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Linear thermal buckling analysis of truncated hybrid FGM conical shells

机译:截断混合FGM圆锥壳的线性热屈曲分析

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In this study buckling analysis of a functionally graded conical shell integrated with piezoelectric layers that is subjected to combined action of thermal and electrical loads is presented. The material properties of functionally graded conical shells are assumed to vary continuously through the thickness direction based on a power law form. The governing equations, including the equilibrium and stability equations, are obtained based on the classical shell theory and the Sanders nonlinear kinematics relations. The case of uniform temperature distribution through the shell domain is considered. The prebuckling forces are obtained considering the membrane solutions of linear equilibrium equations. Minimum potential energy criterion is employed to establish the stability equations. The single-mode Galerkin method is used to obtain the critical buckling temperature difference. The results are compared with the known data in the open literature. Finally, some numerical results are presented to study the effects of applied actuator voltage, shell geometry, and power law index of FGM on thermal buckling behavior of the conical shell.
机译:在这项研究中,提出了功能梯度锥形壳与压电层的屈曲分析,该压电壳经受了热负荷和电负荷的共同作用。假定功能梯度圆锥壳的材料特性基于幂律形式在厚度方向上连续变化。基于经典壳理论和桑德斯非线性运动学关系,获得了包括平衡和稳定性方程在内的控制方程。考虑通过壳区域均匀温度分布的情况。考虑到线性平衡方程的膜解,可以得出预屈曲力。采用最小势能准则建立稳定性方程。单模Galerkin方法用于获得临界屈曲温度差。将结果与公开文献中的已知数据进行比较。最后,给出一些数值结果,以研究施加的致动器电压,壳体几何形状以及FGM的幂律指数对锥形壳体的热屈曲行为的影响。

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