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Nonlinear instability of hydrostatic pressurized hybrid FGM exponential shear deformable nanoshells based on nonlocal continuum elasticity

机译:基于非局部连续弹性的静水加压混合FGM指数剪切可变形纳米壳的非线性不稳定性

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The size-dependent radial buckling and postbuckling behavior of functionally graded cylindrical shells at nanoscale integrated with piezoelectric nanolayers is studied in this paper on the basis of nonlocal elasticity theory within the framework of exponential shear deformation shell theory to capture the influence of transverse shear deformation in a refined form. By introducing a new reference surface, the stretching-bending coupling terms due to unsymmetrical material characteristics related to the functionally graded substrate of nanoshell are removed. After that, with the aid of boundary layer of shell buckling, the non-classical partial nonlinear differential equations are constructed to describe the nonlocal instability of nanoscaled shells. Finally, a perturbation-based solution methodology is utilized to propose explicit expressions for the nonlocal equilibrium paths associated with the both prebuckling and postbuckling domains of hybrid functionally graded nanoshells subjected to the combination of hydrostatic pressure and lateral electric field. It is seen that the nonlocality size effect causes to reduce the critical hydrostatic pressure, but it leads to increase the associated shortening of the movable ends of hybrid functionally graded nanoshells. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文基于非局部弹性理论,在指数剪切变形壳理论的框架内,研究了功能梯度圆柱壳在纳米尺度上与压电纳米层的尺寸相关的径向屈曲和后屈曲行为,以捕获横向剪切变形的影响。精致的形式。通过引入新的参考表面,消除了与功能分级的纳米壳基材有关的不对称材料特性引起的拉伸-弯曲耦合项。之后,借助壳屈曲的边界层,构造了非经典的部分非线性微分方程,描述了纳米尺度壳的非局部不稳定性。最后,基于摄动的解决方法被用来为与混合功能梯度纳米壳在静水压力和横向电场共同作用下的预屈曲和后屈曲域相关的非局部平衡路径提出明确的表达式。可以看出,非局部尺寸效应导致减小临界静水压力,但它导致杂化功能梯度纳米壳的可移动端的相关缩短。 (C)2017 Elsevier Ltd.保留所有权利。

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