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Effect of low density, low strength polyurethane foam on the energy absorption characteristics of circumferentially grooved thick-walled circular tubes

机译:低密度,低强度聚氨酯泡沫对周向开槽厚壁圆管能量吸收特性的影响

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摘要

In this paper, analytical and experimental investigations are performed on the energy absorption characteristics of circumferentially grooved thick-walled circular tubes filled with low density and very low strength polyurethane foam typical of cushioning material. Thick-walled grooved tubes filled with low density foam are prepared for experiments. The results are also compared with the ones for the geometrically identical empty tubes. Employing the Taguchi method for designing the geometrical parameters of the specimens leads to a suitable range of groove length-to-wall thickness ratios to be covered. Based on the concept of energy dissipation through the circumferential plastic hinges during the successive folding of the specimens, an analytical approach is proposed. In addition, the amount of energy dissipated due to the interaction between tube metal and foam material is expressed by a conventional semi-empirical equation. A new constant, C_(av), for low strength foam material is found by fitting the experimental data. The modified analytical model is in reasonable agreement with the experiments. This may indicate the validity of the proposed analytical model. The obtained results show that grooved thick-walled tubes filled with low strength foams can offer favorable energy absorption capacity and stability. Euler buckling is prevented due to the grooves and specific energy absorption is increased approximately twice that of the empty tubes. Structural effectiveness is increased nearly two times that of the empty tubes.
机译:在本文中,对填充有低密度和非常低强度聚氨酯泡沫(通常为缓冲材料)的圆周开槽的厚壁圆形管的能量吸收特性进行了分析和实验研究。准备用于实验的填充有低密度泡沫的厚壁沟槽管。还将结果与几何上相同的空管的结果进行比较。使用Taguchi方法设计试样的几何参数会导致要覆盖的沟槽长度与壁厚之比的合适范围。基于在样品连续折叠过程中通过周向塑料铰链耗能的概念,提出了一种分析方法。另外,由于管金属和泡沫材料之间的相互作用而耗散的能量的量由常规的半经验方程式表示。通过拟合实验数据,找到了低强度泡沫材料的新常数C_(av)。改进后的分析模型与实验合理吻合。这可能表明提出的分析模型的有效性。所得结果表明,填充有低强度泡沫的开槽厚壁管可以提供良好的能量吸收能力和稳定性。由于凹槽而避免了欧拉屈曲,并且比能量吸收增加了大约是空管的两倍。结构效率提高了将近空管的两倍。

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