Shear buckling of steel foam sandwich panel resting on Pasternak foundation

Q3 Engineering
Ebrahim Nazarimofrad, Mehdi Barang
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引用次数: 1

Abstract

Abstract The objective of this paper is to assess the inplane shear buckling of a steel foam sandwich panel that relies on elastic Pasternak foundation. The panel is a combination of solid steel face sheets and foamed steel cores. Foamed steel, that is steel with internal voids, provides enhanced bending rigidity and energy dissipation, and also, the potential to reduce local buckling. The Classic plate theory is employed where their governing equations are solved by the Rayleigh–Ritz method. Uniformly distributed in-plane shear loads are applied to the two opposite edges of the panel and all the four edges of the panel are simply supported. Finally, the effects of the panel parameters, such as the existence of a Pasternak foundation, aspect ratios, and central fraction of the steel foam core, are presented. The results showed that the optimum central fraction of the steel foam core would be 65%, so that the maximum critical shear buckling load has taken place.
帕斯捷尔纳克基础上泡沫钢夹芯板的剪切屈曲
摘要本文的目的是评估依靠弹性帕斯捷尔纳克基础的泡沫钢夹芯板的面内剪切屈曲。面板是实心钢板和泡沫钢芯的组合。泡沫钢,即内部有孔洞的钢,提供了增强的抗弯刚度和能量耗散,同时,也有可能减少局部屈曲。采用经典板块理论,用瑞利-里兹法求解其控制方程。在板的两个相对边缘上施加均匀分布的面内剪切荷载,板的四个边缘都是简支的。最后,给出了面板参数的影响,如帕斯捷尔纳克基础的存在、宽高比和泡沫钢芯的中心分数。结果表明,泡沫钢芯的最佳中心分数为65%,此时出现了最大临界剪切屈曲载荷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Mechanics and Mechanical Engineering
Mechanics and Mechanical Engineering Engineering-Automotive Engineering
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