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首页> 外文期刊>Advances in Aircraft and Spacecraft Science >A novel first order refined shear-deformation beam theory for vibration and buckling analysis of continuously graded beams
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A novel first order refined shear-deformation beam theory for vibration and buckling analysis of continuously graded beams

机译:一种新的一级精细剪切变形光束理论,用于连续分级梁的振动和屈曲分析

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摘要

In this work, a novel first-order shear deformation beam theory is applied to explore the vibration and buckling characteristics of thick functionally graded beams. The material properties are assumed to vary across the thickness direction in a graded form and are estimated by a power-law model. A Fourier series-based solution procedure is implemented to solve the governing equation derived from Hamilton's principle. The obtained results of natural frequencies and buckling loads of functionally graded beam are checked with those supplied in the literature and demonstrate good achievement. Influences of several parameters such as power law index, beam geometrical parameters, modulus ratio and axial load on dynamic and buckling behaviors of FGP beams are all discussed.
机译:在这项工作中,应用了一种新的一阶剪切变形光束理论来探讨厚的功能分级梁的振动和屈曲特性。假设材料特性以分级形式横跨厚度方向变化,并且由幂律模型估计。基于傅里叶级的解决方案程序实施,以解决汉密尔顿原则的控制方程。通过在文献中提供的那些,检查所得固有频率和屈曲载荷的屈曲负荷,并展示良好的成就。据讨论了诸如电力法指数,梁几何参数,模量比和轴向载荷的若干参数的影响,都讨论了FGP光束的动态和屈曲行为。

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