Affiliation:
1. Wuhan University of Technology
2. Eindhoven University of Technology: Technische Universiteit Eindhoven
Abstract
Abstract
To study the flexural behaviors of glass fiber (GFRP) bars and steel bars hybrid reinforced polypropylene fiber concrete (Hybrid-PFRC) beams, one GFRP-PFRC beam, one Steel-PFRC beam, and five Hybrid-PFRC beams were designed and fabricated. The effects of the different area ratio (\({{{A_f}} \mathord{\left/ {\vphantom {{{A_f}} {{A_s}}}} \right. \kern-0pt} {{A_s}}}\)) of GFRP to steel bars and polypropylene fiber (PP) volume fraction on the flexural behaviors of Hybrid-PFRC beams were investigated through experiments. The research results indicated that the Hybrid-PFRC beams’ load-deflection curves exhibited trilinear characteristics with specimen cracking and steel bars yielding as turning points. As \({{{A_f}} \mathord{\left/ {\vphantom {{{A_f}} {{A_s}}}} \right. \kern-0pt} {{A_s}}}\) increased, the flexural bearing capacity of Hybrid-PFRC beams increased, the deflection decreased, the crack spacing and width decreased, and the ductility decreased. The addition of PP did not significantly improve the flexural bearing capacity and cracking moment of Hybrid-PFRC beams, but it greatly enhanced the ductility of the beam. Moreover, PP had good advantages in controlling crack propagation in the beam. The article also used the theoretical model to predict and analyze the flexural behaviors of Hybrid-PFRC beams. When predicting the maximum crack width of Hybrid-PFRC beams, it was recommended to have a bonding coefficient kb of 2.2.
Publisher
Research Square Platform LLC