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Repair of shear-deficient normal weight concrete beams damaged by thermal shock using advanced composite materials

机译:使用先进的复合材料修复受热冲击破坏的剪力不足的正常重量混凝土梁

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The use of advanced composite materials such as Fiber Reinforced Polymers (FRPs) in repairing and strengthening reinforced concrete structural elements has been increased in the last two decades. Repairing and strengthening damage structures is a relatively new technique. The aims of this study was to investigate the efficiency and effectiveness of using Carbon Fiber Reinforced Polymer (CFRP) to regain shear capacity of shear-deficient normal weight high strength RC beams after being damaged by thermal shock. Sixteen high strength normal weight RC beams (100 × 150 × 1400 mm) were cast, heated at 500 ℃ for 2 h and then cooled rapidly by immersion in water, repaired, and then tested under four-point loading until failure. The composite materials used are carbon fiber reinforced polymer plates and sheets. The experimental results indicated that upon heating then cooling rapidly, the reinforced concrete (RC) beams exhibited extensive map cracking without spalling. Load carrying capacity and stiffness of RC beams decreased about 68% and 64%, respectively, as compared with reference beams. Repairing the thermal damaged RC beams allowed recovering the original load carrying without achieving the original stiffness. Repaired beams with CFRP plates with 90° and 45° regained from 90% to 99% of the original load capacity with a corresponding stiffness from 79% to 95%, whereas those repaired with CFRP sheet on the web sides and a combination of CFRP plates and sheet regained from 102% to 107% of the original load capacity with a corresponding stiffness from 81% to 93%, respectively. Finally, finite element analysis model is developed and validated with the experimental results. The finite element analysis showed good agreement as compared with the experimental results in terms of load-deflection and load-CFRP strain curves.
机译:在过去的二十年中,已经越来越多地使用先进的复合材料,例如纤维增强聚合物(FRP)来修复和增强钢筋混凝土结构元件。修复和加固损坏结构是一种相对较新的技术。这项研究的目的是研究使用碳纤维增强聚合物(CFRP)在受热冲击破坏后恢复剪切不足的正常重量高强度RC梁的剪切能力的效率和有效性。铸造16条高强度的普通重量RC梁(100×150×1400 mm),在500℃加热2 h,然后通过浸入水中快速冷却,进行修复,然后在四点载荷下进行试验直至失效。所使用的复合材料是碳纤维增强的聚合物板和片。实验结果表明,在加热然后迅速冷却时,钢筋混凝土(RC)梁显示出广泛的地图开裂而没有剥落。与参考梁相比,RC梁的承载能力和刚度分别降低了约68%和64%。修复受热损坏的RC梁可以恢复原始的承载力,而不会达到原始的刚度。使用90°和45°CFRP板修复的梁从原来的承载能力的90%恢复到99%,相应的刚度从79%到95%,而使用腹板CFRP板和CFRP板组合修复的梁片材和片材分别从原来的承载能力的102%恢复到107%,而相应的刚度则从81%恢复到93%。最后,建立了有限元分析模型,并与实验结果进行了验证。与试验结果相比,有限元分析在载荷挠度和载荷-CFRP应变曲线上显示出良好的一致性。

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