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Experimental investigation on thermal and mechanical behaviour of composite floors exposed to standard fire

机译:标准火灾下复合地板热力学性能的实验研究

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摘要

This paper presents experimental investigations on the thermal and mechanical behavior of composite floors subjected to ISO standard fire. Four 5.2 mx3.7 m composite slabs are tested with different combinations of the presence of one unprotected secondary beam, direction of ribs, and location of the reinforcement. The experimental results show that the highest temperature in the reinforcements occurs during the cooling phase (30-50 degrees C increment after 10-min cooling). The temperature at the unexposed side of the slabs is below 100 degrees C up to 100-min heating, compared to the predicted fire resistance close to 90 mins from EC4. For the slabs without secondary beams, the cracks first occur around the boundaries of the slab, while for the slabs supported by one unprotected secondary beam, concrete cracks first occur on the top of the slab above the beam due to the negative bending moment, and later on develop around boundaries. Debonding is observed between the steel deck and concrete slab. The secondary beam significantly impacts the deformation shape of tested slabs. Although a large deflection, 1/20 of the span length, is reached in the tests, the composite slabs can still provide sufficient load-bearing capacity due to membrane action. The occurrence of tensile membrane action is confirmed by the measured tensile stress in the reinforcement and compressive stress in the concrete. A comparison between measured and predicted fire resistance of the slabs indicates that EC4 calculations might be used for the composite slabs beyond the specified geometry limit, and the prediction is conservative.
机译:本文介绍了经受ISO标准防火的复合地板的热力学性能的实验研究。测试了四块5.2 mx3.7 m的复合板,并采用了不同的组合,包括一根未受保护的次梁,肋骨的方向以及钢筋的位置。实验结果表明,增强材料中的最高温度发生在冷却阶段(冷却10分钟后温度升高30-50摄氏度)。到100分钟加热为止,板坯未暴露侧的温度低于100摄氏度,而距EC4接近90分钟的预计耐火性则有所不同。对于没有副梁的板,首先在板的边界附近产生裂纹,而对于由一个未保护副梁支撑的板,由于负弯矩,混凝土裂缝首先在梁上方的板顶部发生。后来围绕边界发展。在钢甲板和混凝土板之间观察到剥离。副梁会显着影响被测板的变形形状。尽管在测试中达到了跨距的1/20的大挠度,但由于膜的作用,复合板仍可提供足够的承载能力。通过测得的钢筋中的拉应力和混凝土中的压应力来确认拉伸膜作用的发生。平板的实测耐火性与预测耐火性之间的比较表明,EC4计算可用于超出指定几何形状限制的复合平板,并且预测是保守的。

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