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Multi-objective robust optimization of foam-filled tapered multi-cell thin-walled structures

机译:泡沫填充的锥形多单元薄壁结构的多目标鲁棒优化

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Foam-filled multi-cell thin-walled structure has recently gained attentions for its excellent energy absorption capacity. Tapered thin-walled structure is less likely to fail by global buckling, and is more capable of bearing oblique impact loads. Thus, foam-filled tapered multi-cell thin-walled structure (FTMTS) may be an extremely excellent energy absorber candidate in future vehicle body. This paper focuses on the crashworthiness of four kinds of axisymmetric FTMTSs with different cell numbers. According to our study, we find that FTMTSs have very excellent energy absorption capacity as well as strong capacity of avoiding global buckling. According to our investigation, it was found that the crashworthiness of FTMTS was largely affected by design parameters such as geometric sizes and foam density. In order to find optimal designs of FTMTSs, it is very essential to carry out crashworthiness optimization for FTMTSs. However, the conventional deterministic design is likely to become less meaningful or even unacceptable when considering the uncertainties of design parameters due to the manufacturing or installation deviation. In order to overcome this drawback, a multi-objective robust optimization procedure which employs Kriging metamodels, multi-objective particle swarm optimization (MOPSO) algorithm, “k-sigma” robust design theory and Monte Carlo simulation (MCS) was developed. The comparison of the Pareto fronts obtained by the developed multi-objective robust optimization procedure and the traditional multi-objective deterministic optimization algorithm shows that the robust optimization result is more reliable than the deterministic optimization result. The robust optimal design of FTMTS not only has very excellent crashworthiness but also has very high reliability when considering the uncertainty of design parameters.
机译:泡沫填充的多单元薄壁结构最近以其出色的能量吸收能力而受到关注。锥形薄壁结构不太可能因整体屈曲而失效,并且更有能力承受倾斜冲击载荷。因此,泡沫填充的锥形多单元薄壁结构(FTMTS)在未来的车身中可能是极佳的能量吸收候选物。本文着眼于四种具有不同单元号的轴对称FTMTS的耐撞性。根据我们的研究,我们发现FTMTS具有非常出色的能量吸收能力以及强大的避免整体屈曲的能力。根据我们的调查,发现FTMTS的耐撞性很大程度上受设计参数(例如几何尺寸和泡沫密度)的影响。为了找到FTMTS的最佳设计,对FTMTS进行防撞性优化非常重要。然而,当考虑到由于制造或安装偏差引起的设计参数的不确定性时,传统的确定性设计可能变得不太有意义甚至不可接受。为了克服这个缺点,开发了一种多目标鲁棒优化程序,该程序采用Kriging元模型,多目标粒子群优化(MOPSO)算法,“ k-sigma”鲁棒设计理论和蒙特卡洛模拟(MCS)。所开发的多目标鲁棒优化程序与传统的多目标确定性优化算法获得的帕累托前沿的比较表明,鲁棒优化结果比确定性优化结果更可靠。考虑到设计参数的不确定性,FTMTS的强大优化设计不仅具有出色的耐撞性,而且具有很高的可靠性。

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