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首页> 外文期刊>Steel & Composite Structures: An International Journal >Elastodynamic and wave propagation analysis in a FG graphene platelets-reinforced nanocomposite cylinder using a modified nonlinear micromechanical model
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Elastodynamic and wave propagation analysis in a FG graphene platelets-reinforced nanocomposite cylinder using a modified nonlinear micromechanical model

机译:FG石墨烯血小板中加固纳米复合圆筒的弹性动力学和波传播分析使用改进的非线性微机械模型

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摘要

This paper deals with the transient dynamic analysis and elastic wave propagation in a functionally graded graphene platelets (FGGPLs)-reinforced composite thick hollow cylinder, which is subjected to shock loading. A micromechanical model based on the Halpin-Tsai model and rule of mixture is modified for nonlinear functionally graded distributions of graphene platelets (GPLs) in polymer matrix of composites. The governing equations are derived for an axisymmetric FGGPLs-reinforced composite cylinder with a finite length and then solved using a hybrid meshless method based on the generalized finite difference (GFD) and Newmark finite difference methods. A numerical time discretization is performed for the dynamic problem using the Newmark method. The dynamic behaviors of the displacements and stresses are obtained and discussed in detail using the modified micromechanical model and meshless GFD method. The effects of the reinforcement of the composite cylinder by GPLs on the elastic wave propagations in both displacement and stress fields are obtained for various parameters. It is concluded that the proposed micromechanical model and also the meshless GFD method have a high capability to simulate the composite structures under shock loadings, which are reinforced by FGGPLs. It is shown that the modified micromechanical model and solution technique based on the meshless GFD method are accurate. Also, the time histories of the field variables are shown for various parameters.
机译:本文涉及功能梯度石墨烯血小板(FGGPL)中的瞬态动力学分析和弹性波传播 - 重新凝固的复合厚的空心圆柱体,其受冲击载荷。基于复合材料的聚合物基质中的石墨烯血小板(GPLS)的非线性功能梯度分布,改变了基于Halpin-Tsai模型和混合物规则的微机械模型。通过基于广义有限差(GFD)和Newmark有限差分方法,使用有限长度的轴对称FGGPLS加强复合圆筒导出,具有有限长度,然后使用基于广义的有限差(GFD)和Newmark有限差分方法来解决。使用纽马克方法对动态问题执行数值离散化。使用改进的微机械模型和无网格GFD方法,获得并详细讨论了位移和应力的动态行为。通过GPLS对两个位移和应力场中的弹性波传播的GPL对复合汽缸的增强的影响得到了各种参数。得出结论,所提出的微机械模型以及无网格GFD方法具有高能力,可以模拟冲击载荷下的复合结构,这通过FGGPL增强。结果表明,基于无网格GFD方法的改进的微机械模型和解决方案技术是准确的。此外,对于各种参数,示出了场变量的时间历史。

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