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Effect of radial clearance and holes as crush initiators on the crashworthiness performance of bi-tubular profiles

机译:径向间隙和孔洞作为压扁引发剂对双管型材抗撞性能的影响

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The use of bi-tubular structures has gained importance in the design of energy absorption systems for protection of passengers in train collisions. Therefore, it is critical to improve the crashworthiness performance of bi-tubular profiles. For this purpose, the effect of cross-section, bi-tubular clearance and holes as crush initiators is evaluated using finite element simulations. To get reliable outcomes, special emphasis was set on the progressive damage modelling of aluminum 6063-T5 by a Johnson-Cook (J-C) failure model. During the cross-section study, bi-tubular arrangements based on polygonal and circular cross-section were evaluated by quasi-static compression loads. The results indicate that the circular shapes showed better crashworthiness performance or crush force efficiency (CFE) up to 12.28% respect to a square base structure. A 10.72% improvement in CFE was obtained when the non-dimensionalized clearance between profiles is increased from lambda = 20 to lambda = 40. The effect of holes on crashworthiness performance was evaluated by drilling holes at different locations both in the inner and outer profiles. The results show that the use of holes increased the crush force efficiency and energy absorption (E-a) capability even more than the effect of clearance alone. Improvements in the order of 2.50% and 12.96% for E-a and CFE respectively were computed when holes were placed at the top end of a BC-3 profile with a non-dimensional clearance of lambda = 40. Considering all effects simultaneously, an increase of 24.6% and 26.31% for E-a and CFE respectively was calculated. Finally, an application to a crash buffer in a railway transport system is considered. Likewise, its improved crashworthiness behavior is presented.
机译:在保护列车碰撞中的乘客的能量吸收系统的设计中,双管结构的使用已变得重要。因此,提高双管型材的耐撞性能至关重要。为此,使用有限元模拟评估了横截面,双管间隙和孔作为压溃引发剂的影响。为了获得可靠的结果,特别强调了通过Johnson-Cook(J-C)失效模型对铝6063-T5进行的渐进式损伤建模。在横截面研究期间,通过准静态压缩载荷评估了基于多边形和圆形横截面的双管排列。结果表明,相对于方形基础结构,圆形具有更好的耐撞性或压碎力效率(CFE),最高可达12.28%。当轮廓之间的无量纲间隙从lambda = 20增加到lambda = 40时,CFE可获得10.72%的改善。通过在内部和外部轮廓的不同位置钻孔来评估孔对防撞性能的影响。结果表明,使用孔比单独使用间隙的效果更能提高压碎力效率和能量吸收(E-a)能力。当在BC-3型材的顶端放置孔且无量纲间隙为40时,分别计算出Ea和CFE的改善程度分别为2.50%和12.96%。计算得出Ea和CFE分别为24.6%和26.31%。最后,考虑将其应用于铁路运输系统中的碰撞缓冲器。同样,介绍了其改进的耐撞性。

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