Experiments and modeling of structural behavior of different BFRP reinforcements in concrete compressive members

IF 3.4 3区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY Materials and Structures Pub Date : 2024-07-04 DOI:10.1617/s11527-024-02416-9
Zeeshan Ahmad, Abdelatif Salmi, Mohamed Hechmi El Ouni, Mohd Ahmed, Bilal Ahmed, Nejib Ghazouani
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Abstract

Previous investigations have primarily focused on the use of circular basalt fiber reinforced polymer (BFRP) bars in concrete compression members, neglecting the application of these lightweight composites in different structural sections. This study aims to address this research gap by examining the structural efficiency of square concrete compressive members reinforced with various BFRP sections. A total of eight samples were cast, including seven with BFRP angle sections, BFRP plate sections, BFRP tubes, and BFRP circular rebars, and one control sample with conventional steel rebars as the main reinforcement and stainless steel rebars as lateral reinforcement. All samples had a square cross-section of 200 mm width and 1200 mm height, except for the BFRP tube compressive member, which had a cross-section of 180 mm × 180 mm and the same height. The experimental results demonstrated that failure patterns were influenced by the reinforcement material, reinforcement section, and vertical spacing of stainless-steel stirrups. The sample with steel reinforcement exhibited the highest strength of 1451 kN. The ultimate strength reductions for samples with BFRP angle sections, BFRP plate sections, BFRP tubes, and BFRP circular rebars were 22%, 10.3%, 49.6%, and 10%, respectively. The study found that the vertical spacing of ties significantly impacted the load–deflection behavior. For angle section BFRP rebars, increasing the tie spacing from 50 to 100 mm resulted in a 9.50% increase in strength and a 22.20% increase in axial deflection. In contrast, for plate section BFRP rebars, increasing the tie spacing led to a 14.2% decrease in load and a 5.7% decrease in deflection. Members reinforced with BFRP circular rebars showed a 4% decrease in strength and a 13.4% increase in deflection. A finite element analysis (FEA) model was developed to evaluate the structural efficiency of members reinforced with BFRP sections and to conduct a parametric investigation. The concrete damaged plasticity (CDP) model was employed in the FEA to simulate concrete behavior. The proposed FEA model showed discrepancies of 7.2% for the ultimate load and 5.5% for the equivalent deflection and accurately captured crack patterns. Additionally, to compare with theoretical computations, predictions from three international codes were calculated to highlight differences between experimental measurements, FEA results, and theoretical predictions.

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混凝土受压构件中不同 BFRP 钢筋结构行为的实验和建模
以往的研究主要集中于在混凝土受压构件中使用圆形玄武岩纤维增强聚合物(BFRP)条,而忽视了这些轻质复合材料在不同结构截面中的应用。本研究旨在通过考察使用不同 BFRP 截面加固的方形混凝土抗压构件的结构效率,填补这一研究空白。本研究共浇注了 8 个样品,包括 7 个使用 BFRP 角钢、BFRP 板钢、BFRP 管和 BFRP 圆形钢筋的样品,以及 1 个使用传统钢筋作为主筋、不锈钢钢筋作为侧筋的对照样品。除 BFRP 管受压构件的横截面为 180 mm × 180 mm 且高度相同外,所有样品的横截面均为正方形,宽度为 200 mm,高度为 1200 mm。实验结果表明,破坏模式受加固材料、加固截面和不锈钢箍筋垂直间距的影响。使用钢筋的试样强度最高,达到 1451 kN。使用 BFRP 角钢、BFRP 板钢、BFRP 管和 BFRP 圆形钢筋的试样的极限强度分别降低了 22%、10.3%、49.6% 和 10%。研究发现,拉杆的垂直间距对荷载-挠度行为有很大影响。对于角截面 BFRP 螺纹钢,将拉杆间距从 50 毫米增加到 100 毫米可使强度增加 9.50%,轴向挠度增加 22.20%。相反,对于板截面 BFRP 螺纹钢,增加绑扎间距会导致荷载降低 14.2%,挠度降低 5.7%。使用 BFRP 圆形螺纹钢筋加固的构件强度降低了 4%,挠度增加了 13.4%。为了评估用 BFRP 截面加固的构件的结构效率,并进行参数调查,开发了一个有限元分析(FEA)模型。有限元分析中采用了混凝土损伤塑性(CDP)模型来模拟混凝土行为。所提出的有限元分析模型在极限荷载和等效挠度方面分别显示出 7.2% 和 5.5% 的差异,并准确捕捉到了裂缝模式。此外,为了与理论计算结果进行比较,还计算了三个国际规范的预测值,以突出实验测量结果、有限元分析结果和理论预测值之间的差异。
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来源期刊
Materials and Structures
Materials and Structures 工程技术-材料科学:综合
CiteScore
6.40
自引率
7.90%
发文量
222
审稿时长
5.9 months
期刊介绍: Materials and Structures, the flagship publication of the International Union of Laboratories and Experts in Construction Materials, Systems and Structures (RILEM), provides a unique international and interdisciplinary forum for new research findings on the performance of construction materials. A leader in cutting-edge research, the journal is dedicated to the publication of high quality papers examining the fundamental properties of building materials, their characterization and processing techniques, modeling, standardization of test methods, and the application of research results in building and civil engineering. Materials and Structures also publishes comprehensive reports prepared by the RILEM’s technical committees.
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