MINIMUM REINFORCEMENT REQUIRED FOR CONCRETE BEAMS WITH HYBRID BARS AND HYBRID FIBERS-NUMERICAL INVESTIGATION

A. E. Ewis, Mohamed H. Makhlouf, Ahmed H. Abdel-Karim, Gamal I. Khalil
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Abstract

The intent of this research is to establish a design procedure and formulate equations for a novel construction material. Adhering to design codes, one crucial requirement is to verify the minimum reinforcement area to ensure the ductile failure of RC members and mitigate crack formation resulting from shrinkage. Within this study, the authors explore the minimum reinforcement of beams with both hybrid bars and hybrid fibers through the utilization of numerical simulations. To analyze the flexural behavior of low reinforcement ratio members, fifteen RC beams are modeled and subjected to four-point loading configurations. The parameters under scrutiny encompass the hybrid reinforcement ratios ranging from 0.0% to 0.50%, as well as the beam depth. The outcomes of the numerical analysis, obtained through the Nonlinear Finite Element Analysis (NLFEA) method, are presented in light of maximum deflection, and cracking and peak capacity. Two distinct approaches are employed to explore the minimum reinforcement ratios: (a) the cracking moment approach and (b) the Ductility Index (DI) approach. Comparative evaluations between these approaches demonstrate that the incorporation of hybrid fibers allows for a reduction in the minimum reinforcement ratio. Specifically, when implementing the DI approach, the minimum reinforcement ratio decreases to 0.081% instead of 0.18% for RC beams. Notably, the DI approach exhibits superior agreement with the NLFEA results in comparison to the cracking moment approach.
使用混合钢筋和混合纤维的混凝土梁所需的最小配筋--数值研究
这项研究的目的是为一种新型建筑材料制定设计程序和公式。根据设计规范,一个关键要求是验证最小配筋面积,以确保 RC 构件的延性破坏,并减少收缩导致的裂缝形成。在本研究中,作者通过数值模拟,探讨了使用混合钢筋和混合纤维的梁的最小配筋面积。为了分析低配筋率构件的抗弯行为,作者对 15 根 RC 梁进行了建模,并对其进行了四点加载配置。研究参数包括 0.0% 至 0.50% 的混合配筋率以及梁深。通过非线性有限元分析 (NLFEA) 方法获得的数值分析结果显示了最大挠度、开裂和峰值承载力。在探讨最小配筋率时,采用了两种不同的方法:(a) 开裂力矩法和 (b) 延展性指数 (DI) 法。这两种方法的比较评估表明,采用混合纤维可以降低最小配筋率。具体来说,采用延性指数法时,最小配筋率从 RC 梁的 0.18% 降至 0.081%。值得注意的是,与开裂力矩法相比,DI 法与 NLFEA 结果的一致性更好。
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