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Size-dependent buckling behaviour of FG annular/circular thick nanoplates with porosities resting on Kerr foundation based on new hyperbolic shear deformation theory

机译:基于新型双曲剪切变形理论的KERR基础,FG环形/圆形厚纳普板的尺寸依赖性屈曲行为

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摘要

This work treats the axisymmetric buckling of functionally graded (FG) porous annular/circular nanoplates based on modified couple stress theory (MCST). The nanoplate is located at the elastic medium which is simulated by Kerr foundation with two spring and one shear layer. The material properties of the porous FG nanostructure are assumed to vary through the nanoplate thickness based on power-law rule. Based on two variables refined plate theory, the governing equations are derived by utilizing Hamilton's principle. Applying generalized differential quadrature method (GDQM), the buckling load of the annular/circular nanoplates is obtained for different boundary conditions. The influences of different involved parameters such as boundary conditions, Kerr medium, material length scale parameter, geometrical parameters of the nanoplate, FG power index and porosity are demonstrated on the nonlinear buckling load of the annular/circular nanoplates. The results indicate that with increasing the porosity of the nanoplate, the nonlinear buckling load is decreased. In addition, with increasing the material length scale parameter to thickness ratio, the effect of spring constant of Kerr foundation on the buckling load becomes more prominent. The present results are compared with those available in the literature to validate the accuracy and reliability. A good agreement is observed between the two sets of the results.
机译:该作品基于修改的夫妻应力理论(MCST)对功能梯度(FG)多孔环形/圆形纳米板的轴对称屈曲。纳米板位于弹性介质处,该弹性介质由Kerr基础与两个弹簧和一个剪切层模拟。假设多孔FG纳米结构的材料特性以基于幂律规则的纳米板厚度而变化。基于两个变量精制板理论,通过利用汉密尔顿原则来源的控制方程。应用广义差分正交方法(GDQM),获得环形/圆形纳米层间的屈曲负荷,用于不同的边界条件。在环形/圆形纳米板的非线性屈曲负荷上对不同涉及的参数,纳米板,纳米型电力指数和孔隙率的几何参数,纳米板,FG功率指数和孔隙率的几何参数的影响。结果表明,随着纳米板的孔隙率,非线性屈曲负荷降低。另外,随着材料长度比参数的增加,KERR基础对屈曲负荷的弹簧常数的影响变得更加突出。将本结果与文献中可用的结果进行比较,以验证准确性和可靠性。两组结果之间观察到良好的一致性。

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