Post-yielding deflection calculation of flexural hybrid reinforced concrete with a combination of fiber reinforced polymer and steel bars

Shui Liu, Xin Wang, L. Ding, Bin Zhong, Huang Huang, Zhishen Wu
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Abstract

Flexural hybrid reinforced concrete members with fiber reinforced polymer (FRP) and steel bars (hybrid-RC) exhibit significant post-yielding stiffness due to the contribution of tensile FRP bars. To predict the post-yielding deflection of hybrid-RC members, the Bischoff’s model for effective moment of inertia is extended into the post-yielding stage. Based on this extended model, expressions for equivalent moment of inertia, which consider the variation in stiffness along the member span with and without tension stiffening, are proposed. Obtaining close-formed solutions for the yielding moment of hybrid-RC cross sections, a critical parameter for determining the post-yielding effective moment of inertia, proves challenging due to the unknown state of compressive concrete. Therefore, a simplified equation to determine the yielding moment are proposed by regression of data derived from numerical sectional analyses. An experimental database including 92 hybrid-RC beams collected from published literature is established. The performance of the proposed equation for the yielding moment and expressions for the equivalent moment of inertia are evaluated using the database. The results indicate that the proposed equation can effectively predict the yielding moments of hybrid-RC beams. Furthermore, using a constant effective moment for predicting the post-yielding deflection is effective for the specimens with relatively high reinforcement ratios. The benefit of considering the stiffness variation along the member span is evident when dealing with lightly-reinforced concrete members.
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纤维增强聚合物与钢筋组合的抗弯混合加固混凝土的屈服后挠度计算
带有纤维增强聚合物(FRP)和钢筋的柔性混合钢筋混凝土构件(混合-RC)由于拉伸 FRP 钢筋的作用而表现出显著的屈服后刚度。为了预测混合-RC 构件的屈服后挠度,Bischoff 的有效惯性矩模型被扩展到屈服后阶段。在此扩展模型的基础上,提出了等效惯性矩表达式,该表达式考虑了有张力加劲和无张力加劲时构件跨度上的刚度变化。混合 RC 截面的屈服力矩是确定屈服后有效惯性力矩的关键参数,由于受压混凝土的未知状态,要获得该截面屈服力矩的近似解具有挑战性。因此,通过对截面数值分析得出的数据进行回归,提出了确定屈服力矩的简化方程。我们建立了一个实验数据库,其中包括从已发表文献中收集的 92 个混合-RC 梁。利用该数据库对所提出的屈服力矩方程和等效惯性矩表达式的性能进行了评估。结果表明,所提出的方程可以有效预测混合-RC 梁的屈服力矩。此外,使用恒定有效力矩预测屈服后挠度对于配筋率相对较高的试样也很有效。在处理轻筋混凝土构件时,考虑构件跨度上的刚度变化的好处显而易见。
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