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Publishing Language: Chinese

Bond Performance Between Prestressed GFRP Bars and Seawater Sea-Sand Concrete

Xiaolong WANG1Huaishuai SHANG1Hao SONG2( )Zhaohu LU1Yiliang PAN1
School of Civil Engineering, Qingdao University of Technology, Qingdao 266525, Shandong, China
Shandong Provincial Construction Quality and Safety Center, Jinan 250011, Shandong, China
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Abstract

To address the shortage of river sand resources and the corrosion of steel reinforcement in coastal regions, this paper systematically investigates the bond performance between prestressed glass fiber-reinforced polymer (GFRP) bars and glass fiber-steel composite bars (GSFCB) and seawater sea-sand concrete (SWSSC) through central pull-out tests. A total of 24 sets of specimens were designed, focusing on the effects of prestressing level, bar diameter, anchorage length, bar type, and concrete type on bond strength, bond-slip curves, and failure modes. A bond stress-slip constitutive model applicable to prestressed GFRP bars was subsequently established. The results indicate that GFRP bar specimens predominantly exhibit pull-out failure, whereas GSFCB bar specimens tend to undergo brittle bar rupture or concrete splitting failure due to excessive interfacial bond strength. The prestressing level has a significant dual effect on bond performance: compared to non-prestressed specimens, a prestress level of 0.3 times the ultimate tensile strength reduces the bond strength by 42.1%~64.0%, while a prestress of 0.6 times increases it by 3.8%~17.4%. Bond strength decreases with increasing anchorage length and bar diameter; specimens with an anchorage length of 5 times the bar diameter exhibit an average bond strength 15%~25% higher than those with 7 times the diameter, and bars with an 8 mm diameter show an average bond strength 62.1%~107.4% higher than those with a 12 mm diameter. The use of seawater sea-sand instead of ordinary concrete significantly enhances bond strength. At 7 days of curing, SWSSC specimens exhibit bond strengths 28%~33% higher than those of ordinary concrete, and at 28 days, this advantage remains at 11%~14%. The bond strength of GSFCB is substantially higher than that of GFRP bars, exceeding by 122.3%, 87.7%, and 65.7% at anchorage lengths of 5, 7, and 9 times the bar diameter, respectively. The piecewise bond-slip constitutive model, based on experimental data, shows good agreement with the test curves, providing a theoretical basis for the nonlinear analysis and design of prestressed FRP bar-reinforced SWSSC structures.

CLC number: TU528 Article ID: 1000-565X(2026)05-0157-10

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Journal of South China University of Technology (Natural Science Edition)
Pages 157-166

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Cite this article:
WANG X, SHANG H, SONG H, et al. Bond Performance Between Prestressed GFRP Bars and Seawater Sea-Sand Concrete. Journal of South China University of Technology (Natural Science Edition), 2026, 54(5): 157-166. https://doi.org/10.12141/j.issn.1000-565X.250176

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Received: 16 June 2025
Published: 01 May 2026
© Journal of South China University of Technology(Natural Science Edition)