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Sectional analysis of the flexural creep of cracked fiber reinforced concrete

机译:裂纹纤维钢筋混凝土弯曲蠕变的剖面分析

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摘要

This paper presents a sectional analysis of cracked fiber reinforced concrete (FRC) under flexural loading. The approach considers three separate loading conditions: monotonic, cyclic, and creep bending loads. Different parts of the approach are experimentally calibrated and validated with tests on polypropylene FRC. In the monotonic regime, numerical optimization is used to find the optimal stress-strain relation of FRC to capture the experimental bending behavior as closely as possible, while satisfying the horizontal force and bending moment equilibrium. To model the cyclic behavior, the constitutive law is extended by introducing a tension-only scalar damage function. The agreement between the predicted and measured response is again very good, and the measured upwards shift of the neutral axis during unloading is predicted as well. Finally, the flexural creep response of a cracked FRC beam is simulated by using uniaxial creep data. The approach predicts the time-dependent crack widening under sustained flexural loading and can be used to check SLS criteria in the design of FRC elements.
机译:本文介绍了弯曲载荷下裂纹纤维钢筋混凝土(FRC)的截面分析。该方法考虑三个单独的装载条件:单调,循环和蠕变弯曲载荷。通过实验校准该方法的不同部分并验证了聚丙烯FRC的测试。在单调方案中,数值优化用于找到FRC的最佳应力 - 应变关系,以尽可能地捕获实验弯曲行为,同时满足水平力和弯曲力矩平衡。为了模拟循环行为,通过引入仅张力标量损伤功能来扩展本构术语。预测和测量响应之间的协议再次非常好,并且还预测了卸载期间中性轴的测量向上偏移。最后,通过使用单轴蠕变数据模拟裂纹FRC光束的弯曲蠕变响应。该方法预测持续弯曲负荷下的时间依赖性裂缝扩展,可用于检查FRC元件设计中的SLS标准。

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