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Vibration and damping analysis of functionally graded carbon nanotubes reinforced hybrid composite shell structures

机译:功能梯度碳纳米管增强杂交复合壳结构的振动和阻尼分析

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The present article deals with the vibration and damping analysis of functionally graded carbon nanotubes reinforced hybrid composite (FG-CNTRHC) shell structure which consists of conventional carbon fiber as reinforcing phase and single-walled carbon nanotubes based polymer as matrix phase. The Eshelby-Mori-Tanaka approach in conjunction with strength of material approach is implemented to obtain the material properties of FG-CNTRHC structures. The material properties of FG-CNTRHCs are assumed to be graded through the thickness direction according to power law distributions of the volume fraction of carbon fibers and fiber orientations. An eight node shell element considering transverse shear effect according to Mindlin's hypothesis has been formulated for finite element modelling and analysis of such functionally graded hybrid composite shell structures. The formulation of shell midsurface in an arbitrary curvilinear coordinate system based on the tensorial notation also presented. The Rayleigh damping model has been implemented in order to study the effects of carbon nanotubes (CNTs) on damping capacity of such hybrid shell structures. Different types of spherical shell panels have been analyzed in order to study the time and frequency responses. The influences of CNTs, carbon fiber, geometry of the shell, power law index and material distributions on the vibration damping characteristics of FG-CNTRHC shell structures have also been presented and discussed. Various types of FG-CNTRHC shell structures (such as spherical, ellipsoidal, doubly curved and cylindrical) have been analyzed and discussed in order to comparative studies in terms of settling time, first resonant frequency and absolute amplitude corresponding to first resonant frequency and the effects of CNTs on vibrations responses of such shell structures are also presented.
机译:本文涉及功能梯度碳纳米管的振动和阻尼分析增强杂化复合物(FG-CNTRHC)壳结构,其包括常规碳纤维作为增强相和单壁碳纳米管的基于基质相。实施了eShelby-Mori-Tanaka方法,与材料方法的强度结合起来,以获得FG-CNTRHC结构的材料特性。假设FG-CNTRHCS的材料特性根据碳纤维和纤维取向的体积分数的电力律分布来通过厚度方向进行分级。八个节点壳元素考虑了根据Mindlin的假设的横剪效应,用于有限元建模和这种功能梯生混合复合壳结构的有限元建模和分析。基于张力符号的任意曲线坐标系中的壳中脸部的制定也提出。已经实施了瑞利阻尼模型以研究碳纳米管(CNT)对这种混合壳结构的阻尼能力的影响。已经分析了不同类型的球形壳板以研究时间和频率响应。还提出并讨论了CNT,碳纤维,外壳,电力指数和材料分布对FG-CNTRHC壳结构的振动阻尼特性的影响。已经分析并讨论了各种类型的FG-CNTRHC壳结构(例如球形,椭圆形,双弯曲和圆柱形),以便在稳定时间方面进行比较研究,第一谐振频率和对应于第一谐振频率和效果的绝对幅度还提出了在振动上的CNT振动这种壳结构的反应。

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