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Design optimization of semi-rigid space steel frames with semi-rigid bases using biogeography-based optimization and genetic algorithms

机译:基于生物地理学的优化和遗传算法的半刚性基础半刚性空间钢框架设计优化

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This paper performs for the first time a simultaneous optimization for members sections along with semi-rigid beam-to-column connections for space steel frames with fixed, semi-rigid, and hinged bases using a biogeography-based optimization algorithm (BBO) and a genetic algorithm (GA). Furthermore, a member's sections optimization for a fully fixed space frame is carried out. A real and accurate simulation of semi-rigid connection behavior is considered in this study, where the semi-rigid base connections are simulated using Kanvinde and Grilli (2012) nonlinear model, which considers deformations in different base connection components under the applied loads, while beam-to-column connections are modeled using the familiar Frye and Morris (1975) nonlinear polynomial model. Moreover, the P-Delta effect and geometric nonlinearity are considered. AISC-LRFD (2016) specification constraints of the stress and displacement are considered as well as section size fitting constraints. The optimization is applied to two benchmark space frame examples to inspect the effect of semi-rigidity on frame weight and drift using BBO and GA algorithms.
机译:本文首次使用基于生物地理学的优化算法(BBO)和基于ABO的模型,对具有固定,半刚性和铰接基座的空间钢框架的半截面梁到柱连接以及半刚性梁到柱连接进行了同时优化。遗传算法(GA)。此外,对完全固定的空间框架进行了成员截面优化。本研究考虑了半刚性连接行为的真实准确模拟,其中使用Kanvinde和Grilli(2012)非线性模型模拟了半刚性基础连接,该模型考虑了不同基础连接组件在施加载荷下的变形,而使用熟悉的Frye和Morris(1975)非线性多项式模型对梁到柱的连接进行建模。此外,考虑了P-Delta效应和几何非线性。考虑了AISC-LRFD(2016)应力和位移的规范约束以及截面尺寸拟合约束。将该优化应用于两个基准空间框架示例,以使用BBO和GA算法检查半刚性对框架权重和漂移的影响。

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