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A refined exponential shear deformation theory for free vibration of FGM beam with porosities

机译:含孔隙的FGM梁自由振动的精细指数剪切变形理论

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摘要

In this paper, a refined exponential shear deformation theory for free vibration analysis of functionally graded beam with considering porosities that may possibly occur inside the functionally graded materials (FGMs) during their fabrication. For this purpose, a new displacement field based on refined shear deformation theory is implemented. The theory accounts for parabolic distribution of the transverse shear strains and satisfies the zero traction boundary conditions on the surfaces of the beam without using shear correction factors. Based on the present refined shear deformation beam theory, the equations of motion are derived from Hamilton's principle. The rule of mixture is modified to describe and approximate material properties of the FG beams with porosity phases. The accuracy of the present solutions is verified by comparing the obtained results with the existing solutions. Illustrative examples are given also to show the effects of varying gradients, porosity volume fraction, aspect ratios, and thickness to length ratios on the free vibration of the FG beams.
机译:在本文中,针对功能梯度梁的自由振动分析,提出了一种精细的指数剪切变形理论,其中考虑了在其制造过程中可能在功能梯度材料(FGM)内部产生的孔隙。为此,实现了基于精细剪切变形理论的新位移场。该理论考虑了横向剪切应变的抛物线分布,并且在不使用剪切校正因子的情况下满足了梁表面的零牵引边界条件。基于目前的精细剪切变形梁理论,根据汉密尔顿原理导出运动方程。修改了混合规则,以描述和近似具有多孔相的FG梁的材料特性。通过将获得的结果与现有解决方案进行比较,可以验证本解决方案的准确性。还给出了说明性示例,以显示变化的梯度,孔隙率,体积比,纵横比以及厚度与长度之比对FG梁自由振动的影响。

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