火灾荷载下 GFRP 加固混凝土柱的分析和实验行为

Ana Almerich-Chulia, Pedro Martin-Concepcion, J. Moreno-Puchalt, J. Molines-Cano
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摘要

消防工程致力于在发生火灾时减少人员伤亡。这主要是通过火灾预防、控制和灭火措施来实现的。如果预防失败,建筑物的结构完整性以及有效的疏散策略就变得至关重要。虽然玻璃纤维增强聚合物(GFRP)材料在加固混凝土构件方面已证明了其功效,但它们在火灾条件下的性能,尤其是与钢材相比,需要对结构应用有更深入的了解。本研究通过实验和数值方法研究了 GFRP 加固混凝土 (RC) 柱在仅承受火灾荷载而不承受额外外部荷载的情况下的防火性能。研究旨在根据混凝土涂层厚度和 90 分钟火灾暴露后 GFRP 钢筋的极限抗拉强度确定其耐火性能。在实验程序中,四根 GFRP-RC 柱的四面都受到了标准化防火曲线的影响。在分析程序中,使用 COMSOL 软件的传热模块开发了一个理论模型。两次分析的结果非常接近,表明所使用程序的可靠性。根据研究结果,为结构应用制定了有关 GFRP-RC 柱耐火性的建议。这项研究的结果为土木工程界提供了数据,有助于他们继续使用 FRP 材料作为混凝土的内部加固材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analytical and Experimental Behaviour of GFRP-Reinforced Concrete Columns under Fire Loading
Fire engineering endeavours to mitigate injury or the loss of life in the event of a fire. This is achieved primarily through fire prevention, containment, and extinguishment measures. Should prevention fail, the structural integrity of buildings, coupled with effective evacuation strategies, becomes paramount. While glass fibre-reinforced polymer (GFRP) materials have demonstrated efficacy in reinforcing concrete elements, their performance under fire conditions, notably in comparison to steel, necessitates a deeper understanding for structural applications. This study experimentally and numerically investigates the fire performance of GFRP-reinforced concrete (RC) columns subjected to only fire load without additional external loads. The research aims to ascertain the fire resistance based on the thickness of the concrete coating and the ultimate tensile strength of GFRP rebars after 90 min of fire exposure. Four GFRP-RC columns were subjected to a standardized fire curve on all sides in the experimental program. In the analytical program, a theoretical model was developed using the heat transfer module of the COMSOL software. The results of both analyses were very close, indicating the reliability of the procedure used. Based on the findings, recommendations regarding the fire resistance of GFRP-RC columns were formulated for structural applications. Results from this research provide the civil engineering community with data that will help them continue using FRP materials as internal reinforcement for concrete.
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