Repairing high-strength concrete two-way solid slabs exposed to elevated temperature using NSM-CFRP ropes

IF 7 Q2 MATERIALS SCIENCE, COMPOSITES Composites Part C Open Access Pub Date : 2025-04-11 DOI:10.1016/j.jcomc.2025.100590
Ahmed Ashteyat , Mousa Shhabat , Ibrahim Al-Hazmi
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Abstract

Exposure of reinforced concrete (RC) structures to elevated temperatures results in significant degradation of their mechanical properties and overall structural integrity, necessitating the development of effective repair strategies to restore their load-bearing capacity and long-term durability. This study introduces a novel approach through both experimental and theoretical investigations into the efficacy of using Near-Surface Mounted (NSM) Carbon Fiber Reinforced Polymer (CFRP) ropes to repair two-way high-strength concrete (HSC) solid slabs subjected to elevated temperatures of 600 °C for a duration of 3 h. A total of eight slabs, each measuring 1050 × 1050 × 70 mm, were tested, comprising two normal-strength concrete (NSC) slabs and six HSC slabs. The study examined three primary variables: the number of CFRP ropes (2 or 3), their orientation angles (0° or 45°), and their configuration patterns (radial star or concentric squares). The key performance indicators evaluated included load capacity, failure modes, stiffness, and ductility. The experimental results indicated that the NSM-CFRP rope repairing technique significantly enhanced the structural performance of heat-damaged slabs. Load capacity improved by 12 % to 35 %, stiffness by 260 % to 343 %, and ductility by 127 % to 324 % when compared to unstrengthened slabs. Notably, the configurations of one rope in a radial star pattern around the column (R-SR) and three ropes arranged in concentric squares at a 45° angle (3R-CS 45°) demonstrated the highest recovery efficiencies, restoring the pre-fire load capacity by 10 % and 1 %, respectively. Theoretical analysis revealed that the models by El-Gamal et al. and Ospina et al. provided close alignment with the experimental findings, with average experimental-to-theoretical ratios of 1.09 and 1.12, respectively. In contrast, the ACI 440.2R-22 model was more conservative, yielding a ratio of 1.22, while the JSCE-97 model significantly overestimated the punching shear capacity, exhibiting the least accuracy among the models analyzed, with a mean ratio of 1.81 and a standard deviation of 0.126. The findings of this research underscore the viability of NSM-CFRP ropes as an efficient and economical method for restoring heat-damaged concrete slabs. This approach provides a flexible repair solution that requires minimal disruption, positioning it as an ideal option for industrial and infrastructure rehabilitation projects.
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使用NSM-CFRP绳索修复高温下暴露的高强度混凝土双向实心板
钢筋混凝土(RC)结构暴露在高温下会导致其机械性能和整体结构完整性显著下降,因此有必要开发有效的修复策略来恢复其承载能力和长期耐久性。本研究通过实验和理论研究介绍了一种新方法,即使用近表面安装(NSM)碳纤维增强聚合物(CFRP)绳索修复双向高强度混凝土(HSC)实心板,使其在 600 °C 的高温下持续 3 小时。研究考察了三个主要变量:CFRP 纤维绳的数量(2 或 3)、取向角(0° 或 45°)以及配置模式(星形径向或同心方形)。评估的主要性能指标包括承载能力、失效模式、刚度和延展性。实验结果表明,NSM-CFRP 绳索修复技术显著提高了热损伤板的结构性能。与未加固的楼板相比,承载能力提高了 12% 至 35%,刚度提高了 260% 至 343%,延展性提高了 127% 至 324%。值得注意的是,围绕柱子呈星形径向排列的一根绳索(R-SR)和呈 45° 角同心方形排列的三根绳索(3R-CS 45°)的配置显示了最高的恢复效率,分别恢复了 10% 和 1% 的火灾前承载能力。理论分析表明,El-Gamal 等人和 Ospina 等人的模型与实验结果非常吻合,实验与理论的平均比率分别为 1.09 和 1.12。相比之下,ACI 440.2R-22 模型更为保守,得出的比率为 1.22,而 JSCE-97 模型则明显高估了冲剪承载力,在所分析的模型中精度最低,平均比率为 1.81,标准偏差为 0.126。这项研究的结果强调了 NSM-CFRP 绳索作为修复热损伤混凝土板的一种高效、经济方法的可行性。这种方法提供了一种灵活的修复解决方案,所需的干扰最小,是工业和基础设施修复项目的理想选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Composites Part C Open Access
Composites Part C Open Access Engineering-Mechanical Engineering
CiteScore
8.60
自引率
2.40%
发文量
96
审稿时长
55 days
期刊最新文献
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