利用双向进化结构优化法增强民用建筑的结构稳定性

Tao Xu, Xiaodong Huang, Xiaoshan Lin, Yi Min Xie
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引用次数: 0

摘要

拓扑优化技术越来越多地应用于结构设计中,以创建高效、美观的结构,同时最大限度地减少材料用量。许多现有的拓扑优化方法可能会产生细长的受压结构件,从而导致严重的屈曲问题。因此,将屈曲考虑在内对确保结构稳定性至关重要。本研究探讨了双向进化结构优化方法的能力,特别是其在处理屈曲优化问题中的多重载荷情况方面的扩展能力。所提供的数值示例侧重于与土木工程相关的三个经典案例:最大化压缩柱的屈曲载荷系数、对框架结构进行屈曲约束优化以及增强高层建筑的抗屈曲性能。研究结果表明,该算法可以显著提高结构的稳定性,而顺应性仅略有增加。所讨论的详细数学建模、敏感性分析和优化程序为工程师提供了宝贵的见解和工具,帮助他们设计出稳定性和效率更高的结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing structural stability in civil structures using the bi-directional evolutionary structural optimization method

Topology optimization techniques are increasingly utilized in structural design to create efficient and aesthetically pleasing structures while minimizing material usage. Many existing topology optimization methods may generate slender structural members under compression, leading to significant buckling issues. Consequently, incorporating buckling considerations is essential to ensure structural stability. This study investigates the capabilities of the bi-directional evolutionary structural optimization method, particularly its extension to handle multiple load cases in buckling optimization problems. The numerical examples presented focus on three classical cases relevant to civil engineering: maximizing the buckling load factor of a compressed column, performing buckling-constrained optimization of a frame structure, and enhancing the buckling resistance of a high-rise building. The findings demonstrate that the algorithm can significantly improve structural stability with only a marginal increase in compliance. The detailed mathematical modeling, sensitivity analyses, and optimization procedures discussed provide valuable insights and tools for engineers to design structures with enhanced stability and efficiency.

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