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Design optimization of cross-sectional configuration of rib-reinforced thin-walled beam

机译:肋筋薄壁梁截面结构的设计优化

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摘要

In this paper, a rib-reinforced thin-walled hollow tube-like beam (named as rib-reinforced beam) is presented for potential application in vehicle bumper. Through numerical simulation of the bending behavior under impact loads, the rib-reinforced beam is compared with thin-walled hollow tube-like beams filled with and without foam materials (empty beam and foam-filled beam) in crashworthiness. The effects of the shape of the reinforced rib are investigated and the shape optimization design is performed for increasing energy absorption and reducing the initial peak force. A multi-objective crashworthiness optimization formulation including maximum energy absorption, maximum specific energy absorption and minimum initial peak force is constructed based on the ideal point method (IPM). The optimum configuration of the reinforced rib is given with a normalized cubic spline function. Numerical example results show that, compared with the empty and foam-filled beams with same weights, the optimized rib-reinforced beam has higher energy absorption performance and lower initial crash force. It is found that for the rib-reinforced beam little rumple is formed around the compressed indention, which helps to retard the collapse of the side wall and means more energy absorption.
机译:本文提出了一种肋筋薄壁空心管形梁(称为肋筋梁),有望在汽车保险杠中应用。通过对冲击载荷下弯曲行为的数值模拟,将肋筋梁与填充和不填充泡沫材料(空梁和泡沫填充梁)的薄壁空心管梁的耐撞性进行了比较。研究了加强筋的形状的影响,并进行了形状优化设计,以增加能量吸收并减小初始峰值力。基于理想点法(IPM),构造了包括最大能量吸收,最大比能量吸收和最小初始峰值力的多目标耐撞性优化公式。加强肋的最佳配置通过归一化三次样条函数给出。数值算例结果表明,与相同重量的空心和泡沫填充梁相比,优化的肋筋梁具有更高的能量吸收性能和更低的初始碰撞力。已经发现,对于肋加强梁,在压缩凹口周围几乎没有形成波纹,这有助于减缓侧壁的塌陷并意味着更多的能量吸收。

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