Failure Evaluation of Reinforced Concrete Beams Using Damage Mechanics and Classical Laminate Theory

J. M. F. Lima, Geraldo José Belmonte dos Santos, P. L. Lima
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Abstract

The prediction of the behavior of reinforced concrete beams under bending is essential for the perfect design of these elements. Usually, the classical models do not incorporate the physical nonlinear behavior of concrete under tension and compression, which can underestimate the deformations in the structural element under short and long-term loads. In the present work, a variational formulation based on the Finite Element Method is presented to predict the flexural behavior of reinforced concrete beams. The physical nonlinearity due cracking of concrete is considered by utilization of damage concept in the definition of constitutive models, and the lamination theory it is used in discretization of section cross of beams. In the layered approach, the reinforced concrete element is formulated as a laminated composite that consists of thin layers, of concrete or steel that has been modeled as elasticperfectly plastic material. The comparison of numerical load-displacement results with experimental results found in the literature demonstrates a good approximation of the model and validates the application of the damage model in the Classical Laminate Theory to predict mechanical failure of reinforced concrete beam. The results obtained by the numerical model indicated a variation in the stress–strain behavior of each beam, while for under-reinforced beams, the compressive stresses did not reach the peak stress but the stress–strain behavior was observed in the nonlinear regime at failure, for the other beams, the concrete had reached its ultimate strain, and the beam’s neutral axis was close to the centroid of the cross-section.
基于损伤力学和经典层压理论的钢筋混凝土梁破坏评价
钢筋混凝土梁在弯折作用下的性能预测对于这些构件的完美设计至关重要。通常,经典模型没有考虑混凝土在拉压作用下的物理非线性行为,从而低估了结构单元在短期和长期荷载作用下的变形。本文提出了一种基于有限元法的变分公式来预测钢筋混凝土梁的受弯性能。在本构模型的定义中采用损伤概念考虑混凝土开裂的物理非线性,在梁截面截面的离散化中采用层压理论。在分层方法中,钢筋混凝土元素被制定为层压复合材料,由薄层组成,混凝土或钢已被建模为弹性完全塑性材料。将荷载-位移数值计算结果与文献试验结果进行比较,验证了经典层压理论中损伤模型在钢筋混凝土梁力学破坏预测中的应用。数值模型计算结果表明,各梁的应力-应变行为存在差异,而对于未加筋的梁,压应力未达到峰值应力,但破坏时的应力-应变行为处于非线性状态,对于其他梁,混凝土已达到极限应变,梁的中性轴接近截面质心。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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