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On buckling of porous double-layered FG nanoplates in the Pasternak elastic foundation based on nonlocal strain gradient elasticity

机译:基于非局部应变梯度弹性的Pasternak弹性基础多孔双层FG纳米板屈曲

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摘要

In the present investigation, the buckling behaviours of porous double-layered functionally graded nanoplates in hygrothermal environment are presented for the first time. The nonlocal strain gradient theory with two material scale parameters is developed to examine buckling behaviour much accurately. Based on the new first order shear deformation theory the equations of equilibrium are obtained from the principle of minimum potential energy. To simplify the equations of equilibrium and removing the bending-extension coupling, the buckling behaviours of PG nanoplates are investigated based on physical neutral surface concept. The equations of equilibrium are solved for various boundary conditions using Galerkin's method. The obtained results are compared with the results available in the literature to valid the correctness of present solution method. The effects of nonlocal parameter, strain gradient parameter, porosity volume fraction, power-law index, tempera. ture change, humidity change and boundary conditions on critical buckling load are presented.
机译:在本研究中,首次介绍了湿热环境中多孔双层功能梯度纳米板的屈曲行为。开发了具有两种材料刻度参数的非局部应变梯度论,以准确地检查屈曲行为。基于新的第一订单剪切变形理论,从最小势能原则获得平衡方程。为了简化平衡和去除弯曲延伸耦合的方程,基于物理中性表面概念研究了PG纳米板的屈曲行为。使用Galerkin的方法解决了各种边界条件的均衡方程。将得到的结果与文献中可获得的结果进行比较,以有效效果方法方法的正确性。非局部参数,应变梯度参数,孔隙度体积分数,电力法指数,蛋达的影响。提出了对关键屈曲负荷的变化,湿度变化和边界条件。

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