支持普通钠石灰结构玻璃构件耐火性能评价的热力学数值分析

IF 0.9 Q4 CONSTRUCTION & BUILDING TECHNOLOGY
Chiara Bedon, C. Louter
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引用次数: 0

摘要

目的玻璃材料主要用于建筑物的承重构件。因此,标准化的计算方法可以用于支持常见荷载和边界条件下的安全结构设计。与早期的文献工作不同,本研究详细阐述了普通玻璃元件在火灾暴露和持续机械载荷下的承载能力、失效时间和耐火性,并证明了载荷条件和横截面布局方面的主要趋势。基于参数数值模拟,评估了玻璃在寒冷条件下的传统验证方法(即应力峰值检查)和承载构件的耐火性(即挠度和挠度极限)。设计/方法/方法结构玻璃元件在火灾中的机械性能仍然是设计和脆弱性评估的一个悬而未决的挑战。通常,特殊的防火玻璃解决方案仅用于有限的实际应用,普通的钠钙硅玻璃在承重构件的设计应用中占主导地位。此外,由传统结构材料组成的承载构件所使用的传统建议和测试协议尚未涉及玻璃构件。本文阐述了结构玻璃梁在标准ISO时间-温度下暴露于火灾和平面内弯曲机械载荷下的耐火极限和失效检测方法。在有限元数值分析的支持下,讨论了耐火极限评估方法。发现基于扩展参数有限元分析,在平面内弯曲设置和火灾暴露下,简单玻璃元件的分析考虑了多种载荷、几何和热机械配置。比较结果表明,在大多数情况下,火灾暴露引起的热效应对这些构件的实际承载能力有重大影响。此外,与在寒冷条件下进行的传统计算相比,传统的应力峰值验证方法需要具体的阐述。原创性/价值所提供的数值结果证实,由于多个方面和影响参数的结合,普通结构玻璃构件的耐火性分析是一个相当复杂的问题。此外,有限元模拟可以为主要退化和损伤现象的局部和全局分析提供有用的支持,从而支持定义火灾暴露玻璃构件的简单而现实的验证程序。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermo-mechanical numerical analyses in support of fire endurance assessment of ordinary soda-lime structural glass elements
PurposeGlass material is largely used for load-bearing components in buildings. For this reason, standardized calculation methods can be used in support of safe structural design in common loading and boundary conditions. Differing from earlier literature efforts, the present study elaborates on the load-bearing capacity, failure time and fire endurance of ordinary glass elements under fire exposure and sustained mechanical loads, with evidence of major trends in terms of loading condition and cross-sectional layout. Traditional verification approaches for glass in cold conditions (i.e. stress peak check) and fire endurance of load-bearing members (i.e. deflection and deflection rate limits) are assessed based on parametric numerical simulations.Design/methodology/approachThe mechanical performance of structural glass elements in fire still represents an open challenge for design and vulnerability assessment. Often, special fire-resisting glass solutions are used for limited practical applications only, and ordinary soda-lime silica glass prevails in design applications for load-bearing members. Moreover, conventional recommendations and testing protocols in use for load-bearing members composed of traditional constructional materials are not already addressed for glass members. This paper elaborates on the fire endurance and failure detection methods for structural glass beams that are subjected to standard ISO time–temperature for fire exposure and in-plane bending mechanical loads. Fire endurance assessment methods are discussed with the support of Finite Element (FE) numerical analyses.FindingsBased on extended parametric FE analyses, multiple loading, geometrical and thermo-mechanical configurations are taken into account for the analysis of simple glass elements under in-plane bending setup and fire exposure. The comparative results show that – in most of cases – thermal effects due to fire exposure have major effects on the actual load-bearing capacity of these members. Moreover, the conventional stress peak verification approach needs specific elaborations, compared to traditional calculations carried out in cold conditions.Originality/valueThe presented numerical results confirm that the fire endurance analysis of ordinary structural glass elements is a rather complex issue, due to combination of multiple aspects and influencing parameters. Besides, FE simulations can provide useful support for a local and global analysis of major degradation and damage phenomena, and thus support the definition of simple and realistic verification procedures for fire exposed glass members.
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来源期刊
Journal of Structural Fire Engineering
Journal of Structural Fire Engineering CONSTRUCTION & BUILDING TECHNOLOGY-
CiteScore
2.20
自引率
10.00%
发文量
28
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