| نویسندگان | مهدی محمدی مهر-محمد علی محمدی مهر-پدرام دشتی گوهری |
| نشریه | APPL MATH MECH-ENGL |
| تاریخ انتشار | 2016-1-01 |
| نمایه نشریه | ISI ,SCOPUS |
چکیده مقاله
Abstract The size-dependent effect on the biaxial and shear nonlinear buckling analysis
of an isotropic and orthotropic micro-plate based on the surface stress, the modified
couple stress theory (MCST), and the nonlocal elasticity theories using the differential
quadrature method (DQM) is presented. Main advantages of the MCST over the classical
theory (CT) are the inclusion of the asymmetric couple stress tensor and the consideration
of only one material length scale parameter. Based on the nonlinear von K´arm´an
assumption, the governing equations of equilibrium for the micro-classical plate considering
midplane displacements are derived based on the minimum principle of potential
energy. Using the DQM, the biaxial and shear critical buckling loads of the micro-plate for
various boundary conditions are obtained. Accuracy of the obtained results is validated
by comparing the solutions with those reported in the literature. A parametric study is
conducted to show the effects of the aspect ratio, the side-to-thickness ratio, Eringen’s
nonlocal parameter, the material length scale parameter, Young’s modulus of the surface
layer, the surface residual stress, the polymer matrix coefficients, and various boundary
conditions on the dimensionless uniaxial, biaxial, and shear critical buckling loads. The
results indicate that the critical buckling loads are strongly sensitive to Eringen’s nonlocal
parameter, the material length scale parameter, and the surface residual stress effects,
while the effect of Young’s modulus of the surface layer on the critical buckling load is
negligible. Also, considering the size dependent effect causes the increase in the stiffness
of the orthotropic micro-plate. The results show that the critical biaxial buckling load
increases with an increase in G
12
/E
2
and vice versa for E
1
/E
2
. It is shown that the
nonlinear biaxial buckling ratio decreases as the aspect ratio increases and vice versa for
the buckling amplitude. Because of the most lightweight micro-composite materials with
high strength/weight and stiffness/weight ratios, it is anticipated that the results of the
present work are useful in experimental characterization of the mechanical properties of
micro-composite plates in the aircraft industry and other engineering applications.