Zhou Yingwu, Hu Jingjing, Li Mali, Sui Lili, Xing Feng
Guangdong Provincial Key Laboratory of Durability for Marine Civil Engineering, Shenzhen University, Shenzhen 518060, China.
Polymers (Basel). 2016 Oct 21;8(10):375. doi: 10.3390/polym8100375.
The in situ application of recycled aggregate concrete (RAC) is of great significance in environmental protection and construction resources sustainability. However, it has been limited to nonstructural purposes due to its poor mechanical performance. External confinement using steel tubes and fiber-reinforced polymer (FRP) can significantly improve the mechanical performance of RAC and thus the first-ever study on the axial compressive behavior of glass FRP (GFRP)-confined RAC was recently reported. To have a full understanding of FRP-confined RAC, this paper has extended the type of FRP and presents a systematic experimental study on the axial compressive performance of carbon FRP (CFRP)-confined RAC. The mechanical properties of CFRP-confined RAC from the perspective of the failure mode, ultimate strength and strain, and stress⁻strain relationship responses were analyzed. Integrated with existing experimental data of FRP-confined RAC, the paper compiles a database for the mechanical properties of FRP-confined RAC. Based on the database, the effects of FRP type (i.e., GFRP and CFRP) and the replacement ratio of recycled coarse aggregate were investigated. The results indicated that the stress⁻stain behavior of FRP-confined RAC depended heavily on the unconfined concrete strength and the FRP confining pressure instead of the replacement ratio. Therefore, this study adopted eleven high-performance ultimate strength and strain models developed for FRP-confined normal aggregate concrete (NAC) to predict the mechanical properties of FRP-confined RAC. All the predictions had good agreement with the test results, which further confirmed similar roles played by FRP confinement in improving the mechanical properties of RAC and improving those of NAC. On this basis, this paper finally recommended a stress⁻strain relationship model for FRP-confined RAC.
再生骨料混凝土(RAC)的原位应用在环境保护和建筑资源可持续性方面具有重要意义。然而,由于其力学性能较差,它一直仅限于非结构用途。使用钢管和纤维增强聚合物(FRP)进行外部约束可以显著提高RAC的力学性能,因此最近有报道首次对玻璃纤维增强聚合物(GFRP)约束RAC的轴向抗压性能进行了研究。为了全面了解FRP约束RAC,本文扩展了FRP的类型,并对碳纤维增强聚合物(CFRP)约束RAC的轴向抗压性能进行了系统的试验研究。从破坏模式、极限强度和应变以及应力-应变关系响应的角度分析了CFRP约束RAC的力学性能。结合FRP约束RAC的现有试验数据,编制了FRP约束RAC力学性能数据库。基于该数据库,研究了FRP类型(即GFRP和CFRP)和再生粗骨料替代率的影响。结果表明,FRP约束RAC的应力-应变行为在很大程度上取决于无约束混凝土强度和FRP约束压力,而不是替代率。因此,本研究采用了为FRP约束普通骨料混凝土(NAC)开发的11个高性能极限强度和应变模型来预测FRP约束RAC的力学性能。所有预测结果与试验结果吻合良好,进一步证实了FRP约束在改善RAC力学性能和改善NAC力学性能方面发挥的类似作用。在此基础上,本文最终推荐了一个FRP约束RAC的应力-应变关系模型。