Mourad Khelifa, Van Diem Thi, Marc Oudjène, Amar Khennane, Mohammed El Ganaoui, Yann Rogaume
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引用次数: 0
摘要
分析火灾下的木结构的一个基本要求是考虑材料特性随温度的变化而退化。因此,本研究的目的是提出一个模型,以说明热物理性质的变化、炭化的发展及其随温度的变化。该模型整合了传热分析与结构响应的顺序耦合。材料性能的退化是通过欧洲规范 5 中推荐的调节方法来考虑的。应力分析采用了具有非线性各向同性硬化的弹塑性模型。该模型通过外部子程序在 Abaqus 有限元软件套件中实现。该模型的预测结果与实验数据十分吻合,准确地再现了热响应和结构响应。具体来说,该模型准确预测了温度曲线、位移和炭化层深度,炭化层始于 300 °C 以上。此外,对于矩形截面,可以观察到将所有面暴露于火中会产生非矩形残余截面。此外,在预测软木木材结构的耐火性时,采用 EC5 建议的随温度变化的热性能曲线可获得令人满意的结果。
A fundamental requirement for analysing timber structures under fire is to consider the degradation of material properties with temperature. Therefore, the objective of this study is to propose a model that accounts for the variation of the thermo-physical properties, the development of char, and its evolution with temperature. This model integrates a sequential coupling of heat transfer analysis with structural response. The degradation of the material properties is accounted for through the regulatory approach recommended in Eurocode 5. The stress analysis employs an elasto-plastic model with nonlinear isotropic hardening. Implementation of the model is achieved within the Abaqus suite of finite element software using external subroutines. The model's predictions align well with experimental data, accurately reproducing both thermal and structural responses. Specifically, the model accurately predicts temperature profiles, displacements, and the depth of the charred layer, which initiates above 300 °C. Additionally, for rectangular sections, it was observed that exposure of all faces to fire results in a non-rectangular residual section. Furthermore, employing the temperature-dependent thermal property curves suggested by EC5 yields satisfactory results when predicting the fire resistance of softwood timber structures.
期刊介绍:
International Journal of Civil Engineering, The official publication of Iranian Society of Civil Engineering and Iran University of Science and Technology is devoted to original and interdisciplinary, peer-reviewed papers on research related to the broad spectrum of civil engineering with similar emphasis on all topics.The journal provides a forum for the International Civil Engineering Community to present and discuss matters of major interest e.g. new developments in civil regulations, The topics are included but are not necessarily restricted to :- Structures- Geotechnics- Transportation- Environment- Earthquakes- Water Resources- Construction Engineering and Management, and New Materials.