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Topology optimization of steel frame structures with constraints on overall and individual member instabilities

机译:受整体和单个构件不稳定性约束的钢框架结构的拓扑优化

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摘要

A computationally efficient structural topology optimization framework is proposed for design of steel frame structures with user-defined factors of safety against overall structure (global) and individual member instabilities. The objective function is minimization of either compliance or the maximum of von Mises stresses within the frame structure. Within optimization, overall structure buckling modes are found via an eigenvalue analysis, a subset of "pseudo modes" are identified using a newly proposed methodology and are discarded to obtain a set of real eigenvalues. Moreover, individual member buckling loads are estimated with Euler buckling analysis and are aggregated into a single constraint. The minimum of each instability constraint is then estimated with separate differentiable negative p-norm functions. Sensitivities of these newly developed constraints are explicitly derived for application of gradient-based optimizers. The topology of four frame structures featuring moment-resisting connections and member cross-sectional properties mapped from the American Institute of Steel Construction design manual are optimized with the proposed algorithm to verify its effectiveness in optimizing structural performance while maintaining factors of safety against overall and individual member instabilities. The interaction effects of preventing instabilities at different safety levels and the choice of objective function on the final designs and their performances are investigated.
机译:提出了一种计算有效的结构拓扑优化框架,用于设计钢框架结构,该框架具有用户定义的针对整体结构(全局)和单个构件不稳定性的安全性因素。目标函数是使框架结构内的顺应性或最大冯·米塞斯应力最小化。在优化过程中,通过特征值分析找到整体结构的屈曲模式,使用新提出的方法识别“伪模式”的子集,并将其丢弃以获得一组真实特征值。此外,通过Euler屈曲分析估算单个构件的屈曲载荷,并将其汇总为单个约束。然后,用单独的可微分的负p范函数估计每个不稳定性约束的最小值。这些新开发的约束的敏感性已明确导出,以用于基于梯度的优化器的应用。使用建议的算法优化了美国钢结构研究所设计手册中映射的具有抗弯连接和构件横截面特性的四个框架结构的拓扑,以验证其在优化结构性能的同时保持针对整体和个体的安全性因素的有效性。成员不稳定。研究了在不同安全等级下防止不稳定性以及目标函数对最终设计及其性能的相互作用的影响。

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