Tension stiffening model for the finite element analysis of composite floor systems exposed to fire

IF 0.9 Q4 CONSTRUCTION & BUILDING TECHNOLOGY Journal of Structural Fire Engineering Pub Date : 2022-03-21 DOI:10.1108/jsfe-10-2021-0065
Jason Martinez, A. Jeffers
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Abstract

PurposeA methodology for producing an elevated-temperature tension stiffening model is presented.Design/methodology/approachThe energy-based stress–strain model of plain concrete developed by Bažant and Oh (1983) was extended to the elevated-temperature domain by developing an analytical formulation for the temperature-dependence of the fracture energy Gf. Then, an elevated-temperature tension stiffening model was developed based on the modification of the proposed elevated-temperature tension softening model.FindingsThe proposed tension stiffening model can be used to predict the response of composite floor slabs exposed to fire with great accuracy, provided that the global parameters TS and Kres are adequately calibrated against global structural response data.Originality/valueIn a finite element analysis of reinforced concrete, a tension stiffening model is required as input for concrete to account for actions such as bond slip and tension stiffening. However, an elevated-temperature tension stiffening model does not exist in the research literature. An approach for developing an elevated-temperature tension stiffening model is presented.
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火灾下复合材料楼板系统有限元分析的张力加劲模型
目的提出了一种生成高温拉伸加劲模型的方法。设计/方法/方法Bažant和Oh(1983)开发的基于能量的素混凝土应力-应变模型通过开发断裂能Gf的温度依赖性分析公式扩展到高温域。然后,在改进高温拉伸软化模型的基础上,建立了高温拉伸刚化模型。结果所提出的张力加劲模型可用于预测暴露在火灾中的复合楼板的响应,前提是根据全局结构响应数据对全局参数TS和Kres进行充分校准。原创性/价值在钢筋混凝土的有限元分析中,需要一个张力加劲模型作为混凝土的输入,以考虑粘结滑移和张力加劲等作用。然而,研究文献中并不存在高温拉伸硬化模型。提出了一种建立高温拉伸加劲模型的方法。
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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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