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Analytical and experimental studies on quasi-static axial crush behavior of thin-walled tailor-made aluminum tubes

机译:薄壁量身定制的铝管准静态轴向挤压行为的分析和实验研究

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In this paper, the crush behavior of segmented circular tubes, made of aluminum alloy 6061 and subjected to quasi-static axial loading, has been analytically and experimentally investigated. Crush behavior of these tubes was modeled by integrating available analytical models and superposition principle. In the certain overall length of segmented circular tubes, effects of changing the wall thickness and length of each segment on the energy absorption characteristics have been evaluated. One successful approach toward obtaining lightweight energy absorbers with high energy absorption capacity is the use of thin-walled Tailor-Made Tubes (TMTs). In these tubes, the thickness and mechanical properties of the wall vary along the length of the tube. Applying these tubes; crush force can be controlled by changing the length and thickness of each tube segment, improving the performance of energy absorbing systems. Results of this research showed that Tailor-made tubes have higher energy absorption capacity at identical crush lengths, and they can absorb more energy per unit weight compared to simple tubes with constant wall thickness and mechanical properties. Moreover, for the same specific energy absorption, the TMTs exhibit a considerable reduction in the magnitude of the mean and initial maximum crush forces. With the use of TMTs, the maximum crush force shifts to the end of the crush range, reducing the exerted deceleration on occupants and equipments. Comparing mean crush force and specific energy absorption obtained by analytical and experimental approaches, it was observed that combining current analytical models with superposition principle can prepare a set of analytical formulations to predict TMTs crush characteristics within an acceptable proximity.
机译:本文对铝合金6061制圆管在准静态轴向载荷作用下的抗压性能进行了分析和实验研究。通过集成可用的分析模型和叠加原理对这些管的挤压行为进行建模。在分段圆管的一定总长度中,已经评估了改变每个分段的壁厚和长度对能量吸收特性的影响。获得具有高能量吸收能力的轻型能量吸收器的一种成功方法是使用薄壁量身定制的管(TMT)。在这些管中,壁的厚度和机械性能沿管的长度变化。应用这些管;可以通过改变每个管段的长度和厚度来控制挤压力,从而提高能量吸收系统的性能。研究结果表明,与具有恒定壁厚和机械性能的简单管材相比,量身定制的管材在相同的压溃长度下具有更高的能量吸收能力,并且每单位重量可以吸收更多的能量。而且,对于相同的比能量吸收,TMT在平均和初始最大挤压力的大小上显示出相当大的降低。使用TMT时,最大挤压力会移至挤压范围的末端,从而减少对乘员和设备施加的减速度。比较通过分析和实验方法获得的平均挤压力和比能量吸收,可以观察到,将当前的分析模型与叠加原理结合起来可以准备一套分析公式,以预测TMT在可接受的接近范围内的挤压特性。

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