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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Multiobjective sequential optimization for a vehicle door using hybrid materials tailor-welded structure
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Multiobjective sequential optimization for a vehicle door using hybrid materials tailor-welded structure

机译:利用混合材料拼焊结构对车门进行多目标顺序优化

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摘要

To achieve lightweight vehicle door, this paper presents a novel design with a hybrid material tailor-welded structure (HMTWS). A multiobjective optimization procedure is adopted to generate a set of solutions, in which the door stiffness and mass are taken as objective functions, and the material types and plate thicknesses are regarded as the discrete and continuous design variables, respectively. To improve the optimization efficiency, Kriging algorithm is used for generating surrogate model through a sequential sampling strategy. The non-dominated sorting genetic algorithm II (NSGA-II) is employed to perform the multiobjective optimization. It is found that for the same computational cost, the sequential sampling strategy can yield more accurate optimization results than the conventional one-step sampling strategy. Most importantly, HMTWS is found more competent than the traditional thin-walled configurations made of steel or other lighter mono-materials for maximizing the usage of materials and stiffness of the vehicular door structures.
机译:为了实现轻巧的车门,本文提出了一种新颖的设计,采用了混合材料量身定制的焊接结构(HMTWS)。采用多目标优化程序来生成一组解决方案,其中以门的刚度和质量为目标函数,并将材料类型和板厚度分别视为离散和连续设计变量。为了提高优化效率,使用克里格算法通过顺序采样策略生成代理模型。采用非支配排序遗传算法II(NSGA-II)进行多目标优化。发现以相同的计算成本,顺序采样策略可以比常规的一步采样策略产生更准确的优化结果。最重要的是,与传统的由钢或其他较轻的单材料制成的薄壁结构相比,HMTWS具有更大的能力,可最大程度地利用材料和提高车门结构的刚度。

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