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Multi-cornered thin-walled sheet metal members for enhanced crashworthiness and occupant protection

机译:多角薄壁金属薄板构件,提高了耐撞性和乘员保护

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Crash energy management in frontal crumple zone of the automotive body is one of the key elements for the design of automotive structure. Improving energy absorption characteristics reduces the magnitude of forces transferred to the occupant compartments. Here, a new strategy has been proposed to improve energy absorption efficiency of thin-walled columns by introducing extra stable corners in the cross-section. Several profiles of multi-corner thin-walled columns obtained through this strategy were presented and their crashworthiness capacities under axial crush loading were investigated analytically, experimentally, and numerically. First, explicit formulations for predicting the mean crushing force of multi-corner thin-walled columns were derived using the theory of super folding element (SFE). Predicted results of these formulations showed a good agreement with the results of quasi-static experiments and CAE simulations, which were performed by explicit non-linear finite element code through LS-DYNA. Based on this agreement, other significant crashworthiness assessment parameters were then investigated experimentally and numerically. Newly introduced 12-edge section with high energy absorption capacity was developed and its dominance was established through the responses in quasi-static experiments and CAE simulations. Finally, the foundational dominance of the 12-edge section was extended to the dynamic environment through a full vehicle crash test simulation to evaluate overall reduction in crashworthiness parameters which reflected occupant safety. Interestingly, in the case of using 12-edge section as crush absorbers, specific energy absorption (SEA), dash intrusion and maximum occupant's chest deceleration showed significant improvement, compared to the baseline design which used a rectangular section. (C) 2015 Elsevier Ltd. All rights reserved.
机译:车身前部压溃区的碰撞能量管理是汽车结构设计的关键要素之一。改善的能量吸收特性降低了传递到乘员舱的力的大小。在这里,已经提出了一种新的策略,通过在横截面中引入额外的稳定拐角来提高薄壁柱的能量吸收效率。提出了通过该策略获得的多角薄壁柱的几种轮廓,并通过分析,实验和数值研究了它们在轴向挤压载荷下的耐撞性。首先,使用超折叠元件(SFE)理论推导了用于预测多角薄壁柱平均破坏力的明确公式。这些公式的预测结果与准静态实验和CAE模拟的结果非常吻合,准静态实验和CAE模拟是通过LS-DYNA通过显式非线性有限元代码执行的。基于此协议,然后对其他重要的耐撞性评估参数进行了实验和数值研究。开发了新引入的具有高能量吸收能力的12边型材,并通过准静态实验和CAE仿真的响应确定了其优势。最后,通过全面的车辆碰撞试验仿真,将12边路段的基础优势扩展到动态环境,以评估反映乘客安全性的耐撞性参数的总体降低。有趣的是,与使用矩形截面的基线设计相比,在使用12边形截面作为粉碎吸收器的情况下,比能量吸收(SEA),破折号侵入和最大乘员胸部减速显示出显着改善。 (C)2015 Elsevier Ltd.保留所有权利。

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