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矿渣微粉-羟丙基甲基纤维素/纤维透水混凝土的性能分析与配合比优化

Performance Analysis and Admixture Optimization of GBFS-HPMC/Fiber Pervious Concrete.

作者信息

Yan Xiwen, Wang Xuezhi, Sun Chuanwu, Xin Ming, He Jingjing

机构信息

School of Civil and Architectural Engineering, Liaoning University of Technology, Jinzhou 121001, China.

Power China Northwest Engineering Corporation Limited, Xi'an 710065, China.

出版信息

Materials (Basel). 2023 Sep 28;16(19):6455. doi: 10.3390/ma16196455.

Abstract

Permeable pavements can decrease the volume of stormwater, thereby mitigating the risk of flooding and reducing the urban heat island effect. This study investigated the influence of incorporating granulated blast-furnace slag (GBFS), hydroxypropyl methylcellulose (HPMC), and polypropylene plastic textile fiber (PPTF) on the mechanical properties and water permeability of pervious concrete. Orthogonal tests were employed to conduct the analysis. The findings indicate that the pervious concrete with GBFS, HPMC, and PPTF (termed GBFS-HPMC/fiber pervious concrete) exhibited the highest cubic compressive strength, ultimate tensile strength, and flexural strength. These values were 25.22 MPa, 3.36 MPa, and 5.39 MPa, respectively. The standard deviations for cubic compressive strength, split tensile strength, flexural strength, water permeability coefficient, and porosity, as calculated using SPSS, were 1.57, 0.1, 1.17, 0.35, and 0.4, respectively. Scanning electron microscopy (SEM) and energy-dispersive spectroscopy (EDS) were used to analyze the microstructure and compositional combinations of the pervious concrete. The analyses revealed that the calcium-silicate-hydrate (C-S-H) gel, produced by GBFS hydration, enhanced the bonding within the interfacial transition zone (ITZ) and between the fibers and aggregates. Additionally, the anchoring and supporting effects of the PPTF in the matrix contributed to stabilizing the overall matrix structure. Lastly, a gray correlation analysis was applied to optimize the admixture. The findings indicate that following the optimization, the cubic compressive strength increased by 7.2%, splitting tensile strength by 2.1%, and flexural strength by 2.5%. In summary, the mechanical properties of pervious concrete improved after optimizing the admixture.

摘要

透水路面可以减少雨水径流量,从而降低洪水风险并减轻城市热岛效应。本研究调查了掺入粒化高炉矿渣(GBFS)、羟丙基甲基纤维素(HPMC)和聚丙烯塑料纺织纤维(PPTF)对透水混凝土力学性能和透水性的影响。采用正交试验进行分析。结果表明,掺入GBFS、HPMC和PPTF的透水混凝土(称为GBFS-HPMC/纤维透水混凝土)具有最高的立方体抗压强度、极限抗拉强度和抗弯强度。这些值分别为25.22MPa、3.36MPa和5.39MPa。使用SPSS计算的立方体抗压强度、劈裂抗拉强度、抗弯强度、透水系数和孔隙率的标准偏差分别为1.57、0.1、1.17、0.35和0.4。采用扫描电子显微镜(SEM)和能谱仪(EDS)分析透水混凝土的微观结构和成分组合。分析表明,GBFS水化生成的硅酸钙水化物(C-S-H)凝胶增强了界面过渡区(ITZ)内以及纤维与骨料之间的粘结。此外,PPTF在基体中的锚固和支撑作用有助于稳定整个基体结构。最后,应用灰色关联分析对掺合料进行优化。结果表明,优化后立方体抗压强度提高了7.2%,劈裂抗拉强度提高了2.1%,抗弯强度提高了2.5%。总之,优化掺合料后透水混凝土的力学性能得到了改善。

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