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用不溶性方解石和源自不同制造工艺的各种硅灰改性的地质聚合物。

Geopolymer Modified with Insoluble Calcite and Various Silica Fumes Originated from Different Manufacturing Processes.

作者信息

Xu Yong, Wang Xiaonan, Yang Lilin, Liu Yang, Gao Tong, Li Han, Wang Yukai, Xie Ning, Meng Jing, Ou Jinping, Wang Wenshou

机构信息

School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, China.

College of Transportation Engineering, Dalian Maritime University, Dalian 116000, China.

出版信息

Materials (Basel). 2025 Jun 13;18(12):2795. doi: 10.3390/ma18122795.

Abstract

It has been proven that silica fume (SF), which is a by-product from the manufacturing of single-crystal silicon, is beneficial for enhancing the mechanical properties, durability, and workability of geopolymers, as it can be quickly dissolved and form silicate-based cementitious phases in alkaline environments. However, the reinforcement mechanism of SF on geopolymer remains unclear due to the chemical complexity of geopolymer and the variety of SF types. Additionally, the solubility of calcite in an alkali environment is quite limited, and thus the formation of the amorphous calcium-based gels will be thwarted due to the lack of soluble calcium ions. Most importantly, with the development of the single-crystal industry, the amorphous silica content, crystallinity, and trace elements of SF itself have changed, which blocks the understanding of the activation mechanism of geopolymers combined with SF and insoluble calcite. To unveil the underlying modification mechanisms of SF on geopolymer materials along with insoluble calcite, in this study, two types of SF were used as the fly ash replacement in a fly ash/limestone system to prepare geopolymer materials. The reinforcement effect significantly depends on the SF types even with similar particle size and chemical compositions. The results indicate that the mechanical properties of geopolymer materials modified with SFs are not only governed by the ratio and contents of Si, Ca, Al, and Mg in SFs but also depend on the crystallinity and activity of the SFs. The hydration products could be varied according to the reaction environment. The research results not only contribute to the optimization design and application of geopolymer materials but also pave new pathways for the upcycling use of solid wastes such as SF, low-grade fly ash, or even other aluminosilicate solid wastes to achieve sustainable development.

摘要

已经证明,作为单晶硅制造副产品的硅灰(SF)有利于提高地质聚合物的机械性能、耐久性和可加工性,因为它在碱性环境中能够快速溶解并形成硅酸盐基胶凝相。然而,由于地质聚合物的化学复杂性和硅灰类型的多样性,硅灰对地质聚合物的增强机制仍不清楚。此外,方解石在碱性环境中的溶解度相当有限,因此由于缺乏可溶性钙离子,无定形钙基凝胶的形成将受到阻碍。最重要的是,随着单晶行业的发展,硅灰本身的无定形二氧化硅含量、结晶度和微量元素发生了变化,这阻碍了对地质聚合物与硅灰和不溶性方解石结合的活化机制的理解。为了揭示硅灰对地质聚合物材料以及不溶性方解石的潜在改性机制,在本研究中,使用两种类型的硅灰作为粉煤灰/石灰石体系中粉煤灰的替代品来制备地质聚合物材料。即使具有相似的粒径和化学成分,增强效果也显著取决于硅灰类型。结果表明,用硅灰改性的地质聚合物材料的机械性能不仅受硅灰中Si、Ca、Al和Mg的比例和含量控制,还取决于硅灰的结晶度和活性。水合产物可根据反应环境而变化。研究结果不仅有助于地质聚合物材料的优化设计和应用,还为硅灰、低品位粉煤灰甚至其他铝硅酸盐固体废物等固体废物的升级利用开辟了新途径,以实现可持续发展。

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