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This work provides a comprehensive investigation on the mechanical behavior of the interface in hybrid structures.
An analytical approach is also proposed to predict the overall behavior of the interface.
These parameters can be applied to examine the fracture behavior of the interface crack.
An empirical model is proposed to predict the fatigue behavior of the interface.
Strain localization and dilatancy behavior of the interface is carefully examined at both macroscopic and microscopic scales.
This range is also within the approximately linear behavior of the interface, indicated by the load x displacement curve, as shown in Figure 3.
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Scanning electrochemical microscopy (SECM) and electrochemical impedance spectroscopy (EIS) were used to investigate the electrochemical behavior of the interfaces.
Thirteen single-shear bonded joints were tested to investigate the effects of the adhesive properties and the adhesive thickness on the bond-slip behavior of the interfaces.
It is shown that depending on the sliding behavior of the interfaces, ϕstat50, which is usually adopted as the designing parameter in stability analysis, can be larger than ϕ0 and ϕlim.
The coupling and decoupling behaviors of the interface between the ground and rock bolt are taken into account in the model.
The proposed MD model can be used to predict the thermal and mechanical behaviors of the interface structure in composite materials and microsystem.
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behavior of the transfer
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