海水浸泡与持续荷载耦合作用下GFRP筋的长期锚固长度

Long-term development length of GFRP bar in concrete under coupling effect of seawater immersion and sustained load

  • 摘要: 为了获得海水浸泡与持续荷载耦合作用下玻璃纤维增强树脂复合材料(Glass fiber-reinforced polymer,GFRP)筋的长期锚固长度计算公式,首先搜集了81个拔出破坏的GFRP筋混凝土梁式试件的数据,提出了GFRP筋的短期锚固长度计算公式。然后测试了在海水浸泡与持续荷载耦合作用下GFRP筋拉拔试件的粘结强度,结合强度预测理论,得到了粘结强度折减系数。采用粘结强度折减系数及基于他人试验获得的GFRP筋抗拉强度折减系数修正了短期锚固长度计算公式,最终建立了海水浸泡与持续荷载耦合作用下适用于拔出破坏的GFRP筋长期锚固长度计算公式。研究结果表明:GFRP筋的长期锚固长度变化主要是由粘结强度和抗拉强度的减小造成的。经过海水浸泡与持续荷载耦合作用50年后,当环境的年平均温度为8℃、13℃、18℃、23℃和28℃时,GFRP筋的粘结强度折减系数分别为0.60、0.60、0.56、0.56和0.52。相应的GFRP筋抗拉强度折减系数分别为0.63、0.56、0.49、0.42和0.35。

     

    Abstract: To obtain the long-term development length equation of the glass fiber-reinforced polymer (GFRP) bar under the coupling effect of seawater immersion and sustained load, a short-term development length equation was proposed first according to the collected 81 GFRP bar-reinforced concrete beam with pullout failure. Then, the bond strength of the pullout specimen under the coupling effect of seawater immersion and sustained load was tested, and the bond strength reduction factor was obtained with a prediction theory. Based on the bar’s bond strength reduction factor and the tensile strength reduction factor deduced from others’ tests, the short-term development length equation was modified. Finally, the long-term development length equation of the GFRP bar for the beam with pullout failure was established. The results show that the change in the long-term development length of the GFRP bar is mainly caused by the reductions in bond strength and tensile strength. After the coupling effect of seawater immersion and sustained load for 50 years, when the annual average temperatures of the environment are 8℃, 13℃, 18℃, 23℃ and 28℃, the bar’s bond strength retentions are 0.60, 0.60, 0.56, 0.56 and 0.52, respectively. The corresponding tensile strength retentions of the GFRP bar are 0.63, 0.56, 0.49, 0.42 and 0.35, respectively.

     

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