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Application of artificial bee colony algorithm to topology optimization for dynamic stiffness problems

机译:人工蜂群算法在动态刚度问题拓扑优化中的应用

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The artificial bee colony algorithm (ABCA) was first adopted in topology optimization for dynamic problems. The objective was to obtain a structure with the highest fundamental natural frequency in a certain amount of material, based on the contributed structural sensitivity of each element calculated by the waggle index and eigenvalue. The waggle index update rule, evaluation method of fitness values, and changing filtering size scheme are suggested for obtaining a stable and robust optimal topology based on the ABCA. Examples are provided to examine the applicability and effectiveness of the ABCA compared to bi-directional evolutionary structural optimization (BESO). The following conclusions are obtained through the results of examples based on the ABCA; (1) the ABCA, using the three suggested methods, is very applicable and effective in topology optimization for obtaining a stable and robust optimal layout. (2) It is found that the natural frequencies of the ABCA are always higher than those of the BESO, and average convergence rates of the ABCA are similar or faster than those of the BESO. (3) The optimal topology from the ABCA is nearly obtained in a half stage of the convergence iteration, since volume constraint is applied from the beginning.
机译:人工蜂群算法(ABCA)首先用于动态问题的拓扑优化。目的是根据由摆动指数和特征值计算出的每个元素的贡献结构灵敏度,来获得一定数量材料中具有最高基本固有频率的结构。为获得基于ABCA的稳定,鲁棒的最优拓扑,提出了摆动指标更新规则,适应度值评估方法和更改的过滤大小方案。提供了示例来检查ABCA与双向进化结构优化(BESO)相比的适用性和有效性。通过基于ABCA的示例结果可以得出以下结论; (1)ABCA,使用三种建议的方法,在拓扑优化中非常适用且有效,以获得稳定且鲁棒的最佳布局。 (2)发现ABCA的固有频率总是高于BESO的固有频率,并且ABCA的平均收敛速度与BESO的相似或更快。 (3)由于从一开始就应用了体积约束,因此几乎在收敛迭代的一半阶段就获得了来自ABCA的最佳拓扑。

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