Comparative study of failure mechanism of CFRP partially confined normal strength concrete (NSC) and UHPC cylinders under axial compression

IF 5.6 1区 工程技术 Q1 ENGINEERING, CIVIL Engineering Structures Pub Date : 2024-11-30 DOI:10.1016/j.engstruct.2024.119391
Wanye Li , Yao Lu , Meizhong Wu , Peng Wang , Weiwen Li , Xingquan Wang , Mingfeng Kai , Jing Yu
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Abstract

Ultra-high performance concrete (UHPC) holds significant potential in marine structures due to its superior compressive strength and enhanced durability in comparison to normal strength concrete (NSC). Carbon fiber-reinforced polymer (CFRP) confinement has been proven to improve these properties further. However, the compressive behavior of CFRP-confined UHPC, especially for partial confinement, presents complexities arising from the intricate interaction mechanism between UHPC and wrapped CFRP strips. To address this issue, the present study conducted axial compression tests accompanied by digital image correlation (DIC) analyses. Failure modes, stress-strain behavior, hoop strain distribution, and cracking evolution of CFRP partially confined NSC/UHPC were elucidated, thereby uncovering the underlying load transfer mechanism between NSC/UHPC and wrapped CFRP strips. Research outcomes show that the enhancement in compressive strength fcc/fco (0.99 ∼ 1.43) and strain εcu/εco (1.51 ∼ 2.59) of CFRP partially confined UHPC is relatively lower than the NSC counterparts (1.28 ∼ 2.98 and 3.82 ∼ 15.14, respectively). Moreover, lower hoop strain efficiency εh,rup/εfrp can be found for CFRP partially confined UHPC compared to NSC (0.61 vs. 0.86). These phenomena were primarily attributed to the localized shear-cracking pattern and low dilation behavior of confined UHPC. Based on the experimental results, the elucidation of the underlying load transfer mechanism between UHPC/NSC and wrapped CFRP strips provides valuable insights into comprehending the compressive behavior of CFRP partially confined UHPC. Finally, the “arching effect” is found to exhibit limited effect on the ultimate condition’s prediction of partially confined UHPC according to the failure mechanism and Li et al.’s model can reliably predict the ultimate conditions among the existing models.
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CFRP部分约束正强混凝土(NSC)与UHPC圆柱体轴压破坏机理对比研究
与普通强度混凝土(NSC)相比,超高性能混凝土(UHPC)具有优越的抗压强度和增强的耐久性,在海洋结构中具有巨大的潜力。碳纤维增强聚合物(CFRP)约束已被证明可以进一步改善这些性能。然而,碳纤维布约束下的超高压混凝土,特别是局部约束下的超高压混凝土,由于超高压混凝土与包裹的碳纤维布条带之间复杂的相互作用机制,其压缩性能呈现出复杂性。为了解决这个问题,本研究进行了轴向压缩试验,并进行了数字图像相关(DIC)分析。研究了CFRP局部约束NSC/UHPC的破坏模式、应力-应变行为、环向应变分布和开裂演化,揭示了NSC/UHPC与CFRP包覆条之间潜在的荷载传递机制。研究结果表明,CFRP部分受限UHPC的抗压强度fcc/fco(0.99 ~ 1.43)和应变εcu/εco(1.51 ~ 2.59)的增强幅度均低于NSC(分别为1.28 ~ 2.98和3.82 ~ 15.14)。与NSC相比,CFRP部分受限UHPC的环向应变效率εh,rup/εfrp更低(0.61比0.86)。这些现象主要是受约束的超高性能混凝土的局部剪切-开裂模式和低扩张行为所致。基于实验结果,阐明了UHPC/NSC与包裹CFRP条之间潜在的荷载传递机制,为理解CFRP部分受限UHPC的压缩性能提供了有价值的见解。最后,根据破坏机理发现“拱效应”对部分受限超高性能混凝土极限工况预测的影响有限,Li等人的模型在现有模型中能够可靠地预测极限工况。
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来源期刊
Engineering Structures
Engineering Structures 工程技术-工程:土木
CiteScore
10.20
自引率
14.50%
发文量
1385
审稿时长
67 days
期刊介绍: Engineering Structures provides a forum for a broad blend of scientific and technical papers to reflect the evolving needs of the structural engineering and structural mechanics communities. Particularly welcome are contributions dealing with applications of structural engineering and mechanics principles in all areas of technology. The journal aspires to a broad and integrated coverage of the effects of dynamic loadings and of the modelling techniques whereby the structural response to these loadings may be computed. The scope of Engineering Structures encompasses, but is not restricted to, the following areas: infrastructure engineering; earthquake engineering; structure-fluid-soil interaction; wind engineering; fire engineering; blast engineering; structural reliability/stability; life assessment/integrity; structural health monitoring; multi-hazard engineering; structural dynamics; optimization; expert systems; experimental modelling; performance-based design; multiscale analysis; value engineering. Topics of interest include: tall buildings; innovative structures; environmentally responsive structures; bridges; stadiums; commercial and public buildings; transmission towers; television and telecommunication masts; foldable structures; cooling towers; plates and shells; suspension structures; protective structures; smart structures; nuclear reactors; dams; pressure vessels; pipelines; tunnels. Engineering Structures also publishes review articles, short communications and discussions, book reviews, and a diary on international events related to any aspect of structural engineering.
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