使用外部粘结、混合纤维增强聚合物修复和加固弯曲中受热损坏的RC梁的实验和分析研究

IF 0.9 Q4 CONSTRUCTION & BUILDING TECHNOLOGY
Yousef S. Al Rjoub, Ala Obaidat, Ahmed Ashteyat, Khalid Alshboul
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引用次数: 5

摘要

目的本研究旨在通过实验研究和有限元模型(FEM)来研究混合纤维增强聚合物(HFRP)加固/修复热损伤梁的弯曲性能。设计/方法/方法两组(150×250×1200)mm的梁被铸造,使用不同配置的HFRP进行加固和修复,并在四点载荷下进行测试。第一组保持在室温下,而第二组暴露在400°C的温度下。研究发现,使用多层碳纤维增强聚合物(CFRP)和玻璃纤维加强聚合物(GFRP)比单层更能提高强度。此外,两层FRP的顺序对梁的弯曲性能没有影响。使用三层方案(首先连接GFRP,然后连接两层CFRP)比首先连接CFRP的方案表现出更大的极限载荷增加。此外,方案HGC(依次用玻璃和碳修复的加热梁)允许实现暴露在400°C下的试样的残余弯曲能力。在控制梁和热损伤梁中观察到典型的弯曲破坏,而加固/修复梁因覆盖层分离和FRP脱胶而失效,然而,用两层GFRP修复的试样因FRP断裂而失效。有限元计算结果与实验结果吻合良好。独创性/价值很少有研究人员研究HFRP对加热、损坏的钢筋混凝土(RC)梁的加固和修复效果。本文通过实验和分析研究了CFRP和GFRP的不同FRP配置下,外部加固和修复的RC梁在弯曲时的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental and analytical investigation of using externally bonded, hybrid, fiber-reinforced polymers to repair and strengthen heated, damaged RC beams in flexure
PurposeThis study aims to conduct an experimental study and finite element model (FEM) to investigate the flexural behavior of heat-damaged beams strengthened/repaired by hybrid fiber-reinforced polymers (HFRP).Design/methodology/approachTwo groups of beams of (150 × 250 × 1,200) mm were cast, strengthened and repaired using different configurations of HFRP and tested under four-point loadings. The first group was kept at room temperature, while the second group was exposed to a temperature of 400°C.FindingsIt was found that using multiple layers of carbon fiber-reinforced polymer (CFRP) and glass fiber-reinforced polymer (GFRP) enhanced the strength more than a single layer. Also, the order of two layers of FRP showed no effect on flexural behavior of beams. Using a three-layer scheme (attaching the GFRP first and followed by two layers of CFRP) exhibited increase in ultimate load more than the scheme attached by CFRP first. Furthermore, the scheme HGC (heated beam repaired with glass and carbon, in sequence) allowed to achieve residual flexural capacity of specimen exposed to 400°C. Typical flexural failure was observed in control and heat-damaged beams, whereas the strengthened/repaired beams failed by cover separation and FRP debonding, however, specimen repaired with two layers of GFRP failed by FRP rupture. The FEM results showed good agreement with experimental results.Originality/valueFew researchers have studied the effects of HFRP on strengthening and repair of heated, damaged reinforced concrete (RC) beams. This paper investigates, both experimentally and analytically, the performance of externally strengthened and repaired RC beams, in flexure, with different FRP configurations of CFRP and GFRP.
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来源期刊
Journal of Structural Fire Engineering
Journal of Structural Fire Engineering CONSTRUCTION & BUILDING TECHNOLOGY-
CiteScore
2.20
自引率
10.00%
发文量
28
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