A Numerical Investigation of High-Strength Steel H-SA700 of Protected Beam with Cavity Under Elevated Temperature Including Creep Behavior

IF 2.3 3区 工程技术 Q2 ENGINEERING, MULTIDISCIPLINARY Fire Technology Pub Date : 2024-04-03 DOI:10.1007/s10694-024-01576-y
Hoang Long Nguyen, Mamoru Kohno
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Abstract

High-strength steel has been extensively used in numerous structures or high-rise buildings because of its high strength, ductility, and weldability. However, high-strength steel structures are vulnerable to fire hazards, so the ability to predict structural behavior is crucial in structural fire safety design. Creep behavior is one of the primary factors influencing the response of steel at high temperatures. This paper presents numerical studies using the fire dynamics simulator (FDS) and finite element method (FEM) coupling models to predict the structural behavior of a protected beam with a cavity for H-SA700 high-strength steel at elevated temperatures, including the creep effect. A comparison between simulation and experiment results demonstrates the validity of the process. In detail, based on a set of tensile tests conducted at six constant temperatures between 23°C and 600°C, the creep model is proposed. Subsequently, because creep is temperature-dependent, the heat transfer model used to predict the temperature distribution of the steel is developed. The effect of the partially damaged protection cover is discussed. Finally, it is found that with the temperature distribution from FDS-FEM integration and the proposed creep models, the collapse time of the beam can be defined. This study provides a practical approach for developing the creep model without creep tests and applying it to complex structures during fires.

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高温下带空腔保护梁的高强度钢 H-SA700 的蠕变行为数值研究
高强度钢因其高强度、延展性和可焊接性而被广泛应用于众多结构或高层建筑中。然而,高强度钢结构易受火灾危害,因此预测结构行为的能力对于结构防火设计至关重要。蠕变行为是影响钢材高温响应的主要因素之一。本文介绍了使用火灾动力学模拟器(FDS)和有限元法(FEM)耦合模型进行的数值研究,以预测带空腔的 H-SA700 高强度钢保护梁在高温下的结构行为,包括蠕变效应。模拟和实验结果之间的对比证明了这一过程的有效性。具体而言,根据在 23°C 至 600°C 之间的六个恒定温度下进行的一组拉伸试验,提出了蠕变模型。随后,由于蠕变与温度有关,还建立了用于预测钢材温度分布的传热模型。讨论了部分损坏的保护层的影响。最后,通过 FDS-FEM 集成的温度分布和所提出的蠕变模型,可以确定梁的坍塌时间。本研究提供了一种实用方法,无需进行蠕变试验即可开发蠕变模型,并将其应用于火灾期间的复杂结构。
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来源期刊
Fire Technology
Fire Technology 工程技术-材料科学:综合
CiteScore
6.60
自引率
14.70%
发文量
137
审稿时长
7.5 months
期刊介绍: Fire Technology publishes original contributions, both theoretical and empirical, that contribute to the solution of problems in fire safety science and engineering. It is the leading journal in the field, publishing applied research dealing with the full range of actual and potential fire hazards facing humans and the environment. It covers the entire domain of fire safety science and engineering problems relevant in industrial, operational, cultural, and environmental applications, including modeling, testing, detection, suppression, human behavior, wildfires, structures, and risk analysis. The aim of Fire Technology is to push forward the frontiers of knowledge and technology by encouraging interdisciplinary communication of significant technical developments in fire protection and subjects of scientific interest to the fire protection community at large. It is published in conjunction with the National Fire Protection Association (NFPA) and the Society of Fire Protection Engineers (SFPE). The mission of NFPA is to help save lives and reduce loss with information, knowledge, and passion. The mission of SFPE is advancing the science and practice of fire protection engineering internationally.
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