Energy Absorption Capacity of Empty and Foam- Filled Concentric Cylindrical Tubes

Q4 Energy
S. Suresha, R. S
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引用次数: 0

Abstract

Axial folding of metal tubes has been renowned over ages as a superb energy-absorbing method. High-volume industrial items like automobiles, trains, and other sectors where energy must be absorbed in a controlled manner during a crush situation are using components based on this concept. From the perspective of passenger automobile safety design, it is crucial and anticipated to investigate crushing energy absorption. These are thoroughly investigated experimentally and computationally how aluminium foam-filled sections behave when compressed axially. To represent quasi-static test circumstances, nonlinear dynamic finite element studies are conducted. It is discovered that the predicted crushing force and fold formation are rather similar to the experimental facts. The mean crushing force of the foam-filled sections is calculated using straightforward closed-form methods based on the computational models. It is shown that the increase in the mean crushing force of a full column increases linearly with the cross-sectional area and foam compressive resistance. The proposal, for a variety of column designs, materials, and foam strengths, has been within 8% of the experimental data. Ultimately, the results highlight the advantages of using concentric cylindrical tubes to absorb impact energy in circumstances with axial loads. It only understands well how control the absorbed energy by using the geometrical features of such structures. The purpose of this study is to suggest design solutions on how to use concentric cylindrical tubes in energy absorption applications like crash-worthiness.
中空和泡沫填充同心圆管的能量吸收能力
金属管的轴向折叠作为一种极好的吸能方法,多年来一直享有盛名。大批量的工业项目,如汽车、火车和其他部门,在挤压情况下必须以受控的方式吸收能量,正在使用基于该概念的组件。从乘用车安全设计的角度出发,研究破碎能吸收是至关重要和值得期待的。这些都是彻底的实验和计算如何泡沫铝填充截面表现轴向压缩。为了表示准静态试验环境,进行了非线性动态有限元研究。结果表明,预测的破碎力和褶皱形态与实验结果相当接近。采用基于计算模型的直接闭式方法计算了泡沫填充截面的平均破碎力。结果表明,全柱平均破碎力的增加与截面积和泡沫抗压阻力成线性关系。对于各种柱设计、材料和泡沫强度,该建议的误差在实验数据的8%以内。最后,结果强调了在轴向载荷情况下使用同心圆柱管吸收冲击能量的优势。它只能很好地理解如何利用这种结构的几何特征来控制吸收的能量。本研究的目的是就如何在能量吸收应用中使用同心圆柱形管提出设计解决方案,如耐撞性。
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
Journal of Mines, Metals and Fuels
Journal of Mines, Metals and Fuels Energy-Fuel Technology
CiteScore
0.20
自引率
0.00%
发文量
101
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