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Postbuckling of functionally graded graphene-reinforced composite laminated cylindrical shells subjected to external pressure in thermal environments

机译:在热环境中承受外部压力的功能梯度石墨烯增强复合材料层压圆柱壳的后屈曲

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摘要

The current investigation deals with the buckling and postbuckling behaviors of graphene-reinforced composite (GRC) laminated cylindrical shells subjected to lateral or hydrostatic pressure under thermal environmental conditions. The piece-wise GRC layers are arranged in a functionally graded (FG) pattern along the thickness direction of the shells. The temperature dependent material properties of GRCs are estimated by the extended Halpin-Tsai micromechanical model with graphene efficiency parameters being calibrated against the GRC material properties from a molecular dynamics simulation study. We employ the Reddy's higher order shear deformable shell theory in association with the von Karman geometric nonlinearity to model the shell buckling problem under different thermal environmental conditions. The buckling pressure and the postbuckling equilibrium path for the perfect and geometrically imperfect GRC laminated cylindrical shells are obtained by applying a singular perturbation technique along with a two-step perturbation approach. We observe that the piece-wise functionally graded distribution of graphene reinforcement can increase the buckling pressure and the postbuckling strength of the GRC laminated cylindrical shells subjected to external pressure.
机译:当前的研究涉及石墨烯增强复合材料(GRC)层压圆柱壳在热环境条件下承受侧向或静水压力的屈曲和后屈曲行为。分段的GRC层沿着外壳的厚度方向按功能渐变(FG)模式排列。通过扩展的Halpin-Tsai微力学模型估算GRC的温度相关材料特性,并根据分子动力学模拟研究针对GRC材料特性对石墨烯效率参数进行校准。我们将Reddy的高阶剪切可变形壳理论与von Karman几何非线性联系起来,以对不同热环境条件下的壳屈曲问题进行建模。通过使用奇异摄动技术和两步摄动方法,可以获得理想的和几何上不完美的GRC叠层圆柱壳的屈曲压力和屈曲后的平衡路径。我们观察到石墨烯增强材料的分段功能梯度分布可以增加承受外部压力的GRC层压圆柱壳的屈曲压力和后屈曲强度。

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