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Fatigue life prediction of fiber reinforced concrete under flexural load

机译:纤维混凝土在弯曲载荷下的疲劳寿命预测

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摘要

This paper presents a semi-analytical method to predict fatigue behavior in flexure of fiber reinforced concrete (FRC) based on the equilibrium of force in the critical cracked section. The model relies on the cyclic bridging law, the so-called stress-crack width relationship under cyclic tensile load as the fundamental constitutive relationship in tension. The numerical results in terms of fatigue crack length and crack mouth opening displacement as a function of load cycles are obtained for given maximum and minimum flexure load levels. Good correlation between experiments and the model predictions is found. Furthermore, the minimum load effect on the fatigue life of beams under bending load, which has been studied experimentally in the past, is simulated and a mechanism-based explanation is provided in theory. This basic analysis leads to the concussion the fatigue performance in flexure of FRC materials is strongly influenced by the cyclic stress-crack width relationship within the fracture Zeon. The optimum fatigue behavior of FRC structures in bending can be achieved by optimizing the bond properties of aggregate-matrix and fiber matrix interfaces.
机译:本文提出了一种基于半裂纹临界截面力平衡的半分析方法来预测纤维增强混凝土(FRC)的弯曲疲劳性能。该模型依赖于循环桥定律,即循环拉伸载荷下的所谓应力-裂纹宽度关系,作为拉伸的基本本构关系。对于给定的最大和最小挠曲载荷水平,获得了根据疲劳裂纹长度和裂纹嘴张开位移作为载荷循环函数的数值结果。发现实验与模型预测之间具有良好的相关性。此外,模拟了过去已通过实验研究的最小载荷对梁在弯曲载荷下疲劳寿命的影响,并在理论上提供了基于机理的解释。这种基础分析导致脑震荡:FRC材料在弯曲时的疲劳性能受到断裂吉翁内部循环应力-裂纹宽度关系的强烈影响。通过优化骨料基体和纤维基体界面的粘结性能,可以实现FRC结构在弯曲时的最佳疲劳性能。

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