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Analysis of Residual Flexural Stiffness of Steel Fiber-Reinforced Concrete Beams with Steel Reinforcement

机译:钢纤维加固的钢纤维混凝土梁的残余抗弯刚度分析

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摘要

This paper investigates the ability of steel fibers to enhance the short-term behavior and flexural performance of realistic steel fiber-reinforced concrete (SFRC) structural members with steel reinforcing bars and stirrups using nonlinear 3D finite element (FE) analysis. Test results of 17 large-scale beam specimens tested under monotonic flexural four-point loading from the literature are used as an experimental database to validate the developed nonlinear 3D FE analysis and to study the contributions of steel fibers on the initial stiffness, strength, deformation capacity, cracking behavior, and residual stress. The examined SFRC beams include various ratios of longitudinal reinforcement (0.3%, 0.6%, and 1.0%) and steel fiber volume fractions (from 0.3 to 1.5%). The proposed FE analysis employs the nonlinearities of the materials with new and established constitutive relationships for the SFRC under compression and tension based on experimental data. Especially for the tensional response of SFRC, an efficient smeared crack approach is proposed that utilizes the fracture properties of the material utilizing special stress versus crack width relations with tension softening for the post-cracking SFRC tensile response instead of stress–strain laws. The post-cracking tensile behavior of the SFRC near the reinforcing bars is modeled by a tension stiffening model that considers the SFRC fracture properties, the steel fiber interaction in cracked concrete, and the bond behavior of steel bars. The model validation is carried out comparing the computed key overall and local responses and responses measured in the tests. Extensive comparisons between numerical and experimental results reveal that a reliable and computationally-efficient model captures well the key aspects of the response, such as the SFRC tension softening, the tension stiffening effect, the bending moment–curvature envelope, and the favorable contribution of the steel fibers on the residual response. The results of this study reveal the favorable influence of steel fibers on the flexural behavior, the cracking performance, and the post-cracking residual stress.
机译:本文使用非线性3D有限元(FE)分析方法研究钢纤维增强具有钢筋和箍筋的现实钢纤维增强混凝土(SFRC)结构构件的短期性能和抗弯性能的能力。将文献中17个在单调弯曲四点荷载下测试的大型梁样本的测试结果用作实验数据库,以验证已开发的非线性3D FE分析并研究钢纤维对初始刚度,强度,变形的贡献容量,开裂行为和残余应力。所检查的SFRC梁包括各种比例的纵向增强(0.3%,0.6%和1.0%)和钢纤维体积分数(从0.3%至1.5%)。所提出的有限元分析基于实验数据,利用了具有新的和已建立的本构关系的SFRC材料在压缩和拉伸下的非线性。尤其是对于SFRC的拉力响应,提出了一种有效的涂污裂纹方法,该方法利用材料的断裂特性,利用特殊应力与裂纹宽度的关系以及拉力软化来实现SFRC开裂后的拉应力,而不是应力-应变定律。 SFRC在钢筋附近的开裂后拉伸行为是通过考虑了SFRC断裂特性,开裂混凝土中的钢纤维相互作用以及钢筋的粘结行为的抗拉刚度模型来建模的。通过比较计算出的关键总体响应和局部响应以及在测试中测得的响应,进行模型验证。数值和实验结果之间的广泛比较表明,可靠且计算效率高的模型很好地捕捉了响应的关键方面,例如SFRC拉伸软化,拉伸刚性效应,弯矩-曲率包络以及弯矩的有利贡献。钢纤维对残留的反应。这项研究的结果揭示了钢纤维对挠曲行为,开裂性能和开裂后残余应力的有利影响。

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