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循环荷载作用下连续纤维增强塑料筋与离散钢纤维增强混凝土梁的抗弯性能

Flexural Performance of Concrete Beams Reinforced with Continuous FRP Bars and Discrete Steel Fibers under Cyclic Loads.

作者信息

Zhu Haitang, Li Chuanchuan, Cheng Shengzhao, Yuan Jiansong

机构信息

College of Civil Engineering, Henan University of Engineering, Zhengzhou 451191, China.

School of Water Conservancy Engineering, Zhengzhou University, Zhengzhou 450001, China.

出版信息

Polymers (Basel). 2022 Mar 30;14(7):1399. doi: 10.3390/polym14071399.

Abstract

This research investigated the flexural behavior of high-strength concrete beams reinforced with continuous basalt fiber-reinforced polymer (BFRP) bars and discrete steel fibers. Five concrete beams with the dimensions of 150 × 300 × 2100 mm were constructed and tested to failure under four-point bending cyclic loading. The specimens consisted of four BFRP-reinforced concrete beams with various reinforcement ratios (), namely, 0.56%, 0.77%, 1.15%, and 1.65%, and one conventional steel-reinforced concrete beam for comparison purposes. The cracking behavior, failure modes, load-deflection behavior, residual deformation, and stiffness degradation of the beams were studied. Additionally, a deformation-based approach was used to analyze the deformability of the beams. The results show that an increase in the effectively restrained the crack widths, deflections, and residual deformation while also enhancing the flexural bearing capacity of the beams. In comparison to the first displacement cycle, the bearing capacity dropped by 10% on average in the third cycle. The stiffness exhibited a fast to slow degradation trend until failure. The residual stiffnesses were higher in beams with a higher . The over-reinforced beams had superior deformability than the under-reinforced beams, according to the deformability factors.

摘要

本研究调查了用连续玄武岩纤维增强聚合物(BFRP)筋和离散钢纤维增强的高强混凝土梁的抗弯性能。制作了5根尺寸为150×300×2100mm的混凝土梁,并在四点弯曲循环加载下进行试验直至破坏。试件包括4根不同配筋率(分别为0.56%、0.77%、1.15%和1.65%)的BFRP增强混凝土梁,以及1根用于对比的传统钢筋混凝土梁。研究了梁的开裂行为、破坏模式、荷载-挠度行为、残余变形和刚度退化。此外,采用基于变形的方法分析梁的变形能力。结果表明,配筋率的增加有效地抑制了裂缝宽度、挠度和残余变形,同时提高了梁的抗弯承载力。与第一个位移循环相比,第三个循环中承载力平均下降了10%。刚度呈现出从快到慢的退化趋势直至破坏。配筋率较高的梁的残余刚度更高。根据变形能力系数,超筋梁的变形能力优于少筋梁。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/58ec/9003300/3568c9b90558/polymers-14-01399-g001.jpg

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