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On modeling of wave propagation in a thermally affected GNP-reinforced imperfect nanocomposite shell

机译:在热影响GNP增强的不完美纳米复合材料壳中波传播的建模

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Due to rapid development of process manufacturing, composite materials with porosity have attracted commercial attention in promoting engineering applications. For this regard, in this research wave propagation-thermal characteristics of a size-dependent graphene nanoplatelet-reinforced composite (GNPRC) porous cylindrical nanoshell in thermal environment are investigated. The effects of small scale are analyzed based on nonlocal strain gradient theory (NSGT). The governing equations of the laminated composite cylindrical nanoshell in thermal environment have been evolved using Hamilton's principle and solved with the assistance of the analytical method. For the first time, wave propagation-thermal behavior of a GNPRC porous cylindrical nanoshell in thermal environment based on NSGT is examined. The results show that by increasing the thickness, the effect of porosity on the phase velocity decreases. Another important result is that by increasing the value of the radius, the difference between the minimum and maximum values of the phase velocity increases. Finally, influence of temperature change, wave number, angular velocity and different types of porosity distribution on phase velocity are investigated using the mentioned continuum mechanics theory. As a useful suggestion, for designing of a GPLRC nanostructure should be attention to the GNP weight function and radius, simultaneously.
机译:由于过程制造的快速发展,具有孔隙率的复合材料在促进工程应用方面引起了商业关注。为此,在这项研究中,研究了在热环境中尺寸依赖的石墨烯纳米片增强复合材料(GNPRC)多孔圆柱纳米壳的波传播-热特性。基于非局部应变梯度理论(NSGT)分析了小尺度效应。利用汉密尔顿原理推导了层状复合圆柱纳米壳在热环境下的控制方程,并借助解析方法进行了求解。首次研究了基于NSGT的GNPRC多孔圆柱纳米壳在热环境中的波传播-热行为。结果表明,通过增加厚度,孔隙率对相速度的影响减小。另一个重要的结果是,通过增加半径的值,相速度的最小值和最大值之间的差会增加。最后,利用所提到的连续力学原理,研究了温度变化,波数,角速度和不同类型的孔隙度对相速度的影响。作为有用的建议,在设计GPLRC纳米结构时,应同时注意GNP的重量函数和半径。

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