首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >A multi-objective optimization approach for simultaneously lightweighting and maximizing functional performance of vehicle body structure
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A multi-objective optimization approach for simultaneously lightweighting and maximizing functional performance of vehicle body structure

机译:一种多目标优化方法,用于同时轻量化和最大限度地利用车身结构的功能性能

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摘要

This study presents a hybrid approach to integrate the comprehensive sensitivity analysis method, support vector machine technology, modified non-dominated sorting genetic algorithm-II method and the technique for order preference by similarity to ideal solution, which have been applied to multi-objective lightweight optimization of the B-pillar structure of an automobile. First, numerical models of the static-dynamic stiffness and the crashworthiness performance of automobile are established and validated by experimental testing. Then, the comprehensive sensitivity analysis method is used to define the final optimization variables. Experimental design and support vector machine based surrogate model techniques are introduced to establish the approximate model; subsequently, the modified non-dominated sorting genetic algorithm-II algorithm is applied to the multi-objective lightweight optimization design of the B-pillar structure, and the non-dominated solution set is determined. The principal component analysis method is applied to determine the weight of each objective. Finally, the technique for order preference by similarity to ideal solution method is used to rank Pareto front from best to worst to obtain the optimal solution; furthermore, a comparison between the original model and optimized design denotes that the mass of the B-pillar being reduced by 22.55% under the other impacting indicators is well guaranteed. Therefore, the proposed hybrid approach provided promising prospects in the lightweight and crashworthiness optimization application of the B-pillar.
机译:本研究提出了一种混合方法来集成综合敏感性分析方法,支持向量机技术,修改的非主导分类遗传算法-II方法和通过相似性与理想解决方案的顺序偏好技术,这已应用于多目标轻质汽车B柱结构的优化。首先,通过实验测试建立和验证汽车静动刚度和汽车的耐火性能的数值模型。然后,综合敏感性分析方法用于定义最终的优化变量。基于实验设计和支持矢量机基机的代理模型技术建立了近似模型;随后,将修改的非计数分类遗传算法-II算法应用于B柱结构的多目标轻质优化设计,并且确定了非主导的解决方案集。应用主成分分析方法来确定每个目标的重量。最后,通过与理想解决方法的相似性的顺序优先技术用于将Pareto正面与最坏的最糟糕的排序获得最佳解决方案;此外,原始模型和优化设计之间的比较表示B柱的质量在另一个撞击指标下减少22.55%。因此,所提出的混合方法提供了B柱的轻质和耐火性优化应用的希望前景。

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