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Advances in Nano Research
Techno press
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Abstract: |
In the context of nonclassical nonlocal strain gradient elasticity, this article studies the free and forced responses of
functionally graded material (FGM) porous nanoplates exposed to thermal and magnetic fields under a moving load. The
developed mathematical model includes shear deformation, size-scale, miscorstructure influences in the framework of higher
order shear deformation theory (HSDT) and nonlocal strain gradient theory (NSGT), respectively. To explore the porosity effect,
the study considers four different porosity models across the thickness: uniform, symmetrical, asymmetric bottom, and
asymmetric top distributions. The system of quations of motion of the FGM porous nanoplate, including the effects of thermal
load, Lorentz force, due to the magnetic field and moving load, are derived using the Hamilton's principle, and then solved
analytically by employing the Navier method. For the free and forced responses of the nanoplate, the effects of nonlocal
elasticity, strain gradient elasticity, temperature rise, magnetic field intensity, porosity volume fraction, and porosity distribution
are analyzed. It is found that the forced vibrations of FGM porous nanoplates under thermal and live loads can be damped by
applying a directed magnetic field.
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