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The first feature is a cycle-dependent softening effect that takes place over multiple deformation cycles.
The model is developed using experimental results of a LAOS deformation and describes the observed softening, strain stiffening and increasing viscous dissipation that occur during multiple deformation cycles.
As shown in Fig. 2b, c, the stiffness of the fibrin network decreases during the multiple deformation cycles of the LAOS experiment.
The results show three dominating nonlinear features: softening over multiple deformation cycles, strain stiffening and increasing viscous dissipation during a deformation cycle.
The maximal stress values during a deformation cycle agree well, including the softening effect that occurs over multiple deformation cycles, also visible from the NSP during the LAOS sequence already shown in Fig. 3a.
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The connection is fully capable of transferring combined bending and axial loads and has sufficient deformability to sustain multiple inelastic deformation cycles under extreme loading.
The first point is about the deformation cycles associated with subduction-zone earthquakes.
Nail specimens sustained large inelastic deformation cycles with progressive strength degradation.
Clear shifts in deformation patterns imply the existence of multiple deformation modes and multiple molecular/cellular factors that regulate deformation characteristics at each mode and at the transitions between modes.
During repeated cycles of measurement, deformation versus time curves obtained for the second and subsequent deformation cycles were similar to the first cycle, but progressively shifted upwards as a consequence of increased RD.
Upon repeated deformation cycles, the fibers persistently lengthen, leading to a lower stiffness at the same strain and hence a softening effect (Münster et al. 2013).
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