Seismic behaviour of the non-straight steel beams in the structural plans

Farshid Rashidiyan, S. R. Mirghaderi, Saeed Mohebbi, Sina Kavei
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Abstract

Purpose This research study focuses on investigating the seismic performance of non-straight beams in steel structures and exploring the mechanism by which plastic hinges are formed within these beams. The findings contribute to the understanding of their behaviour under seismic loads and offer insights into their potential for enhancing the lateral resistance of the structure. The abstract of the study highlights the significance of corners in structural plans, where non-coaxial columns, diagonal elements or beams deviating from a straight path are commonly observed. Typically, these non-straight beams are connected to the columns using pinned connections, despite their unknown seismic behaviour. Recognizing the importance of generating plastic hinges in special moment resisting frames and the lack of previous research on the involvement of these non-straight beams, this study aims to address this knowledge gap.Design/methodology/approachThis study examines the seismic behaviour and plastic hinge formation of non-straight beams in steel structures. Non-straight beams are beams that connect non-coaxial columns and diagonal elements, or deviate from a linear path. They are usually pinned to the columns, and their seismic contribution is unknown. A critical case with a 12-m non-straight beam is analysed using Abaqus software. Different models are created with varying cross-section shapes and connection types between the non-straight beams. The models are subjected to lateral monotonic and cyclic loads in one direction. The results show that non-straight beams increase the lateral stiffness, strength and energy dissipation of the models compared to disconnected beams that act as two cantilevers.FindingsThe analysis results reveal several key findings. The inclusion of non-straight beams in the models leads to increased lateral stiffness, strength and energy dissipation compared to the scenario where the beams are disconnected and act as two cantilever beams. Plastic hinges are formed at both ends of the non-straight beam when a 3% drift is reached, contributing to energy damping and introducing plasticity into the structure. These results strongly suggest that non-straight beams play a significant role in enhancing the lateral resistance of the system. Based on the seismic analysis results, this study recommends the utilization of non-straight beams in special moment frames due to the formation of plastic hinges within these beams and their effective participation in resisting lateral seismic loads. This research fills a critical gap in understanding the behaviour of non-straight beams and provides valuable insights for structural engineers involved in the design and analysis of steel structures.Originality/valueThe authors believe that this research will greatly contribute to the knowledge and understanding of the seismic performance of non-straight beams in steel structures.
结构图中非直钢梁的抗震性能
研究目的 这项研究的重点是调查钢结构中非直梁的抗震性能,并探索在这些梁中形成塑性铰的机理。研究结果有助于理解非直梁在地震荷载作用下的行为,并深入探讨非直梁增强结构抗侧能力的潜力。研究摘要强调了转角在结构规划中的重要性,在转角处通常会观察到非共轴柱、对角线构件或偏离直线路径的梁。通常情况下,尽管这些非直线梁的抗震性能尚不清楚,但它们还是通过销钉连接与柱子相连。由于认识到在特殊抗弯框架中产生塑性铰的重要性,以及之前缺乏对这些非直梁参与情况的研究,本研究旨在填补这一知识空白。非直梁是连接非同轴柱和对角线构件或偏离直线路径的梁。它们通常被固定在柱子上,其地震作用尚不清楚。使用 Abaqus 软件分析了一个 12 米非直梁的临界案例。创建的模型截面形状和非直梁之间的连接类型各不相同。模型承受单向横向荷载和单向循环荷载。结果表明,与充当两个悬臂的断开梁相比,非直梁增加了模型的横向刚度、强度和能量耗散。与断开梁作为两个悬臂梁的情况相比,在模型中加入非直梁会增加横向刚度、强度和能量耗散。当漂移达到 3% 时,非直梁的两端会形成塑性铰链,从而有助于能量阻尼并将塑性引入结构中。这些结果有力地表明,非直梁在增强系统抗侧能力方面发挥了重要作用。基于地震分析结果,本研究建议在特殊弯矩框架中使用非直梁,因为这些梁内会形成塑性铰,并有效参与抵抗侧向地震荷载。这项研究填补了对非直梁行为理解方面的一个重要空白,为参与钢结构设计和分析的结构工程师提供了宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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