首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers. Part L, Journal of Materials: Design and Application >Viscoelastic material damping characteristics of carbon nanotubes based functionally graded composite shell structures
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Viscoelastic material damping characteristics of carbon nanotubes based functionally graded composite shell structures

机译:碳纳米管功能梯度复合壳结构的粘弹性材料阻尼特性

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This work deals with the study of viscoelastic modeling and vibration analysis of functionally graded nanocomposite shell panels where carbon nanotubes are reinforced in the polymer matrix based on the functionally graded distributions of carbon nanotubes. Five types of grading of carbon nanotubes (such as UD, FGX, FGV, FGO, and FG?) in the thickness directions have been considered in order to investigate the vibration damping performance of such composite shell panels. A detailed mathematical formulation for the determination viscoelastic properties is presented. The Mori-Tanaka micromechanics in conjunction with weak interface theory has been developed for the mathematical formulations of the viscoelastic modeling of carbon nanotubes based polymer matrix phase. An eight-noded shell element with five degrees-of-freedom per node has been formulated to study the vibration damping characteristics of various panels made by such functionally graded nanocomposite materials. The shell finite element formulation is based on the transverse shear effects as per the Mindlin's hypothesis, and stress resultant-type Koiter's shell theory. Impulse and frequency responses of such structures have been performed to study the effects of various important parameters (such as volume fraction of carbon nanotubes, interfacial condition, agglomeration, temperature, geometries of shell panel) on the dynamic responses. Obtained results demonstrate that quick vibration mitigation may be possible using such carbon nanotubes based proposed composite materials.
机译:这项工作涉及功能梯度的纳米复合材料壳板的粘弹性建模和振动分析的研究,其中基于碳纳米管的功能梯度分布在聚合物基质中增强了碳纳米管。为了研究这种复合壳板的减振性能,已经考虑了在厚度方向上碳纳米管的五种类型的分级(例如UD,FGX,FGV,FGO和FGα)。介绍了确定粘弹性的详细数学公式。结合弱界面理论的Mori-Tanaka微力学已经开发出来,用于基于碳纳米管的聚合物基体相的粘弹性建模的数学公式。已制定了每个节点具有五个自由度的八节点壳单元,以研究由这种功能梯度的纳米复合材料制成的各种面板的减振特性。壳的有限元公式是基于Mindlin假设的横向剪切效应和应力合力型Koiter壳理论得出的。已经进行了这种结构的脉冲和频率响应,以研究各种重要参数(例如碳纳米管的体积分数,界面条件,团聚,温度,壳板的几何形状)对动态响应的影响。所得结果表明,使用这种基于碳纳米管的复合材料可以快速减轻振动。

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