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首页> 外文期刊>Thin-Walled Structures >Out-of-plane crashworthiness analysis of bio-inspired aluminum honeycomb patterned with horseshoe mesostructure
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Out-of-plane crashworthiness analysis of bio-inspired aluminum honeycomb patterned with horseshoe mesostructure

机译:具有马蹄形介孔结构的仿生铝蜂窝的平面外耐撞性分析

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Numerous composite structures with excellent integrative performance that can replicate the mechanical properties of biological materials have been created to fill gaps in material-property charts, and these bio-inspired structures have crucial implications in a wide range of engineering communities. In this paper, a series of novel bio-inspired aluminum honeycombs consisting of horseshoe mesostructure have been proposed on the basis of triangular honeycomb, square honeycomb, hexagonal honeycomb and kagome honeycomb to improve the energy absorption capacity. The three-dimensional finite element models of the bio-inspired horseshoe shaped aluminum honeycombs are developed in order to explore the mechanical behaviors under the out-of-plane uniform compression. The simulation results are validated based on the compression experiments of regular hexagonal honeycombs. Besides, parametric investigations are carried out to understand the influences of the wave amplitude, wave number and cell-wall thickness on the out-of-plane crashworthiness. The numerical results demonstrate that adding the horseshoe mesostructure to the regular honeycombs can increase the plateau force greatly compared with the traditional honeycomb structure, leading to the higher specific energy absorption although increasing the initial peak force as well. Finally, a multi-objective optimization is carried out to seek for the optimal honeycombs with the maximum specific energy absorption together with the minimum initial peak force simultaneously.
机译:已经创建了许多具有出色综合性能的复合结构,这些复合结构可以复制生物材料的机械特性,以填补材料性能图表中的空白,而这些具有生物启发性的结构在广泛的工程领域中具有至关重要的意义。本文在三角形蜂窝,方形蜂窝,六角形蜂窝和kagome蜂窝的基础上,提出了一系列由马蹄形介孔结构组成的新型生物启发铝蜂窝,以提高能量吸收能力。为了探索平面外均匀压缩下的力学行为,开发了具有生物启发性的马蹄形铝蜂窝的三维有限元模型。仿真结果基于正六边形蜂窝的压缩实验得到验证。此外,还进行了参数研究,以了解波幅,波数和单元壁厚度对面外耐撞性的影响。数值结果表明,与常规蜂窝结构相比,在常规蜂窝结构中增加马蹄形介孔结构可以大大增加平台力,尽管增加了初始峰值力,但比吸收率更高。最后,进行了多目标优化,以寻求同时具有最大比能量吸收和最小初始峰值力的最佳蜂窝。

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