A synergistic approach combining surface enhancement and buckling modes for improved axial crushing performance of thin-walled tubes

Shahrukh Alam, Mohammad Uddin, Colin Hall
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Abstract

In this study, thin-walled tubes were circumferentially strengthened by plasticity ball burnishing of critical locations determined from buckling mode analysis. Axial crush test results revealed that the surface treated (ST) tubes increased localized yield strength, attained superior crashworthiness performance, and triggered predictable deformation modes according to the buckling modes of the tubes. Numerical analysis was performed and successfully validated with experiment at 90% prediction accuracy. The treated tube ST-4 with 12th buckling mode outperformed a conventional tube with an increase in specific energy absorption (SEA) and crush force efficiency (CFE) by up to 70%, while sustaining a low increase in initial peak force (IPF). Furthermore, the tube demonstrated greater rate of energy dissipation compared to tubes with conventional surface treated patterns at the same level of surface treated area. The crashworthiness performance improved as the surface treated area ratio increased. A theoretical model was developed for the surface treated tube based on fundamental deformation kinematics, predicting mean crushing force and total energy absorption with an acceptable accuracy. The findings strongly suggest that the proposed surface enhanced tubes have a great potential to be used as energy absorbing structures in crashworthiness applications.
结合表面增强和屈曲模式的协同方法可提高薄壁管的轴向挤压性能
在这项研究中,通过对屈曲模式分析确定的关键位置进行塑性球烧结,对薄壁钢管进行了圆周强化。轴向挤压试验结果表明,经过表面处理(ST)的钢管提高了局部屈服强度,获得了优异的耐撞性,并根据钢管的屈曲模式引发了可预测的变形模式。我们进行了数值分析,并成功地与实验进行了验证,预测准确率达到 90%。经过第 12 种屈曲模式处理的钢管 ST-4 优于传统钢管,其比能量吸收(SEA)和挤压力效率(CFE)最高提高了 70%,而初始峰值力(IPF)的增幅较低。此外,在表面处理面积相同的情况下,与采用传统表面处理模式的钢管相比,该钢管的能量耗散率更高。随着表面处理面积比的增加,耐撞性能也有所提高。根据基本变形运动学,为表面处理管材建立了一个理论模型,以可接受的精度预测平均压溃力和总能量吸收。研究结果有力地表明,所提出的表面强化管在防撞应用中作为能量吸收结构具有巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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