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Quasi-static response and multi-objective crashworthiness optimization of oblong tube under lateral loading

机译:侧向荷载作用下矩形管的准静态响应及多目标耐撞性优化

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This paper addresses the energy absorption responses and crashworthiness optimization of thin-walled oblong tubes under quasi-static lateral loading. The oblong tubes were experimentally compressed using three various forms of indenters named as the flat plate, cylindrical and a point load indenter. The oblong tubes were subjected to inclined and vertical constraints to increase the energy absorption capacity of these structures. The variation in responses due to these indenters and external constraints were demonstrated. Various indicators which describe the effectiveness of energy absorbing systems were used as a marker to compare the various systems. It was found that unconstrained oblong tube (FIU) exhibited an almost ideal response when a flat plate indenter was used. The design information for such oblong tubes as energy absorbers can be generated through performing parametric study. To this end, the response surface methodology (RSM) for the design of experiments (DOE) was employed along with finite element modeling (FEM) to explore the effects of geometrical parameters on the responses of oblong tubes and to construct models for the specific energy absorption capacity (SEA) and collapse load (F) as functions of geometrical parameters. The FE model of the oblong tube was constructed and experimentally calibrated. In addition, based on the developed models of the SEA and F, multi-objective optimization design (MOD) of the oblong tube system is carried out by adopting a desirability approach to achieve maximum SEA capacity and minimum F. It is found that the optimal design of FIU can be achieved if the tube diameter and tube width are set at their minimum limits and the maximum tube thickness is chosen.
机译:本文研究了准静态侧向载荷作用下薄壁矩形管的能量吸收响应和耐撞性优化。使用三种不同形式的压头(分别称为平板,圆柱形和点载荷压头)对长方形的管进行实验压缩。长方形管受到倾斜和垂直约束,以增加这些结构的能量吸收能力。证明了由于这些压头和外部约束而导致的响应变化。描述能量吸收系统有效性的各种指标被用作比较各种系统的指标。发现当使用平板压头时,无约束的椭圆形管(FIU)表现出几乎理想的响应。诸如吸能器之类的长方形管的设计信息可以通过进行参数研究来生成。为此,采用了用于设计实验(DOE)的响应面方法(RSM)和有限元建模(FEM),以探讨几何参数对椭圆形管响应的影响,并为特定能量构建模型吸收能力(SEA)和破坏载荷(F)作为几何参数的函数。构造了椭圆形管的有限元模型并进行了实验校准。此外,基于SEA和F的开发模型,通过采用期望方法来实现最大SEA容量和最小F来进行椭圆管系统的多目标优化设计(MOD)。如果将管径和管宽设置为最小极限,并选择最大管厚,则可以实现FIU的设计。

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