Behavior of Fire-damaged RC Beams After Strengthening with Various Techniques

Asser M. Elsheikh, H. H. Alzamili
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Abstract

High temperatures during a fire can significantly degrade the structural capacity of concrete. However, in many cases, it is possible to restore and strengthen fire-damaged concrete rather than completely rebuild damaged structures. The study considered two types of concrete (normal 25 MPa and high-strength 65 MPa) with two types of strengthening techniques: carbon-fiber-reinforced polymers (CFRP) sheets with different thicknesses of 1.5 and 2.5 mm and slurry-infiltrated fibrous concrete (SIFCON) jacketing with different fiber sizes of 20 and 30 mm. The numerical simulations and analyses were conducted to capture the complex behavior of fire-damaged concrete members (beams). A fire-damaged concrete beam subjected to an extreme or critical fire Exposure time (2 hours) was evaluated and modified using a finite element simulation approach. The simulation process included three stages: the first, subjecting the concrete beam to thermal loading; the second, reflecting the fire distribution map to another model of applying mechanical loading; and the third, involving the application of strengthening to the damaged model. The results showed that the strengthening using CFRP with a thickness of 2.5 improved the load-carrying capacity compared with SIFCON in both types of concrete. 200% improvement for the normal-strength concrete beam and a 136% improvement for the high-strength concrete beam, compared to the damaged beams. Doi: 10.28991/CEJ-2024-010-01-012 Full Text: PDF
采用各种技术加固后受火灾损坏的 RC 梁的行为
火灾期间的高温会大大降低混凝土的结构承载能力。不过,在许多情况下,可以修复和加固被火损坏的混凝土,而不是完全重建受损结构。研究考虑了两种类型的混凝土(普通 25 兆帕和高强度 65 兆帕)和两种类型的加固技术:不同厚度(1.5 毫米和 2.5 毫米)的碳纤维增强聚合物(CFRP)片材和不同纤维尺寸(20 毫米和 30 毫米)的浆液渗透纤维混凝土(SIFCON)护套。进行数值模拟和分析的目的是捕捉受火灾破坏的混凝土构件(梁)的复杂行为。采用有限元模拟方法对遭受极端或临界火灾暴露时间(2 小时)的火灾损坏混凝土梁进行了评估和修改。模拟过程包括三个阶段:第一阶段,对混凝土梁施加热荷载;第二阶段,将火灾分布图反映到另一个施加机械荷载的模型上;第三阶段,对受损模型进行加固。结果表明,与 SIFCON 相比,使用厚度为 2.5 的 CFRP 加固可提高两种类型混凝土的承载能力。与受损梁相比,普通强度混凝土梁提高了 200%,高强度混凝土梁提高了 136%。Doi: 10.28991/CEJ-2024-010-012 全文:PDF
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