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This is clearly illustrated by the difference in the nature of the deformation patterns obtained at various indentations.
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Jang et al. [9] reported the extrusion and phase change mechanism using a sharp or blunt indenter with various indentation loads and rates.
Figure 3 Load versus time for various indentation depths.
Figure 5 shows the topographies obtained for various indentation depths.
Figure 3 shows the force versus time curves for various indentation depths.
Consequently, we reasonably deduce that these discrepancies are mainly owing to the various indentation methods used.
Thus, we reasonably deduce that these discrepancies are mainly due to the various indentation methods used.
The mechanical behavior of graphene under various indentation depths, velocities, and temperatures is studied using molecular dynamics analysis.
The molecular dynamics (MD) simulation is generally believed to be an effective way in modeling various indentation processes [20 22], providing an in situ observation on atomic motions.
Fang et al.[24] has studied the mechanical behavior of a rectangular graphene film under various indentation depths, velocities, and temperatures using molecular dynamics (MD) simulations.
In this study, soft tissue experiments on porcine livers were performed to measure the surface deformation and force response of soft tissues resulting from indentation loading depending on various indentation depths and two different tip shapes.
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