Modeling and solution of eigenvalue problems of laminated cylindrical shells consisting of nanocomposite plies in thermal environments

IF 2.2 3区 工程技术 Q2 MECHANICS
Abdullah H. Sofiyev
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Abstract

This work is dedicated to the modeling and solution of eigenvalue problems within shear deformation theory (SDT) of laminated cylindrical shells containing nanocomposite plies subjected to axial compressive load in thermal environments. In this study, the shear deformation theory for homogeneous laminated shells is extended to laminated shells consisting of functionally graded (FG) nanocomposite layers. The nanocomposite plies of laminated cylindrical shells (LCSs) are arranged in a piecewise FG distribution along the thickness direction. Temperature-dependent material properties of FG-nanocomposite plies are estimated through a micromechanical model, and CNT efficiency parameters are calibrated based on polymer material properties obtained from molecular dynamics simulations. After mathematical modeling, second-order time-dependent and fourth-order coordinate-dependent partial differential equations are derived within SDT, and a closed-form solution for the dimensionless frequency parameter and critical axial load is obtained for first time. After the accuracy of the applied methodology is confirmed by numerical comparisons, the unique influences of ply models, the number and sequence of plies and the temperature on the critical axial load and vibration frequency parameter within SDT and Kirchhoff–Love theory (KLT) are presented with numerical examples.

Abstract Image

热环境下纳米复合材料层叠圆柱壳的建模和特征值问题求解
本研究致力于在剪切变形理论(SDT)中对热环境下承受轴向压缩载荷的含有纳米复合材料层的层叠圆柱形壳体进行建模并解决特征值问题。本研究将均质层叠壳的剪切变形理论扩展到由功能分级(FG)纳米复合材料层组成的层叠壳。层压圆柱壳(LCS)的纳米复合材料层沿厚度方向呈片状分布。通过微机械模型估算了 FG 纳米复合材料层随温度变化的材料特性,并根据分子动力学模拟获得的聚合物材料特性校准了 CNT 效率参数。数学建模后,在 SDT 中导出了二阶时变偏微分方程和四阶坐标偏微分方程,并首次获得了无量纲频率参数和临界轴向载荷的闭式解。在通过数值比较证实了所应用方法的准确性之后,通过数值示例介绍了 SDT 和 Kirchhoff-Love 理论(KLT)中的层模型、层数和层序以及温度对临界轴向载荷和振动频率参数的独特影响。
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来源期刊
CiteScore
4.40
自引率
10.70%
发文量
234
审稿时长
4-8 weeks
期刊介绍: Archive of Applied Mechanics serves as a platform to communicate original research of scholarly value in all branches of theoretical and applied mechanics, i.e., in solid and fluid mechanics, dynamics and vibrations. It focuses on continuum mechanics in general, structural mechanics, biomechanics, micro- and nano-mechanics as well as hydrodynamics. In particular, the following topics are emphasised: thermodynamics of materials, material modeling, multi-physics, mechanical properties of materials, homogenisation, phase transitions, fracture and damage mechanics, vibration, wave propagation experimental mechanics as well as machine learning techniques in the context of applied mechanics.
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