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首页> 外文期刊>Transactions of Tianjin University >Multi-Criterion Optimal Design of Automotive Door Based on Metamodeling Technique and Genetic Algorithm
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Multi-Criterion Optimal Design of Automotive Door Based on Metamodeling Technique and Genetic Algorithm

机译:基于元建模技术和遗传算法的汽车门多准则优化设计

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摘要

A method for optimizing automotive doors under multiple criteria involving the side impact, stiffness, natural frequency, and structure weight is presented. Metamodeling technique is employed to construct approximations to replace the high computational simulation models. The approximating functions for stiffness and natural frequency are constructed using Taylor series approximation. Three popular approximation techniques, i.e. polynomial response surface (PRS), stepwise regression (SR), and Kriging are studied on their accuracy in the construction of side impact functions. Uniform design is employed to sample the design space of the door impact analysis. The optimization problem is solved by a multi-objective genetic algorithm. It is found that SR technique is superior to PRS and Kriging techniques in terms of accuracy in this study. The numerical results demonstrate that the method successfully generates a well-spread Pareto optimal set. From this Pareto optimal set, decision makers can select the most suitable design according to the vehicle program and its application.
机译:提出了一种在涉及侧撞,刚度,固有频率和结构重量的多个标准下优化汽车门的方法。使用元模型技术构造近似值来代替高计算仿真模型。使用泰勒级数逼近构造刚度和固有频率的逼近函数。研究了三种流行的近似技术,即多项式响应面(PRS),逐步回归(SR)和Kriging,它们在构造侧面碰撞函数时的准确性。采用统一设计来抽样门冲击分析的设计空间。通过多目标遗传算法解决了优化问题。研究发现,在准确性方面,SR技术优于PRS和Kriging技术。数值结果表明,该方法成功生成了扩展良好的帕累托最优集。决策者可以从此帕累托最优集合中根据车辆程序及其应用选择最合适的设计。

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