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Failure Analysis of Ultra High-Performance Fiber-Reinforced Concrete Structures Enhanced with Nanomaterials by Using a Diffuse Cohesive Interface Approach

机译:用漫射粘性界面方法用纳米材料增强超高性能纤维混凝土结构的故障分析

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摘要

Recent progresses in nanotechnology have clearly shown that the incorporation of nanomaterials within concrete elements leads to a sensible increase in strength and toughness, especially if used in combination with randomly distributed short fiber reinforcements, as for ultra high-performance fiber-reinforced concrete (UHPFRC). Current damage models often are not able to accurately predict the development of diffuse micro/macro-crack patterns which are typical for such concrete structures. In this work, a diffuse cohesive interface approach is proposed to predict the structural response of UHPFRC structures enhanced with embedded nanomaterials. According to this approach, all the internal mesh boundaries are regarded as potential crack segments, modeled as cohesive interfaces equipped with a mixed-mode traction-separation law suitably calibrated to account for the toughening effect of nano-reinforcements. The proposed fracture model has been firstly validated by comparing the failure simulation results of UHPFRC specimens containing different fractions of graphite nanoplatelets with the available experimental data. Subsequently, such a model, combined with an embedded truss model to simulate the concrete/steel rebars interaction, has been used for predicting the load-carrying capacity of steel bar-reinforced UHPFRC elements enhanced with nanoplatelets. The numerical outcomes have shown the reliability of the proposed model, also highlighting the role of the nano-reinforcement in the crack width control.
机译:纳米技术的最新进展已经清楚地表明,混凝土元件内的纳米材料掺入强度和韧性的显着增加,特别是如果与随机分布的短纤维增强剂组合使用,则为超高性能纤维增强混凝土(UHPFRC) 。电流损坏模型通常不能准确地预测衍射微/宏裂纹图案的发展,这对于这种混凝土结构典型。在这项工作中,提出了一种弥漫性粘合界面方法,以预测UHPFRC结构增强的嵌入式纳米材料的结构响应。根据这种方法,所有内部网状边界被视为潜在的裂缝段,以配备有混合模式牵引分离法的粘性接口建模,适当地校准,以考虑纳米增强件的增韧效果。通过比较含有不同分数的石墨纳米片具有可用实验数据的UHPFRC样本的失效模拟结果,首先验证了所提出的骨折模型。随后,这种模型与嵌入式桁架模型相结合以模拟混凝土/钢钢筋相互作用,已经用于预测钢筋增强UHPFRC元素的承载能力,其纳米片纳米片增强。数值结果表明了所提出的模型的可靠性,还突出了纳米加强件在裂缝宽度控制中的作用。

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