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- W2922242597 abstract "Thermal effect on size-dependent vibrational behavior of rotating microbeams made of functionally graded materials (FGMs) is investigated. It is assumed that the material properties of FGMs change smoothly through the thickness of the microbeam according to a power-law variation. Within the framework of Timoshenko beam theory (TBT) and Euler-Bernoulli beam theory (EBT), the governing equations and associated boundary conditions of rotating hinged-hinged, clamped-free, clamped-clamped and clamped-hinged microbeams are determined by using Hamilton's principle and modified couple stress theory. The axial nonlinear coupling deformation is taken into account to capture the centrifugal stiffening effect. An assumed-mode discretization approach is applied to solve these equations numerically. Convergence study and comparative examples are presented to verify the accuracy and reliability of the present model. A detailed numerical study is carried out to analyze the effects of dimensionless material length scale parameter, slenderness ratio, dimensionless angular velocity, temperature change and FG index on the vibrational behaviors of rotating FG microbeams. Numerical results indicate that the increasing value of temperature change leads to an increase in size dependency of rotating microbeams. The size dependency of rotating microbeams considerably differs from that of stationary microbeams. In addition, the gradient change in material properties greatly affects the size dependency of rotating FG microbeams." @default.
- W2922242597 created "2019-03-22" @default.
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- W2922242597 date "2019-05-01" @default.
- W2922242597 modified "2023-10-16" @default.
- W2922242597 title "Thermal effect on vibrational behaviors of rotating functionally graded microbeams" @default.
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- W2922242597 doi "https://doi.org/10.1016/j.euromechsol.2019.03.005" @default.
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