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A novel multi-cell tubal structure with circular corners for crashworthiness

机译:新型的具有圆角的多室输卵管结构,具有防撞性

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摘要

Multi-cell structures have proven to own excellent energy absorbing capability and lightweight effect in the automotive and aerospace industries. The cross-sectional configuration of the multi-cell structure has a significant effect on crashworthiness. Unlike existing multi-cell tubes, a new type of five-cell profile with four circular elements at the corners (C5C) was proposed in this study. To investigate the crashworthiness of the new C5C tube, finite element (FE) models were first established by using the nonlinear finite element code LS-DYNA and validated with experimental results. Following that, the comparison of the C5C tube and other multi-cell tubes with the same mass was conducted to quantify the relative merits of the C5C tube. Then, a detailed study was performed to analyze the effect of the corner-cell size and wall thickness. Finally, the optimization design was carried out to seek the optimal structure. The results showed that the new multi-cell structure can absorb much more crash energy than other four types of tubes. Moreover, the energy absorption of this new multi-cell tube C5C was affected by the corner-cell size and wall thickness significantly. A proper corner-cell size and slightly thicker internal ribs were recommended. In addition, the multi-objective particle swarm optimization (MOPSO) algorithm and radial basis function (RBF) surrogate model can optimize the structure effectively. The outcomes of the present study will facilitate the design of multi-cell structures with better crashworthiness.
机译:在汽车和航空航天工业中,多单元结构已被证明具有出色的能量吸收能力和轻量化效果。多单元结构的横截面配置对耐撞性具有重要影响。与现有的多细胞管不同,本研究提出了一种新型的五细胞轮廓,在拐角处具有四个圆形元素(C5C)。为了研究新型C5C管的耐撞性,首先使用非线性有限元代码LS-DYNA建立了有限元(FE)模型,并用实验结果进行了验证。然后,比较C5C管和其他质量相同的多细胞管,以量化C5C管的相对优点。然后,进行了详细的研究,以分析角单元尺寸和壁厚的影响。最后,进行了优化设计以寻找最佳结构。结果表明,新的多单元结构比其他四种类型的管可以吸收更多的碰撞能量。此外,这种新的多电池管C5C的能量吸收受到转角电池尺寸和壁厚的显着影响。建议使用合适的角孔尺寸和稍厚的内部肋骨。另外,多目标粒子群算法(MOPSO)和径向基函数(RBF)替代模型可以有效地优化结构。本研究的结果将促进具有更好耐撞性的多单元结构的设计。

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