Karami Behrouz, Shahsavari Davood, Janghorban Maziar, Dimitri Rossana, Tornabene Francesco
Department of Mechanical Engineering, Marvdasht Branch, Islamic Azad University, Marvdasht 73711-13119, Iran.
Department of Innovation Engineering, Università del Salento, Lecce 73100, Italy.
Nanomaterials (Basel). 2018 Dec 24;9(1):22. doi: 10.3390/nano9010022.
This study aims at investigating the wave propagation of porous nanoshells. The Bi-Helmholtz non-local strain gradient theory is employed in conjunction with a higher-order shear deformation shell theory, in order to include the size-dependent effects. The nanoshells are made of a porous functionally graded material (P-FGM), whose properties vary continuously along the thickness direction. A variational approach is here applied to handle the governing equations of the problem, which are solved analytically to compute the wave frequencies and phase velocities as function of the wave numbers. The sensitivity of the wave response is analyzed for a varying porosity volume fraction, material properties, non-local parameters, strain gradient length scales, temperature, humidity, and wave numbers. Based on the results, it is verified that the size-dependence of the response is almost the same to the one of plates, beams and tubes.
本研究旨在研究多孔纳米壳的波传播特性。将双亥姆霍兹非局部应变梯度理论与高阶剪切变形壳理论相结合,以考虑尺寸效应。纳米壳由多孔功能梯度材料(P-FGM)制成,其性能沿厚度方向连续变化。本文采用变分法处理该问题的控制方程,并通过解析求解来计算作为波数函数的波频率和相速度。分析了孔隙率体积分数、材料性能、非局部参数、应变梯度长度尺度、温度、湿度和波数变化时波响应的敏感性。基于结果验证了响应的尺寸依赖性与板、梁和管的尺寸依赖性几乎相同。