Stiffness degradation and mechanical behavior of microfiber-modified high-toughness recycled aggregate concrete under constant load cycling

IF 4.7 2区 工程技术 Q1 MECHANICS Engineering Fracture Mechanics Pub Date : 2024-11-04 DOI:10.1016/j.engfracmech.2024.110608
Changqing Wang , Jinyan Liu , Bo Lu , Youchao Zhang , Zhiming Ma
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Abstract

The mechanical properties of High-Toughness Recycled Aggregate Concrete (HTRAC) were investigated in this study as an innovative and environmentally friendly construction material, along with its potential applications in structural stability. Small-scale specimens with six levels of micro-steel fiber content were made, and a series of cyclic tests with constant loads were carried out. Using In-Situ 4D CT technology, the damage characteristics of the microstructure of HTRAC and the reinforcing effects of fibers on key mechanical parameters (peak stress, peak strain, ultimate strain, post-peak modulus, and toughness indicators) were analyzed. A comprehensive fiber reinforcing factor calculation model was proposed to assess its contribution to strength, deformability, and toughness, and the correlation between the number of cyclic loadings and stiffness degradation was also quantified. it is confirmed that HTRAC exhibits a significant advantage in toughness compared to traditional recycled aggregate concrete (RAC). The findings of this study provide crucial technical support for the further development and application of HTRAC, indicating its promising prospects in the field of sustainable construction materials.
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微纤维改性高韧性再生骨料混凝土在恒定荷载循环下的刚度退化和力学行为
本研究调查了高韧性再生骨料混凝土(HTRAC)作为一种创新型环保建筑材料的力学性能及其在结构稳定性方面的潜在应用。研究人员制作了六种微钢纤维含量的小尺寸试样,并进行了一系列恒载循环试验。利用原位四维 CT 技术,分析了 HTRAC 微结构的损伤特征以及纤维对关键力学参数(峰值应力、峰值应变、极限应变、峰后模量和韧性指标)的增强效应。提出了一个全面的纤维增强因子计算模型,以评估其对强度、变形性和韧性的贡献,并量化了循环加载次数与刚度退化之间的相关性。研究证实,与传统的再生骨料混凝土(RAC)相比,HTRAC 在韧性方面具有显著优势。这项研究结果为进一步开发和应用 HTRAC 提供了重要的技术支持,表明其在可持续建筑材料领域具有广阔的前景。
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来源期刊
CiteScore
8.70
自引率
13.00%
发文量
606
审稿时长
74 days
期刊介绍: EFM covers a broad range of topics in fracture mechanics to be of interest and use to both researchers and practitioners. Contributions are welcome which address the fracture behavior of conventional engineering material systems as well as newly emerging material systems. Contributions on developments in the areas of mechanics and materials science strongly related to fracture mechanics are also welcome. Papers on fatigue are welcome if they treat the fatigue process using the methods of fracture mechanics.
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