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首页> 外文期刊>Mechanics of Advanced Materials and Structures >Vibration and Buckling of Thin-Walled Composite I-Beams with Arbitrary Lay-Ups under Axial Loads and End Moments
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Vibration and Buckling of Thin-Walled Composite I-Beams with Arbitrary Lay-Ups under Axial Loads and End Moments

机译:轴向载荷和端矩作用下任意放置的薄壁复合工字梁的振动和屈曲

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摘要

A finite element model with seven degrees of freedom per node is developed to study vibration and buckling of thin-walled composite I-beams with arbitrary lay-ups under constant axial loads and equal end moments. This model is based on the classical lamination theory, and accounts for all the structural coupling coming from material anisotropy. The governing differential equations are derived from the Hamilton's principle. Numerical results are obtained for thin-walled composite I-beams to investigate the effects of axial force, bending moment and fiber orientation on the buckling moments, natural frequencies, and corresponding vibration mode shapes as well as axial-moment-frequency interaction curves.
机译:建立了每个节点具有七个自由度的有限元模型,以研究在恒定轴向载荷和相等端力矩下具有任意层数的薄壁复合工字梁的振动和屈曲。该模型基于经典的叠层理论,并考虑了所有来自材料各向异性的结构耦合。控制微分方程是从汉密尔顿原理导出的。获得了薄壁复合工字梁的数值结果,以研究轴向力,弯矩和纤维取向对屈曲矩,固有频率和相应的振动模式形状以及轴向-矩-频率相互作用曲线的影响。

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