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首页> 外文期刊>Results in Physics >Vibration and bending behavior of functionally graded nanocomposite doubly-curved shallow shells reinforced by graphene nanoplatelets
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Vibration and bending behavior of functionally graded nanocomposite doubly-curved shallow shells reinforced by graphene nanoplatelets

机译:石墨烯纳米片增强的功能梯度纳米复合材料双弯曲浅壳的振动和弯曲行为

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摘要

Free vibration and static bending of functionally graded (FG) graphene nanoplatelet (GPL) reinforced composite doubly-curved shallow shells with three distinguished distributions are analyzed. Material properties with gradient variation in the thickness aspect are evaluated by the modified Halpin-Tsai model. Mathematical model of the simply supported doubly-curved shallow shells rests upon Hamilton Principle and a higher order shear deformation theory (HSDT). The free vibration frequencies and bending deflections are gained by taking into account Navier technique. The agreement between the obtained results and ANSYS as well as the prior results in the open literature verifies the accuracy of the theory in this article. Further, parametric studies are accomplished to highlight the significant influence of GPL distribution patterns and weight fraction, stratification number, dimensions of GPLs and shells on the mechanical behavior of the system.
机译:分析了功能梯度(FG)石墨烯纳米片(GPL)增强的复合双弯曲浅壳的自由振动和静态弯曲,其具有三个明显的分布。通过改进的Halpin-Tsai模型评估厚度方面具有梯度变化的材料属性。简支双曲线浅壳的数学模型基于汉密尔顿原理和高阶剪切变形理论(HSDT)。自由振动频率和弯曲挠度是通过考虑Navier技术获得的。所获得的结果与ANSYS以及公开文献中的先前结果之间的一致性证明了本文理论的准确性。此外,已完成参数研究,以突出GPL分布模式和重量分数,分层数,GPL尺寸和外壳对系统机械性能的重大影响。

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