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Post-Fire Characteristics of Concrete Beams Reinforced with Hybrid FRP Bars

机译:混合FRP筋加固混凝土梁的火灾后特征。

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摘要

One of the main concerns of experimental and numerical investigations regarding the behavior of fiber-reinforced polymer reinforced concrete (FRP-RC) members is their fire resistance to elevated temperatures and structural performance at and after fire exposure. However, the data currently available on the behavior of fiber-reinforced polymer (FRP) reinforced members related to elevated temperatures are scarce, specifically relating to the strength capacity of beams after being subjected to elevated temperatures. This paper investigates the residual strength capacity of beams strengthened internally with various (FRP) reinforcement types after being subjected to high temperatures, reflecting the conditions of a fire. The testing was made for concrete beams reinforced with three different types of FRP bars: (i) basalt-FRP (BFRP), (ii) hybrid FRP with carbon and basalt fibers (HFRP) and (iii) nano-hybrid FRP (nHFRP), with modification of the epoxy matrix of the rebar. Tested beams were first loaded at 50% of their ultimate strength capacity, then unloaded before being heated in a furnace and allowed to cool, and finally reloaded flexurally until failure. The results show an atypical behavior observed for HFRP bars and nHFRP bars reinforced beams, where after a certain temperature threshold the deflection began to decrease. The authors suggest that this phenomenon is connected with the thermal expansion coefficient of the carbon fibers present in HFRP and nHFRP bars and therefore creep can appear in those fibers, which causes an effect of “prestressing” of the beams.
机译:关于纤维增强聚合物增强混凝土(FRP-RC)构件性能的实验和数值研究的主要问题之一是其在暴露于火灾后及之后对高温的耐火性和结构性能。然而,关于纤维增强聚合物(FRP)增强构件的与高温相关的性能的当前可用数据很少,特别是与梁在经受高温后的强度能力有关。本文研究了在高温下用各种(FRP)增强类型进行内部加固的梁的剩余强度能力,以反映火灾的状况。对使用三种不同类型的FRP筋加固的混凝土梁进行了测试:(i)玄武岩FRP(BFRP),(ii)含碳纤维和玄武岩纤维的混合FRP(HFRP)和(iii)纳米混杂FRP(nHFRP) ,并修改了钢筋的环氧基质。首先将受试梁以其极限强度的50%加载,然后将其卸载,然后在炉中加热并使其冷却,最后以挠性重新加载直至失效。结果表明,对于HFRP筋和nHFRP筋加固梁,观察到了非典型行为,在一定温度阈值之后,挠度开始减小。作者认为,这种现象与HFRP和nHFRP棒中存在的碳纤维的热膨胀系数有关,因此,这些纤维中会出现蠕变,从而引起梁的“预应力”效应。

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