Yuan Jiansong, Gao Danying, Zhang Yin, Zhu Haitang
College of Civil Engineering, Henan University of Engineering, Zhengzhou 451191, China.
School of Water Conservancy Engineering, Zhengzhou University, Zhengzhou 450001, China.
Polymers (Basel). 2022 Jan 29;14(3):551. doi: 10.3390/polym14030551.
The ductile behaviour of composite beams reinforced with glass fibre-reinforced polymer (GFRP) pultruded rectangular tubes was investigated in this paper. The composite beams were reinforced with GFRP tubes and different steel products, aiming to improve their ductility by using steel products. The main parameters were the types of the steel reinforcement, namely rebars and steel angles. The flexural behaviour of four beam specimens was tested by using a four-point bending test. The experimental results show that the yield load of the specimens was determined by the steel products and the ultimate load was controlled by the GFRP tubes. Two ductility methods (displacement ductility and energy ductility) were used to evaluate the change of the ductility. Both the methods confirmed that the ductility of the composite beam was improved in varying degrees by using rebars and steel angles. Moreover, the analysis shows that improving the yield load or decreasing the ultimate load of the composite beams contributed to the improvement of the ductility.
本文研究了玻璃纤维增强聚合物(GFRP)拉挤矩形管增强组合梁的延性性能。组合梁采用GFRP管和不同的钢材产品进行增强,旨在通过使用钢材产品来提高其延性。主要参数是钢筋的类型,即钢筋和角钢。通过四点弯曲试验对四个梁试件的抗弯性能进行了测试。试验结果表明,试件的屈服荷载由钢材产品决定,极限荷载由GFRP管控制。采用两种延性方法(位移延性和能量延性)来评估延性的变化。两种方法均证实,通过使用钢筋和角钢,组合梁的延性得到了不同程度的提高。此外,分析表明,提高组合梁的屈服荷载或降低其极限荷载有助于延性的提高。