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We introduce a peridynamic model for functionally graded materials (FGMs) and study their dynamic fracture behavior.
In the present paper, a n-order model for functionally graded and composite sandwich plate is developed.
A new size-dependent model for functionally graded microplates is developed by using the modified couple stress theory.
The multi-scale model for functionally graded carbon nanotube-reinforced composite (FG-CNTRC) shells under torsion is proposed.
In this paper, the vibrational energy flow model for functionally graded (FG) beams is developed, which can be used for high frequency response prediction.
The multi-scale model for functionally graded carbon nanotube-reinforced composite (FG-CNTRC) shells under external pressure is proposed and a singular perturbation technique is employed to determine the buckling pressure and postbuckling equilibrium path.
Similar(53)
The present work shows that presently existing analytical models for functionally graded materials are not suitable for use with conventional nanoindentation analysis methods.
A Timoshenko beam model for axially functionally graded (FG) non-uniform nanobeams with nonlocal residuals is developed.
A model for sigmoid functionally graded material (S-FGM) microplates based on the modified couple stress theory with first order shear deformation is developed.
A new dislocation punching model for a functionally graded material (FGM) subjected to a temperature change is proposed, using Eshelby's model.
Based on a modified couple stress theory, a model for sigmoid functionally graded material (S-FGM) nanoplates on elastic medium is developed.
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