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Development of more efficient cold-formed steel channel sections in bending

机译:开发更有效的弯曲冷弯型钢通道

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Cold-formed steel (CFS) cross-sections can be optimised to increase their load carrying capacity, leading to more efficient and economical structural systems. This paper aims to provide a methodology that would enable the development of optimised CFS beam sections with maximum flexural strength for practical applications. The optimised sections are designed to comply with the Eurocode 3 (EC3) geometrical requirements as well as with a number of manufacturing and practical constraints. The flexural strengths of the sections are determined based on the effective width method adopted in EC3, while the optimisation process is performed using the Particle Swarm Optimisation (PSO) method. To allow for the development of a new 'folded-flange' cross-section, the effective width method in EC3 is extended to deal with the possible occurrence of multiple distortional buckling modes. In total, ten different CFS channel cross-section prototypes are considered in the optimisation process. The flexural strengths of the optimised sections are verified using detailed nonlinear finite element (FE) analysis. The results indicate that the optimised folded-flange section provides a bending capacity which is up to 57% higher than standard optimised shapes with the same amount of material. (C) 2015 The Authors. Published by Elsevier Ltd.
机译:可以优化冷弯型钢(CFS)的横截面,以提高其承载能力,从而实现更高效,更经济的结构系统。本文旨在提供一种方法,使开发的CFS梁截面具有最大的抗弯强度,从而可用于实际应用。经过优化的部分的设计符合欧洲规范3(EC3)的几何要求以及许多制造和实际限制。截面的抗弯强度是根据EC3中采用的有效宽度方法确定的,而优化过程是使用粒子群优化(PSO)方法执行的。为了允许开发新的“折叠法兰”横截面,扩展了EC3中的有效宽度方法,以应对可能出现的多个变形屈曲模式。在优化过程中,总共考虑了十个不同的CFS通道横截面原型。使用详细的非线性有限元(FE)分析来验证优化截面的抗弯强度。结果表明,在相同数量的材料的情况下,优化的折边法兰部分提供的弯曲能力比标准优化形状高出57%。 (C)2015作者。由Elsevier Ltd.发布

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