Synergistic Effect of HEDP.4Na and Different Induced Pouring Angles on Mechanical Properties of Fiber-Reinforced Alkali-Activated Slag Composites

IF 4 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Fibers Pub Date : 2023-02-22 DOI:10.3390/fib11030023
Jingjie Wei, Jianwei Liu, K. Khayat, Wujian Long
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引用次数: 4

Abstract

The poor flexural and damping properties of building materials damages concrete structures and affects their service life when concrete structures are subjected to dynamic loads. Three different dosages (i.e., 0%, 0.3%, and 0.6%) of organic phosphonates (HEDP.4Na) and different pouring methods (i.e., conventional pouring method, 90°-induced pouring method, and 150°-induced pouring method) were designed to improve the flexural and damping performance of fiber-reinforced alkali-activated slag composites (FR-AASC). The enhanced mechanism of HEDP.4Na was revealed by phase analysis (X-ray diffraction, XRD), pore structure analysis (Mercury Intrusion Porosimetry, MIP), the heat of hydration, and scanning electron microscopy (SEM) analysis. The results showed that 0.3% HEDP.4Na combined with the 150°-induced pouring angle can significantly improve the mechanical properties of the FR-AASC sample compared with the reference group. The sample with 0.3% HEDP.4Na cast by the 150°-induced pouring angle increased compressive and flexural strength, damping energy consumption and storage modulus by 20%, 60%, 78%, and 30%, respectively, compared with the reference sample cast by the conventional pouring methodology. HEDP.4Na reduced the early hydration heat and total porosity of the FR-AASC matrix, modified the fiber–matrix interface transition zone, and increased the frictional energy consumption of steel fibers. Overall, the synergistic effect of HEDP.4Na and the induced pouring methodology significantly improved the flexural and damping properties of FR-AASC. This study can provide a guidance for improving the flexural and damping capacity of FR-AASC and promote the application of FR-AASC in construction engineering.
HEDP.4Na和不同诱导浇注角度对纤维增强碱矿渣复合材料力学性能的协同作用
当混凝土结构受到动载荷时,建筑材料的弯曲和阻尼性能差会损坏混凝土结构并影响其使用寿命。设计了三种不同剂量(即0%、0.3%和0.6%)的有机膦酸酯(HEDP.4Na)和不同的浇注方法(即常规浇注法、90°诱导浇注法和150°诱导浇注方法)来改善纤维增强碱矿渣复合材料(FR-AASC)的弯曲和阻尼性能。通过相分析(X射线衍射、XRD)、孔结构分析(Mercury Intrusion Porosimetry、MIP)、水合热和扫描电子显微镜(SEM)分析揭示了HEDP.4Na的增强机理。结果表明,与对照组相比,0.3%的HEDP.4Na与150°诱导浇注角相结合可以显著改善FR-AASC样品的力学性能。与采用传统浇注方法浇注的参考样品相比,采用150°诱导浇注角浇注0.3%HEDP.4Na的样品的抗压强度、弯曲强度、阻尼能耗和储能模量分别提高了20%、60%、78%和30%。HEDP.4Na降低了FR-AASC基体的早期水化热和总孔隙率,改变了纤维-基体界面过渡区,增加了钢纤维的摩擦能耗。总体而言,HEDP.4Na和诱导浇注方法的协同作用显著改善了FR-AASC的弯曲和阻尼性能。本研究可为提高FR-AASC的抗弯和阻尼性能提供指导,促进FR-AASC在建筑工程中的应用。
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来源期刊
Fibers
Fibers Engineering-Civil and Structural Engineering
CiteScore
7.00
自引率
7.70%
发文量
92
审稿时长
11 weeks
期刊介绍: Fibers (ISSN 2079-6439) is a peer-reviewed scientific journal that publishes original articles, critical reviews, research notes and short communications on the materials science and all other empirical and theoretical studies of fibers, providing a forum for integrating fiber research across many disciplines. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Electronic files or software regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. The following topics are relevant and within the scope of this journal: -textile fibers -natural fibers and biological microfibrils -metallic fibers -optic fibers -carbon fibers -silicon carbide fibers -fiberglass -mineral fibers -cellulose fibers -polymer fibers -microfibers, nanofibers and nanotubes -new processing methods for fibers -chemistry of fiber materials -physical properties of fibers -exposure to and toxicology of fibers -biokinetics of fibers -the diversity of fiber origins
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