采用预应力 CFRP 织物和带螺旋箍筋的超高性能混凝土护套加固的钢筋混凝土柱的轴向抗压性能

IF 3 3区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY
Qiang Wang, Xu‐hua Liang, Xin Liu, Shi‐ping Guo, Chun‐ling Lu
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引用次数: 0

摘要

为了解决碳纤维增强聚合物(CFRP)在增强碳纤维增强聚合物和超高性能混凝土(UHPC)加固混凝土柱的轴向抗压性能过程中易受剪切破坏的问题,我们采用了预应力碳纤维增强聚合物和带螺旋箍筋的超高性能混凝土两种方法对钢筋混凝土(RC)柱进行复合加固。共设计和制造了一根未加固柱和八根加固柱,以验证拟议方法的有效性。通过考虑单一或复合加固方法、UHPC 中螺旋箍筋的存在以及预应力 CFRP 的应用等参数,分析了每个试样的轴向抗压性能和承载能力。结果表明,与任何单一加固试样相比,复合加固试样的极限承载力均大于相应单一加固试样的总和,其中预应力 CFRP 与螺旋箍筋 UHPC 复合加固试样的承载力最为显著,达到 235.63%。通过在 UHPC 护套中加入螺旋箍筋,加固柱在破坏过程中的不均匀破碎现象得到了改善。这有助于防止 CFRP 的过早剪切破坏,提高 CFRP 的断裂应变和有效利用率。此外,预应力 CFRP 还能有效抑制 UHPC 护套中核心混凝土的横向变形和裂缝发展,充分利用 UHPC 的高抗压强度。这进一步提高了试件的极限承载能力和延展性。根据各种材料的实验现象和应变,提出了预应力 CFRP 螺旋增强 UHPC 复合材料加固柱的破坏机理。最后,基于约束混凝土强度理论和强度增量叠加假设,建立了单一加固柱和复合加固柱的统一承载力计算公式。该公式与相关文献中的实验结果进行了验证,结果显示计算结果误差较小,表明该公式具有良好的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Axial compressive performance of RC columns strengthened with prestressed CFRP fabric and UHPC jacket with spiral stirrups
To address the issue of easy shearing damage of Carbon Fiber Reinforced Polymer (CFRP) in enhancing the axial compressive performance of CFRP and Ultra‐High‐Performance Concrete (UHPC) strengthened concrete columns, two methods, prestressed CFRP and UHPC with spiral stirrups, were employed for composite strengthening of reinforced concrete (RC) columns. A total of one unstrengthened column and eight strengthened columns were designed and fabricated to validate the effectiveness of the proposed methods. The axial compressive performance and bearing capacity of each specimen were analyzed by considering parameters such as single or composite strengthening method, presence of spiral stirrups in UHPC, and application of pre‐stressed CFRP. The results show that, compared with any single strengthened specimen, the ultimate bearing capacity of the composite strengthened specimen is greater than the sum of the corresponding single strengthened specimens, and the bearing capacity of the prestressed CFRP with spiral stirrup UHPC composite strengthened specimen is the most significant, reaching 235.63%. By incorporating spiral stirrups in the UHPC jacket, the phenomenon of uneven fragmentation during the failure of the strengthened column is improved. This helps prevent premature shearing damage of CFRP and enhances the fracture strain and effective utilization of CFRP. Additionally, prestressed CFRP effectively restrains the lateral deformation and crack development of the core concrete in the UHPC jacket, fully utilizing the high compressive strength of UHPC. This further enhances the ultimate bearing capacity and ductility of the specimens. Based on the experimental phenomena and strain of each material, the failure mechanism of prestressed CFRP‐spiral reinforced UHPC composite‐strengthened columns is proposed. Finally, a unified bearing capacity calculation formula for single and composite strengthened columns is established, based on the theory of confined concrete strength and the assumption of strength increment superposition. The formula is validated with experimental results from relevant literature, showing small errors in the calculated results and indicating good applicability of the formula.
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来源期刊
Structural Concrete
Structural Concrete CONSTRUCTION & BUILDING TECHNOLOGY-ENGINEERING, CIVIL
CiteScore
5.60
自引率
15.60%
发文量
284
审稿时长
3 months
期刊介绍: Structural Concrete, the official journal of the fib, provides conceptual and procedural guidance in the field of concrete construction, and features peer-reviewed papers, keynote research and industry news covering all aspects of the design, construction, performance in service and demolition of concrete structures. Main topics: design, construction, performance in service, conservation (assessment, maintenance, strengthening) and demolition of concrete structures research about the behaviour of concrete structures development of design methods fib Model Code sustainability of concrete structures.
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