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Thermal effects on the free vibration of joined FG-CNTRC conical-conical shells

机译:加入的FG-CNTRC圆锥形壳体自由振动的热效应

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In this paper, the effects of temperature on free vibration of carbon nanotube reinforced composite (CNTRC) joined conical-conical shells are investigated. Carbon nanotubes (CNTs) are embedded across the thickness uniformly or functionally. Material properties of the shell are assumed to be functions of temperature. To study the free vibration of shells settled in thermal environments, it requires solving the static equations. Therefore, in order to derive these equations, first order shear deformation theory (FSDT) accompanied by von Karman types of geometrical nonlinearity are employed in Hamilton's principle. Then, initial stress resultants due to equilibrium state, are extracted via linear membrane solution. Afterward, equations of motion are derived with regard to initial deformations and stresses. With considering the equations of motion for two cones together with boundary and continuity conditions, a set of governing equations is provided. To discretize the governing equations meridionally, generalized differential quadrature (GDQ) method is proposed. The results are primarily validated via comparing them with those of relevant researches in this field. Thereafter, some studies are carried out to exhibit the significant role of temperature variations, CNT distribution patterns, CNT volume fractions, cones' angles and boundary conditions on the free vibrational behaviors of joined conical shells. For the sake of preventing buckling occurrence during the present vibration analysis, critical buckling temperature T-cr is obtained by the procedure that the natural frequency takes zero value for the lowest temperature.
机译:本文研究了温度对碳纳米管增强复合复合物(CNTRC)的自由振动的影响得到了连接的锥形圆锥壳。碳纳米管(CNT)均匀地或功能均匀地嵌入厚度上。假设壳体的材料特性是温度的功能。为研究壳体的自由振动沉降在热环境中,需要解决静态方程。因此,为了导出这些方程,首次阶剪切变形理论(FSDT)伴随着Von Karman类型的几何非线性,在汉密尔顿的原则中采用。然后,通过线性膜溶液提取由于平衡状态引起的初始应力结果。之后,关于初始变形和应力,导出运动方程。考虑到两个锥体的运动方程以及边界和连续性条件,提供了一组控制方程。为了使管理方程值得分开,提出了广义差分正交(GDQ)方法。结果通过将它们与该领域的相关研究进行比较来验证。此后,进行一些研究以表现出温度变化,CNT分布图案,CNT体积分数,锥形角度和边界条件对连接的锥形壳的自由振动行为的显着作用。为了防止在本振动分析期间屈曲发生,通过该过程获得了关键屈曲温度T-CR,即固体频率为最低温度为零值。

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