Fire Resistance Analysis of Two-Way Reinforced Concrete Slabs

Q3 Engineering Open Civil Engineering Journal Pub Date : 2023-05-01 DOI:10.28991/cej-2023-09-05-05
F. Salihu, Zijadin Guri, M. Cvetkovska, Fatos Pllana
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Abstract

This paper presents a fire resistance analysis of two-way reinforced concrete (RC) slabs. The study analyzes the effect of specific parameters—concrete cover thickness, span, and support conditions—on the fire resistance of the slabs. To that end, the slabs were exposed to Standard Fire ISO 834, and the 3D nonlinear numerical analyses were conducted in SAFIR2016. The results of the numerical analyses were evaluated against experimental results reported in the literature. The agreement between the two sets of results was satisfactory throughout the fire test. Nonetheless, to verify the obtained numerical results, all testing-related parameters must comply with the numerical simulation results. This comparison demonstrated the usefulness of numerical simulations in predicting the behavior of structures in fire conditions. In addition to the nonlinear numerical analysis, the fire resistance was calculated using the simplified method and tabulated data described in Eurocode 2 (Part 1.2) to assess the accuracy and reliability of fire safety regulations in the design of two-way slabs and identify significant differences between the design code and numerical analysis. The comparison showed that SAFIR2016 provides more accurate results by considering additional factors, such as tensile membrane forces, which increase the fire resistance of two-way slabs. According to the load-bearing criteria, the two-way slabs have high fire resistance, considerably higher than prescribed in the fire safety regulations, which ignore the positive effect of tensile membrane forces. According to the numerical analysis, the upper reinforcement in the compression areas of the slab's span was considered, which increased the fire resistance of the slabs. In contrast, according to the design codes, the contribution of this reinforcement is neglected. It was indicated that the increased concrete cover improves the fire resistance of the slabs. The vertical displacements increase by increasing the slab span, but according to the load-bearing criteria, all the slabs show fire resistance of over ten hours. In terms of bearing capacity, slabs with various support conditions show fire resistance of longer than ten hours. In terms of deflections, the supporting conditions of the slabs have a significant influence on their behavior. This study provides valuable insights into the fire resistance of two-way RC slabs and highlights the importance of considering specific parameters in the analysis. Doi: 10.28991/CEJ-2023-09-05-05 Full Text: PDF
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双向钢筋混凝土板的耐火性能分析
本文对双向钢筋混凝土板的耐火性能进行了分析。研究分析了混凝土覆盖厚度、跨度和支撑条件等具体参数对楼板耐火性能的影响。为此,楼板暴露在ISO 834标准火中,并在SAFIR2016中进行三维非线性数值分析。数值分析的结果与文献中报道的实验结果进行了比较。在整个火灾试验中,两组结果的一致性是令人满意的。然而,为了验证得到的数值结果,所有与试验有关的参数必须与数值模拟结果一致。这一比较证明了数值模拟在预测火灾条件下结构的性能方面的有用性。除了非线性数值分析外,防火性能的计算采用简化方法和欧洲规范2(第1.2部分)中描述的表格数据,以评估双向板设计中消防安全规定的准确性和可靠性,并确定设计规范与数值分析之间的显著差异。对比表明,SAFIR2016在考虑了其他因素(如拉伸膜力)后提供了更准确的结果,这些因素增加了双向板的耐火性。根据承重标准,双向板具有较高的耐火性能,大大高于消防安全法规的规定,其中忽略了拉伸膜力的积极作用。通过数值分析,考虑了楼板跨受压区的上部配筋,提高了楼板的耐火性能。相比之下,根据设计规范,这种钢筋的贡献被忽略了。结果表明,混凝土覆盖层的增加提高了楼板的耐火性能。竖向位移随楼板跨距的增加而增加,但根据承重标准,所有楼板均表现出超过10小时的耐火性能。在承载力方面,各种支护条件下的楼板耐火时间均在10小时以上。在挠度方面,楼板的支承条件对楼板的行为有显著影响。这项研究为双向RC板的耐火性提供了有价值的见解,并强调了在分析中考虑特定参数的重要性。Doi: 10.28991/ cej -2023-09-05全文:PDF
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来源期刊
Open Civil Engineering Journal
Open Civil Engineering Journal Engineering-Civil and Structural Engineering
CiteScore
1.90
自引率
0.00%
发文量
17
期刊介绍: The Open Civil Engineering Journal is an Open Access online journal which publishes research, reviews/mini-reviews, letter articles and guest edited single topic issues in all areas of civil engineering. The Open Civil Engineering Journal, a peer-reviewed journal, is an important and reliable source of current information on developments in civil engineering. The topics covered in the journal include (but not limited to) concrete structures, construction materials, structural mechanics, soil mechanics, foundation engineering, offshore geotechnics, water resources, hydraulics, horology, coastal engineering, river engineering, ocean modeling, fluid-solid-structure interactions, offshore engineering, marine structures, constructional management and other civil engineering relevant areas.
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