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Crashworthiness optimization of VRB thin-walled structures under manufacturing constraints by the eHCA-VRB algorithm

机译:eHCA-VRB算法在制造约束下优化VRB薄壁结构的耐撞性

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Variable-thickness rolled blanks (VRBs) represent an important approach for constructing lightweight structures. However, the optimization of the crashworthiness and thickness distribution of VRB thin-walled structures under manufacturing constraints is a nonlinear dynamic-response structural-optimization problem that has a large number of design variables. To tackle this problem, this paper has extended and improved the hybrid cellular automaton for thin-walled structures (HCATWS) algorithm, and has proposed an extended hybrid cellular automaton for VRB thin-walled structures (eHCA-VRB) algorithm. This algorithm consists of an outer loop and an inner loop. The outer loop performs crash simulation analysis to define an appropriate target mass for the inner loop, whereas the inner loop adjusts cell thicknesses according to the internal energy density (IED) of the current cell and its neighboring cells so that the IED in the design domain becomes evenly distributed. A one-dimensional CA model is defined along with the rolling direction based on the thickness distribution of VRB thin-walled structures. Furthermore, the eHCA-VRB algorithm also generates a mapping relationship between the one-dimensional CA model and the FE model. To optimize the thickness distribution of VRB thin-walled structures under manufacturing constraints, our method uses cell thickness as a design variable and incorporates the constraints of the VRB rolling process in the cell thickness update rules. To verify the convergence and efficiency of the eHCA-VRB algorithm, VRB top-hat thin-walled structures are optimized for crashworthiness with/or without manufacturing constraints (M.C.), respectively. The results show that the eHCA-VRB algorithm can be used to efficiently solve the optimization problems of crashworthiness and the thickness distribution of VRB thin-walled structures under manufacturing constraints.
机译:厚度可变的轧制毛坯(VRB)代表了构造轻型结构的重要方法。然而,在制造约束下,VRB薄壁结构的耐撞性和厚度分布的优化是一个非线性的动态响应结构优化问题,具有很多设计变量。为了解决这个问题,本文扩展并改进了用于薄壁结构的混合蜂窝自动机(HCATWS)算法,并提出了用于VRB薄壁结构的扩展混合蜂窝自动机(eHCA-VRB)算法。该算法由一个外循环和一个内循环组成。外环执行碰撞仿真分析以为内环定义适当的目标质量,而内环根据当前单元格及其相邻单元格的内部能量密度(IED)调整单元格厚度,从而使IED在设计域中变得均匀分布。根据VRB薄壁结构的厚度分布,定义一维CA模型以及轧制方向。此外,eHCA-VRB算法还生成一维CA模型与FE模型之间的映射关系。为了在制造约束下优化VRB薄壁结构的厚度分布,我们的方法使用像元厚度作为设计变量,并将VRB轧制过程的约束纳入像元厚度更新规则中。为了验证eHCA-VRB算法的收敛性和效率,分别针对具有/不具有制造限制(M.C.)的防撞性优化了VRB高顶薄壁结构。结果表明,在制造约束下,eHCA-VRB算法可有效解决VRB薄壁结构的耐撞性和厚度分布优化问题。

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