dry and fluid-saturated media under shear loading. Supershear crack speeds and the emergence of shear Mach cones are observed in both the dry and fluid-saturated cases. Supershear rupture can be achieved through either the indirect (mother-daughter cracks or Burridge-Andrews mechanism) or a direct transition. In particular, under fluid-saturated conditions, a frequent situation in natural fault zones but overlooked in previous studies, the direct transition from sub-Rayleigh to supershear is favored by poroelastic effects near the rupture front.

FEM‐Peridynamic Modelling of Supershear Earthquake Ruptures in Dry and Fluid‐Saturated Media

Shu, Yongkang;Faccenda, Manuele;Galvanetto, Ugo;Di Toro, Giulio
;
2026

Abstract

Since ground shaking increases with rupture speed during earthquakes, the velocity transition from sub-Rayleigh to supershear in mode II fracture is crucial for the propagation of seismic ruptures and associated strong ground motions. We employ a newly conceived 2-dimensional hybrid Finite Element Method and Peridynamic (FEM/PD-2D) model to investigate the transition from sub-Rayleigh to supershear in dry and fluid-saturated media. The FEM is used to simulate fluid flow, while PD is used to describe solid deformation. We first verify the results of the FEM/PD-2D model against two experimental configurations: (a) rupture propagation along a Homalite plate with a pre-notch subjected to impact shear loading and, (b) rupture propagation along a friction interface between two PMMA blocks. Once the robustness of the FEM/PD-2D model has been verified, we apply it to explore rupture propagation along both dry and fluid-saturated media under shear loading. Supershear crack speeds and the emergence of shear Mach cones are observed in both the dry and fluid-saturated cases. Supershear rupture can be achieved through either the indirect (mother-daughter cracks or Burridge-Andrews mechanism) or a direct transition. In particular, under fluid-saturated conditions, a frequent situation in natural fault zones but overlooked in previous studies, the direct transition from sub-Rayleigh to supershear is favored by poroelastic effects near the rupture front.
2026
   China Scholarship Council (Grant 202306710136)
   China Scholarship Council

   The Seismic Cycle under HydrOThermal conditions: experimenTAl, analytical and modeling studies
   SCHOTTA
   Ministero dell'Università e della Ricerca
   PRIN 2022
   2022WE2JY9

   A soft peridynamic material model to simulate damage and surgery in the brain
   DIFRACUTT
   University of Padova
   BIRD237212/23
   237212/23
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11577/3614458
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