Effect of Steam Curing Regimes on Mechanical Performance, Shrinkage and Microstructure of Fly Ash-Slag-Desulfurization Gypsum Cementitious Materials

粉煤灰 胶凝的 收缩率 材料科学 固化(化学) 微观结构 石膏 磨细高炉矿渣 复合材料 抗压强度 三元运算 灰浆 水泥 碱度 冶金 烧结
作者
Xiaoming Wei,L Wang,Jinghua Yan,Xiaolong Zhou,Yaning Wu,M S Wang
出处
期刊:Materials [Multidisciplinary Digital Publishing Institute]
卷期号:19 (12): 2551-2551
标识
DOI:10.3390/ma19122551
摘要

In this study, three types of industrial solid waste-granulated blast furnace slag (GBFS), fly ash, and desulfurization gypsum (DG)-are utilized to collaboratively prepare low-carbon cementitious materials. The effects of steam curing temperature, constant temperature time, and fly ash content on the mechanical properties of multi-source solid waste cementitious materials are systematically investigated, and the optimal mix proportion ratio for low-carbon cementitious materials is determined. The results indicate that as steam curing temperature and constant temperature time increase, the compressive strength of the ternary cementitious material generally shows an upward trend, while the fly ash content exhibits a negative correlation. When the steam curing temperature is 70 °C, the constant temperature time is 10 h, the fly ash content is 20%, and the strength can reach 24 MPa, with both its engineering performance and economic benefits meeting the requirements of practical applications. Meanwhile, the steam curing temperature shows a tendency of first decreasing and then increasing shrinkage rate after 28 d, with the lowest shrinkage rate at 70 °C. Extending the constant temperature time can slightly reduce shrinkage, and the addition of 20-30% fly ash can optimize shrinkage performance. Moreover, the TG/DTG and SEM-EDS microscopic testing demonstrates that the ternary system achieves synergistic activation by accelerated mineral dissolution, ion release and enhanced alkalinity under steam curing, which jointly promotes the formation of AFt and C-A-S-H gel to refine microstructure and improve compactness. This study can not only reduce the consumption of cement, but also facilitate the recycling of industrial waste, providing theoretical support for the application of multi-source solid waste low-carbon materials in practical engineering.
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