Strength Analysis of Cellular Steel Members under Combined Compression and Major-Axis Bending

IF 1.1 4区 工程技术 Q3 CONSTRUCTION & BUILDING TECHNOLOGY
Voraphol Horsangchai, Worakarn Anuntasena, Akhrawat Lenwari
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Abstract

Cellular steel shapes offer greater section depth and strong-axis flexural stiffness than their parent hot-rolled shapes, along with web openings for duct system installation. However, their use as structural members other than beams has been constrained by a lack of design guidelines. This research employs both an analytical approach and nonlinear finite element analysis to investigate the strength of cellular steel members under combined compression and major-axis bending. In the analytical approach, the strength interaction equation for cellular steel beam-columns incorporating an initial imperfection is derived using the principle of stationary potential energy. A total of 864 FE models covering practical configurations of cellular steel shapes are analysed to assess the analytical solution and the extension of AISC360 and EC3 strength interaction equations. Effects of the parent shape, web opening configuration, member slenderness, and load eccentricity on the member strength are investigated. The results show that the proposed analytical solution accurately predicts the capacity of cellular steel members under combined compression and major-axis bending. Also, the European Code EC3 strength interaction equation that adopts the refined elastic buckling equation specifically derived for the cellular steel members can accurately predict the strength of practical cellular steel shapes. Finally, a criterion for effective utilisation of the cellular steel shapes is proposed to ensure that they exhibit greater strength than their parent shapes.

Abstract Image

组合压缩和主轴弯曲下的蜂窝钢构件强度分析
与热轧型钢相比,蜂窝型钢具有更大的截面深度和强轴抗弯刚度,同时腹板开孔便于管道系统的安装。然而,由于缺乏设计指南,它们在梁以外的结构构件中的应用一直受到限制。本研究采用分析方法和非线性有限元分析来研究蜂窝钢构件在组合压缩和主轴弯曲下的强度。在分析方法中,利用静止势能原理推导出了包含初始缺陷的蜂窝钢梁柱的强度相互作用方程。共分析了 864 个有限元模型,涵盖了蜂窝钢形状的实际配置,以评估分析解决方案以及 AISC360 和 EC3 强度相互作用方程的扩展。研究了母体形状、腹板开口配置、构件细长度和荷载偏心对构件强度的影响。结果表明,所提出的分析方案能准确预测蜂窝钢构件在联合压缩和主轴弯曲下的承载能力。此外,欧洲规范 EC3 强度相互作用方程采用了专门为蜂窝钢构件推导的精炼弹性屈曲方程,可以准确预测实际蜂窝钢形状的强度。最后,还提出了有效利用蜂窝钢的标准,以确保蜂窝钢比其母体具有更高的强度。
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来源期刊
International Journal of Steel Structures
International Journal of Steel Structures 工程技术-工程:土木
CiteScore
2.70
自引率
13.30%
发文量
122
审稿时长
12 months
期刊介绍: The International Journal of Steel Structures provides an international forum for a broad classification of technical papers in steel structural research and its applications. The journal aims to reach not only researchers, but also practicing engineers. Coverage encompasses such topics as stability, fatigue, non-linear behavior, dynamics, reliability, fire, design codes, computer-aided analysis and design, optimization, expert systems, connections, fabrications, maintenance, bridges, off-shore structures, jetties, stadiums, transmission towers, marine vessels, storage tanks, pressure vessels, aerospace, and pipelines and more.
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