Flexural strengthening of reinforced concrete beams using geopolymer-bonded small-diameter CFRP bars

Kai-Di Peng, Bo-Tao Huang*, Ling-Yu Xu, Ruo-Lin Hu, Jian-Guo Dai*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

95 Citations (Scopus)

Abstract

In this study, the strengthening system for reinforced concrete (RC) members using geopolymer-bonded small-diameter carbon fiber-reinforced polymer (CFRP) bars was proposed and investigated for the first time. An experimental program was conducted to evaluate the efficiency of the FRP-reinforced geopolymer matrix (FRGM) system for the flexural strengthening of RC beams. A total of 11 RC beams were tested, including ten strengthened beams and one reference beam. The influences of three major factors on the strengthening performance were investigated, including the bonding method (geopolymer vs. epoxy), fiber reinforcement in the matrix (plain geopolymer vs. steel or polyvinyl alcohol fiber-reinforced geopolymer), and the number/diameter of CFRP bars (7Φ3, 2Φ6, and 2Φ10). It was found that the strengthened beams showed significantly higher stiffnesses, yield loads, and ultimate loads than the reference beam and the geopolymer-bonded FRGM layer showed similar strengthening efficiency with the epoxy-bonded FRGM layer. For the FRGM strengthening system, the use of short fibers in the geopolymer matrix further improved the crack control capacity. An analytical investigation was conducted to predict the load capacities of the strengthened beams. Finally, a practical application case was presented to demonstrate the feasibility of this method in strengthening the concrete superstructure at The Port of Zhanjiang (Guangdong, China). The findings lay the groundwork for using this FRGM system to repair reinforced concrete structures. © 2022 Elsevier Ltd
Original languageEnglish
Article number113992
JournalEngineering Structures
Volume256
Online published17 Feb 2022
DOIs
Publication statusPublished - 1 Apr 2022
Externally publishedYes

Funding

This study was supported by Chinese Guangdong Province R&D Plan for Key Areas (Project Code: 2019B111107002) and Hong Kong-Guangzhou Technology and Innovation Partnership Program (Project Code 201807010055). Kai-Di Peng and Ling-Yu Xu acknowledge the Ph.D. studentship offered by The Hong Kong Polytechnic University. Bo-Tao Huang acknowledges the support of the Hong Kong Innovation and Technology Fund (Project Code: ITS/077/18FX) through the Research Talent Hub. This study was supported by Chinese Guangdong Province R&D Plan for Key Areas (Project Code: 2019B111107002) and Hong Kong-Guangzhou Technology and Innovation Partnership Program (Project Code 201807010055). Kai-Di Peng and Ling-Yu Xu acknowledge the Ph.D. studentship offered by The Hong Kong Polytechnic University. Bo-Tao Huang acknowledges the support of the Hong Kong Innovation and Technology Fund (Project Code: ITS/077/18FX) through the Research Talent Hub.

Research Keywords

  • Alkali-activated fly ash/slag
  • Carbon fiber-reinforced polymer (CFRP)
  • Geopolymer
  • Practical application
  • Reinforced concrete
  • Small-diameter bars

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