Su Pengbo, Han Bin, Wang Yiming, Wang Hui, Gao Bo, Lu Tian Jian
Xi'an Institute of Space Radio Technology, Xi'an 710100, China.
School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Materials (Basel). 2023 Oct 9;16(19):6605. doi: 10.3390/ma16196605.
Inspired by material hybrid design, novel hybrid sandwich shells were developed by filling a corrugated cylindrical structure with aluminum foam to achieve higher energy absorption performance. The crushing behavior of the foam-filled corrugated sandwich cylindrical shells (FFCSCSs) was investigated using theoretical and numerical methods. Numerical results revealed a significant enhancement in the energy absorption of FFCSCSs under axial compression, showcasing a maximum specific energy absorption of 60 kJ/kg. The coupling strengthening effect is highly pronounced, with a maximum value of F¯c/F¯ reaching up to 40%. The mechanism underlying this phenomenon can be approached from two perspectives. Firstly, the intrusion of folds into the foam insertions allows for more effective foam compression, maximizing its energy absorption capacity. Secondly, foam causes the folds to bend upwards, intensifying the mutual compression between the folds. This coupling mechanism was further investigated with a focus on analyzing the influence of parameters such as the relative density of the foam, the wall thickness of the sandwich shell, and the material properties. Moreover, a theoretical model was developed to accurately predict the mean crushing force of the FFCSCSs. Based on this model, the influence of various variables on the crushing behavior of the structure was thoroughly investigated through parametric studies.
受材料混合设计的启发,通过用泡沫铝填充波纹圆柱结构开发了新型混合夹层壳,以实现更高的能量吸收性能。采用理论和数值方法研究了泡沫填充波纹夹层圆柱壳(FFCSCSs)的压缩行为。数值结果表明,FFCSCSs在轴向压缩下的能量吸收显著增强,最大比能量吸收为60 kJ/kg。耦合强化效应非常显著,F¯c/F¯的最大值可达40%。这种现象背后的机制可以从两个角度来探讨。首先,褶皱侵入泡沫填充物可使泡沫更有效地压缩,从而最大限度地提高其能量吸收能力。其次,泡沫使褶皱向上弯曲,加剧了褶皱之间的相互挤压。进一步研究了这种耦合机制,重点分析了泡沫的相对密度、夹层壳的壁厚和材料性能等参数的影响。此外,还建立了一个理论模型来准确预测FFCSCSs的平均压缩力。基于该模型,通过参数研究深入研究了各种变量对结构压缩行为的影响。