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MULTI-OBJECTIVE OPTIMIZATION OF LAMINATED COMPOSITE PLATE USING A NON-DOMINATED SORTING GENETIC ALGORITHM

机译:基于非排序排序遗传算法的叠层复合板多目标优化

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Laminated composite constructions of panels and other structural elements are currently being used for many applications in aerospace, automotive, civil and defence industries. Laminated composites have general advantages over more traditional materials such as greater specific strength, specific stiffness, corrosion and fatigue resistance among others. Optimization of composite laminates with respect to ply angels to maximize the strength is necessary to realize the full potential of fiber reinforced materials. In this paper a modified Non-Dominated sorting Genetic Algorithm is used to obtain pareto-optimal design of composite laminate square plate. The objectives are to minimize the weight and deflection of graphite/epoxy square plate subjected to the constraint that the Tsai-Wu failure factor (?) should be less than or equal to one. The multi-objective optimization algorithm used in this paper has better sorting, incorporates elitism and no sharing parameter needs to be chosen a priori.
机译:面板和其他结构元件的层压复合结构目前正在航空航天,汽车,民用和国防工业中用于许多应用。层压复合材料比更传统的材料具有一般优势,例如比强度更高,比刚度更高,耐腐蚀和耐疲劳性更高。为了充分发挥纤维增强材料的潜力,必须优化复合层压板的厚度,以最大程度地提高强度。本文采用一种改进的非支配排序遗传算法来获得复合层压板的最优设计。目的是在受到Tsai-Wu破坏因子(α)应小于或等于1的约束的情况下,使石墨/环氧方板的重量和挠度最小化。本文使用的多目标优化算法具有更好的排序,融合了精英主义,不需要先验选择共享参数。

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