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首页> 外文期刊>Thin-Walled Structures >Investigation of mechanical behavior of energy absorbers in expansion and folding modes under axial quasi-static loading in both experimental and numerical methods
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Investigation of mechanical behavior of energy absorbers in expansion and folding modes under axial quasi-static loading in both experimental and numerical methods

机译:轴向准静态载荷下能量吸收器在膨胀和折叠模式下的力学行为的实验和数值研究

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摘要

In this paper, a new form of energy absorbing structures has been introduced which energy absorbing is occurred during a combined process. The structure consists of a thin-walled aluminum matrix and a thin-walled steel punch. Energy is absorbed as the matrix gets expanded followed by simultaneous matrix and punch folding. In order to demonstrate the effectiveness of absorbent introduced, many samples of each type were fabricated and tested. In one case, it was found that, the new structure tends to absorb up to 32% more energy than sum of the energy absorbed by its individual parts. Also, the energy absorption properties and the parametric study were simulated using finite element code LS-Dyna. The results showed that among different section geometries, structures with rectangular section have the lowest energy absorption and the highest crush force efficiency; by increasing the number of sides of the cross section the absorbed energy increased and crush force efficiency is decreased. In addition, increasing the thickness of the punch leads to increased energy absorption. Also, it was found that, selecting an appropriate thickness for the punch, one can predict overall shape of load-displacement curve and maximum force location for the combined structure.
机译:本文介绍了一种新形式的能量吸收结构,这种能量吸收是在组合过程中发生的。该结构由一个薄壁铝基体和一个薄壁钢冲头组成。随着基质膨胀,随后同时进行基质和冲头折叠,能量被吸收。为了证明引入的吸收剂的有效性,制造并测试了每种类型的许多样品。在一种情况下,发现新结构比其单个部件吸收的能量总和倾向于吸收多达32%的能量。此外,使用有限元代码LS-Dyna模拟了能量吸收特性和参数研究。结果表明,在不同截面几何形状中,矩形截面的结构吸能最低,压溃力效率最高。通过增加横截面的侧面数,吸收的能量增加,压碎力效率降低。另外,增加冲头的厚度导致增加的能量吸收。同样,发现为冲头选择合适的厚度,可以预测载荷-位移曲线的整体形状和组合结构的最大受力位置。

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