Bond and flexural performance of basalt fiber–reinforced polymer bar–reinforced seawater sea sand glass aggregate concrete beams

Author:

Dong Zhiqiang12,Wu Gang12,Zhu Hong12,Wei Yang3,Zhao Xiao-Ling4,Shao Xinxing1

Affiliation:

1. Key Laboratory of Concrete and Prestressed Concrete Structures of Ministry of Education, Southeast University, Nanjing, China

2. National and Local Joint Engineering Research Center for Intelligent Construction and Maintenance, Southeast University, Nanjing, China

3. College of Civil Engineering, Nanjing Forestry University, Nanjing, China

4. Dept. of Civil and Environmental Engineering, UNSW, Sydney, Australia

Abstract

This article proposes a new type of basalt fiber–reinforced polymer (BFRP) bar–reinforced seawater sea sand glass aggregate concrete (SSGC) beam with broad application prospects in ocean engineering. Crushed tempered glasses were utilized as coarse aggregates in the concrete mixture to realize the efficient and harmless recycling of waste glass. First, the bond behaviors between the BFRP bars and SSGC with different glass aggregate replacement ratios were investigated. Then, four-point bending tests were conducted to investigate the flexural performance of the SSGC beams completely reinforced with BFRP bars. Based on this, the tested flexural strengths were compared with the calculated strengths to evaluate whether the existing specifications were still applicable to the design of the BFRP bar–reinforced SSGC beams. Test results showed that although the compressive strength of the SSGC gradually decreased with increased glass aggregate content, the bond performance between BFRP bars and SSGC did not follow the same degradation pattern. There were no obvious differences in the form of the bond–slip curves between BFRP bars and different types of SSGC. With increasing glass aggregate content, the ultimate bearing capacity and energy consumption of BFRP bar–reinforced SSGC beams decreased. All calculated ultimate flexural capacities were higher than the experimental values, which shows that the application of existing specifications to BFRP bar–reinforced SSGC beams needs to be studied further.

Funder

“Zhishan” Scholars Programs of Southeast University

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

Australian Research Council

Publisher

SAGE Publications

Subject

Building and Construction,Civil and Structural Engineering

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