微波固化对粉煤灰-矿渣基3d打印地聚合物早期、中期和长期强度及微观结构性能的协同效应

IF 9
Muhammad Kashif Anwar , Xingyi Zhu , Yating Zhang , Jiakang Wang , Yumiao Wu , Francisco A. Gilabert
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引用次数: 0

摘要

本研究考察了微波加热对粉煤灰-矿渣基3d打印地聚合物的早期、中期和长期抗弯抗压强度的协同效应。结果表明:1260 W微波加热30 ~ 45 s时抗折强度最大,1800 W加热15 ~ 30 s时抗压强度最大;热分析表明凝胶脱水和碳酸盐分解,微波加热时间越长,质量损失越大。XRD、FTIR和SEM共同证实了C-A-S-H凝胶和方解石的形成,并随着时间的推移增强了地聚合和致密化,这有助于提高机械性能。MIP分析表明,延长微波固化时间会增加整体孔隙率,使孔隙结构变粗,从而在获得高超早期强度和保持最佳长期微观结构密度之间做出权衡。微波固化加速了早期强度的发展,同时保持了耐久性,为可持续的3d打印建筑提供了快速、低碳和节能的替代方案。这些发现强调了微波固化地聚合物在增材制造中取代OPC的潜力,优化了性能,同时显著减少了施工对环境的影响。这种方法通过使工业废物(粉煤灰和炉渣)增值和减少固化过程的能源足迹来支持清洁生产原则。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synergistic effects of microwave curing regimes on early, mid, and long-term strengths and microstructural performance of fly ash-slag based 3D-printed geopolymers
This study investigates the synergistic effects of microwave heating on the early, mid, and long-term flexural and compressive strengths of fly ash-slag-based 3D-printed geopolymers. Results show that flexural strength reaches its peak with 30–45 s of microwave heating at 1260 W, while compressive strength is maximized with 15–30 s of heating at 1800 W. Thermal analysis indicates gel dehydration and carbonate decomposition, with greater mass loss at longer microwave heating times. XRD, FTIR, and SEM collectively confirm the formation of C-A-S-H gels, calcite, and enhanced geopolymerization and densification over time, which contributes to improved mechanical properties. MIP analysis reveals that extended microwave curing increases overall porosity and coarsens the pore structure, which presents a trade-off between achieving high ultra-early strength and maintaining optimal long-term microstructural density. Microwave curing accelerates early strength development while maintaining durability, offering a rapid, low-carbon, and energy-efficient alternative for sustainable 3D-printed construction. These findings underline the potential of microwave-cured geopolymers to replace OPC in additive manufacturing, optimizing performance while significantly reducing the environmental impact of construction. This approach supports the principles of cleaner production by valorizing industrial waste (fly ash and slag) and reducing the energy footprint of the curing process.
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CiteScore
9.20
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