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Crashworthiness of graded lattice structure filled thin-walled tubes under multiple impact loadings

机译:在多次冲击载荷下,分级晶格结构填充薄壁管的耐火性

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The objective of this study is to investigate the crashworthiness performances of graded lattice structure filled tubes (GLSFTs) under multiple impact loadings. Different graded body-centered cubic aluminum lattice structures are taken into account in the hybrid tube designs by considering different draft angles and base diameters, and the crashworthiness of those structures are examined by using the validated nonlinear finite element method. The crashworthiness performances of the GLSFTs are also compared with the uniform lattice structure filled tubes (ULSFTs) with the same weights to show the efficiency of GLSFTs by considering several crash worthiness indicators (e.g., initial crush force (ICF), peak crush force (PCF), mean crush force (MCF) and specific energy absorption (SEA)). The results revealed that the graded lattice structure designs enable to obtain variable stiffness throughout the length of hybrid tubes and make possible more folds to be formed without global bending, thus provide significantly better energy absorption performance than their uniform counterparts, especially under oblique loadings. Particularly, the results showed that the GLSFTs can have up to 2 times lower ICF and 3.3 times higher SEA values than that of ULSFTs. The results also revealed that the GLSFTs can absorb up to 146% higher impact energy than the sum of energy absorption of their individual components, and a significant improvement in energy absorption performance of GLSFT can be obtained with appropriate selection of design parameters. Hence, GLSFTs can be recommended as passive protection elements in a broad range of energy absorption applications.
机译:本研究的目的是在多次冲击载荷下调查梯度晶格结构填充管(GLSFTS)的耐火性表演。通过考虑不同的拔出角和基部直径,在混合管设计中考虑不同的分级身体中心的立方铝晶格结构,并且通过使用验证的非线性有限元方法检查这些结构的耐架性。与均匀的晶格结构填充管(ULSFT)相比,GLSFTS的耐火性性能与具有相同权重的填充管(ULSFTS)相比,以显示GLSFTS的效率,以考虑几个崩溃的价值指示器(例如,初始挤压力(ICF),峰压力(PCF) ),平均粉碎力(MCF)和特定能量吸收(海))。结果表明,梯度晶格结构设计能够在杂交管的整个长度中获得可变刚度,并且可以在没有全局弯曲的情况下形成更多折叠,从而提供比其均匀的对应物更好的能量吸收性能,尤其是在倾斜的负载下。特别是,结果表明,GLSFTS可以具有高达2倍的ICF和比ULSFTS高出3.3倍的海背倍。 The results also revealed that the GLSFTs can absorb up to 146% higher impact energy than the sum of energy absorption of their individual components, and a significant improvement in energy absorption performance of GLSFT can be obtained with appropriate selection of design parameters.因此,可以推荐GLSFTS作为广泛的能量吸收应用中的被动保护元件。

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