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首页> 外文期刊>International Journal of Automotive Technology >INNOVATIVE DESIGN OPTIMIZATION STRATEGY FOR THE AUTOMOTIVE INDUSTRY
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INNOVATIVE DESIGN OPTIMIZATION STRATEGY FOR THE AUTOMOTIVE INDUSTRY

机译:汽车行业的创新设计优化策略

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摘要

In order to effectively solve modern automotive design problems including the results of nonlinear FEA and multi-body dynamics, a progressive meta-model based design optimization is presented. To reduce the number of initial sample points, two sampling methods are introduced. Then, for efficient and stable construction of meta-models, three meta-model methods are newly introduced which are numerically based on the singular value decomposition technique. To design a practical system considering manufacturing tolerances and optimizing multiple performances, a robust design optimization, 6-sigma constraints and multi-objective strategies are implemented when solving the approximate optimization problem constructed from the meta-models. Until the convergence criteria are satisfied, the initially developed meta-models are progressively improved by adding only one point that minimizes the approximate Lagrangian in the consecutive optimization iterations. Finally, one validation sample and four automotive applications are solved to show the effectiveness of the proposed approach.
机译:为了有效解决包括非线性有限元分析和多体动力学结果在内的现代汽车设计问题,提出了一种基于渐进元模型的设计优化方法。为了减少初始采样点的数量,引入了两种采样方法。然后,为了有效而稳定地构建元模型,新引入了三种基于奇异值分解技术的元模型方法。为了设计一个考虑制造公差并优化多个性能的实用系统,在解决由元模型构造的近似优化问题时,将实施鲁棒的设计优化,6-sigma约束和多目标策略。在满足收敛标准之前,通过在连续的优化迭代中仅添加一个使近似拉格朗日最小化的点,逐步改进最初开发的元模型。最后,解决了一个验证样本和四个汽车应用程序,以证明所提出方法的有效性。

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