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Minimum cost design of steel frames with semi-rigid connections and column bases via genetic optimization

机译:通过遗传优化设计具有半刚性连接和立柱基座的钢框架的最低成本

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In this paper, an optimum design method is presented for non-linear steel frames with semi-rigid connections and semi-rigid column bases using a genetic algorithm. The design algorithm obtains the minimum total cost which comprises total member plus connection costs by selecting suitable sections from a standard set of steel sections such as American Institute of Steel Construction (AISC) wide-flange (W) shapes. A genetic algorithm is employed as optimization method which utilizes reproduction, crossover and mutation operators. Displacement and stress constraints of AISC-Load and Resistance Factor Design (LRFD) specification and also size constraints for beams and columns are imposed on the frame. The Frye and Morris polynomial model and also a linear spring model are used for semi-rigid connections and column bases respectively. Three design examples with various type of connections are presented. The designs obtained using AISC-LRFD code are compared to those where AISC-Allowable Stress Design (ASD) is considered. The comparisons show that the former code yields frames with less costs. Moreover, the semi-rigid connection and column base modelling is compared to rigid connection modelling.
机译:本文提出了一种基于遗传算法的半刚性连接半刚性柱基非线性钢框架的优化设计方法。通过从标准钢截面集中选择合适的截面,例如美国钢结构学会(AISC)宽凸缘(W)形状,设计算法获得了最低的总成本,其中包括构件总数以及连接成本。遗传算法被用作利用繁殖,交叉和变异算子的最优化方法。 AISC荷载和阻力因子设计(LRFD)规范的位移和应力约束以及梁和柱的尺寸约束都施加在框架上。 Frye和Morris多项式模型以及线性弹簧模型分别用于半刚性连接和柱基。给出了具有各种连接类型的三个设计示例。将使用AISC-LRFD代码获得的设计与考虑了AISC允许应力设计(ASD)的设计进行比较。比较表明,以前的代码产生的帧成本更低。此外,将半刚性连接和立柱基础建模与刚性连接建模进行了比较。

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