Numerical Analysis of Flexural Performances of Composite Steel-Timber Beams under Fire Conditions

Zhiyuan Liu, Binsheng Zhang, Huijuan Jia, T. Kilpatrick
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Abstract

Recently, a novel type of composite structure, composite steel-timber (CST) structure, has attracted much attention by combining steel and timber in an effective way to form composite structural components, which unitises the advantages of high strength and excellent ductility of steel and decent sustainability and fire resistance of timber. However, the existing research is lacking, especially in structural fire design and analysis. In this study, based on the sequentially coupled method, the commercial finite element software ABAQUS was used to numerically simulate the dynamic performances in the temperature field and the flexural behaviours in the displacement field for a typical CST beam with a steel element embedded within the Glulam and connected by adhesives and bolts under standard fire for two hours. In the numerical simulations, the temperature distributions within the CST beam were explored, and the flexural performances of the beam in the displacement field were examined. Through the comparative analysis, the temperature distributions in the embedded steel beam and the surrounding Glulam beam under one-hour standard fire verified the advantages of this type of CST beam in structural fire design. Specifically, under a 2-hour standard fire, the surrounding Glulam could still protect the embedded steel beam from sustaining too high temperatures, so as to retain most of its material properties and help maintain the bearing capacity of the whole structure and improve the refractory limit. Parametric studies on the fire resistance of the CST beam were also conducted by adjusting the bolt spacing and the protection thickness of the Glulam. The obtained results indicated that reducing the bolt spacing and the thickness of the Glulam protection layer would have an adverse effect on the temperature distributions in the embedded steel element to a large extent, and would eventually lead to its rapid heating and strength loss and the final failure of the whole CST structure.
火灾条件下钢-木组合梁抗弯性能的数值分析
近年来,一种新型的组合结构——钢-木复合结构(CST)结构受到了广泛的关注,它将钢和木材有效地结合在一起,形成组合结构构件,结合了钢的高强度和良好的延展性以及木材良好的可持续性和防火性的优点。然而,现有的研究还很缺乏,特别是在结构防火设计和分析方面。本研究基于顺序耦合法,利用商用有限元软件ABAQUS,对典型钢单元嵌套在胶合层内,并通过胶粘剂和螺栓连接的CST梁在标准火作用下2小时的温度场动态性能和位移场弯曲性能进行了数值模拟。在数值模拟中,探讨了CST梁内部的温度分布,并对梁在位移场中的抗弯性能进行了研究。通过对比分析,在1小时标准火灾作用下,预埋钢梁与周围胶合木梁的温度分布,验证了该型CST梁在结构防火设计中的优势。具体而言,在2小时的标准火灾下,周围的胶合层仍然可以保护预埋钢梁免受过高的温度,从而保留其大部分材料性能,有助于保持整个结构的承载能力,提高耐火极限。通过调整螺栓间距和胶合层保护厚度,对CST梁的耐火性能进行了参数化研究。结果表明,减小螺栓间距和胶合木保护层厚度会在很大程度上对预埋钢构件内部温度分布产生不利影响,并最终导致其快速升温和强度损失,最终导致整个CST结构的破坏。
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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