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BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (7): 2260-2274.DOI: 10.16552/j.cnki.issn1001-1625.2025.1263

• Cement and Concrete • Previous Articles     Next Articles

Experimental Study on Bond Performance Between Steel-PVA Hybrid Fiber Reinforced Concrete and Steel Bars under Freeze-Thaw Cycles

XU Chengxiang1,2(), WANG Rui1, XU Qiqi3, YANG Zhao1,2   

  1. 1.School of Urban Construction,Wuhan University of Science and Technology,Wuhan 430065,China
    2.Hubei Provincial Engineering Research Center of Urban Regeneration,Wuhan 430065,China
    3.School of Urban Construction and Safety Engineering,Hubei University of Education,Wuhan 430205,China
  • Received:2025-12-16 Revised:2026-03-20 Online:2026-07-15 Published:2026-08-13

Abstract:

In order to investigate the bond performance between steel-polyvinyl alcohol hybrid fiber reinforced concrete (S-PVA HFRC) and steel bars under freeze-thaw cycles, 75 S-PVA HFRC specimens were designed and fabricated based on orthogonal test factors, namely steel fiber volume fraction, PVA fiber volume fraction, and mineral powder replacement rate. These specimens were subjected to freeze-thaw cycles with different numbers of cycles, followed by central pull-out tests under monotonic loading. The failure modes, bond strength, interfacial bond stiffness and toughness of S-PVA HFRC specimens under different test parameters were studied, and the influence of each parameter on the bond-slip mechanical behavior of S-PVA HFRC under freeze-thaw conditions was analyzed. The results show that all S-PVA HFRC specimens exhibit steel bar pull-out failure; the bond strength of S-PVA HFRC specimens decreases with the increase in the number of freeze-thaw cycles. After an identical number of freeze-thaw cycles, the bond strength and peak slip of S-PVA HFRC specimens are higher than those of fiber-free plain concrete specimens. After 50 freeze-thaw cycles, the bond strength of S-PVA HFRC specimens exhibit the most significant enhancement. Compared with fiber-free plain concrete specimens, the S-PVA HFRC specimens exhibit the greatest increase of 53.75% when the volume fraction of steel fiber is 1.3%, the volume fraction of PVA fiber is 0.2%, and the replacement rate of mineral powder is 15% (mass fraction). The incorporation of hybrid fibers effectively mitigates the adverse effect of freeze-thaw damage on the interfacial bond stiffness and significantly improves the energy dissipation capacity of the specimens. A bond-slip model for the interface between S-PVA HFRC and steel bars under freeze-thaw conditions is proposed, which shows good agreement with the experimental results.

Key words: fiber reinforced concrete, steel fiber, PVA fiber, mineral powder, freeze-thaw cycle, pull-out test, bond-slip model

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