Tang Yu, Lu Xiaowan, Wei Yang, Hou Shitong
College of Civil Engineering, Nanjing Forestry University, Nanjing 210037, China.
College of Civil Engineering, Southeast University, Nanjing 210096, China.
Polymers (Basel). 2022 Nov 5;14(21):4750. doi: 10.3390/polym14214750.
Modern fiber-reinforced polymer (FRP)-reinforced concrete structures are excepted to achieve superior mechanical performances and long service lives, even in harsh service environments. Hybrid FRP material could potentially meet this goal with its relatively high strength-to-cost ratio. This paper presents an experimental study on the compressive behavior of concrete cylinders confined by a novel hybrid fiber-reinforced polymer (HFRP) spiral. Nine types, forming a total of 27 confined or non-confined concrete cylinders, were subjected to an axial compressive-loading test. Concrete cylinders confined either with different spiral types or different spiral spacings were comparatively studied in the experiment. The results showed that the compressive failure modes and the stress-strain relationships of the HFRP-spiral-confined cylinders were similar to those of basalt-fiber-reinforced polymer (BFRP)-spiral-confined cylinders. The actual fracture strain of the HFRP spiral (tested as a single rod) was larger than that of the corresponding carbon-fiber-reinforced polymer (CFRP) bar, indicating the advantageous composite effect of the HFRP spiral. The maximum strain of the HFRP spiral reached over 70% of its ultimate strain in the cylinders compared to the BFRP spiral, which only reached 50%. Most of the existing models overestimated the ultimate stress and strain of the HFRP-spiral-confined cylinders. Wu's model was proved to be the most accurate model, yet proper modification was required for predicting the peak strain of the HFRP-confined cylinders.
即使在恶劣的使用环境中,现代纤维增强聚合物(FRP)增强混凝土结构也有望实现卓越的力学性能和较长的使用寿命。混杂FRP材料因其相对较高的强度成本比,有可能实现这一目标。本文介绍了一项关于新型混杂纤维增强聚合物(HFRP)螺旋箍筋约束混凝土圆柱体抗压性能的试验研究。共制作了9种类型、总计27个约束或非约束混凝土圆柱体,并对其进行了轴向压缩加载试验。试验中对采用不同螺旋箍筋类型或不同螺旋箍筋间距约束的混凝土圆柱体进行了对比研究。结果表明,HFRP螺旋箍筋约束圆柱体的受压破坏模式和应力-应变关系与玄武岩纤维增强聚合物(BFRP)螺旋箍筋约束圆柱体相似。HFRP螺旋箍筋(作为单根杆材测试)的实际断裂应变大于相应的碳纤维增强聚合物(CFRP)筋,表明HFRP螺旋箍筋具有有利的复合效应。与仅达到50%的BFRP螺旋箍筋相比,HFRP螺旋箍筋在圆柱体中的最大应变达到其极限应变的70%以上。大多数现有模型高估了HFRP螺旋箍筋约束圆柱体的极限应力和应变。Wu模型被证明是最准确的模型,但在预测HFRP约束圆柱体的峰值应变时需要进行适当修正。