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BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (7): 2275-2289.DOI: 10.16552/j.cnki.issn1001-1625.2025.1236

• Cement and Concrete • Previous Articles     Next Articles

Effects of Spalling Area and Interfacial Shear Stress on Fiber Pullout Behavior in Ultra-High Performance Concrete

XIANG Gucong1(), NIU Yanfei1(), LIN Xihua2, YUAN Zong2, GUO Yanlong3, YUAN Lijun3   

  1. 1.School of Civil Engineering and Transportation,Guangzhou University,Guangzhou 510006,China
    2.China West Construction Group Fourth (Guangdong) Co.,Ltd.,Guangzhou 510800,China
    3.The Third Construction Co.,Ltd. of China Construction Third Engineering BUREAU,Wuhan 430074,China
  • Received:2025-12-10 Revised:2026-01-20 Online:2026-07-15 Published:2026-08-13
  • Contact: NIU Yanfei

Abstract:

To investigate the influence of the spalling zone and interfacial shear stress on the pullout behavior of steel fibers in ultra-high performance concrete (UHPC), the pullout behavior of steel fibers at different curing ages (7, 14, 28 d) and embedment angles (0°, 30°, 45°, 60°) was studied. The degree of matrix spalling was evaluated, and the pullout behavior was analyzed using a micromechanical model. The results show that the pullout load and average bond strength are maximized at 45° for different embedment angles, while the maximum pullout energy occurrs at 60°. The spalling area of the matrix is less affected by the curing age but significantly influenced by the embedment angle, with the maximum spalling area occurring at 60°. An equation is established to describe the relationship between the spalling area and the embedment angle. The degradation of interfacial shear stress determines the trend of the descending branch (debonding stage), with the shape changing from concave to convex and the curvature of the convex shape gradually increasing with different curing ages and embedment angles. Extending the value of shape coefficient η from 0.10 to -0.05 and introducing an interfacial enhancement factor b with a range of values from -8 to -2 can effectively evaluate the change of the interfacial shear stress, the results of the numerical analysis are in good agreement with experimental results.

Key words: ultra-high performance concrete (UHPC), embedment angle, pullout behavior, matrix spalling, interfacial shear stress, micromechanical model

CLC Number: