Wilińska Iwona, Pacewska Barbara, Antonovič Valentin
Faculty of Civil Engineering, Mechanics and Petrochemistry, Institute of Chemistry, Warsaw University of Technology, Lukasiewicza Street 17, 09-400 Plock, Poland.
Laboratory of Composite Materials, Institute of Building Materials, Vilnius Gediminas Technical University, Linkmenų Street 28, 08217 Vilnius, Lithuania.
Materials (Basel). 2022 Mar 16;15(6):2192. doi: 10.3390/ma15062192.
Results of research on hydration of four-component binders containing very high amounts of supplementary cementitious materials were presented. The samples were composed of blended pozzolana (a mix of conventional fly ash and spent aluminosilicate catalyst), cement (about 20 wt.% in the binder) and Ca(OH). Spent aluminosilicate catalyst was proposed as activating component which can improve properties of low-cement blends, while the role of Ca(OH) was to enhance pozzolanic reaction. Early and later hydration periods of such blends were investigated by calorimetry, TG/DTG, FTIR and X-ray diffraction. Initial setting time as well as compressive strength were also determined. It was concluded that enhancement of reactivity and improvement of properties of fly ash-cement binders are possible by replacing a part of fly ash with more active fine-grained pozzolana and introducing additional amounts of Ca(OH). The spent catalyst is mainly responsible for accelerating action during the first hours of hydration and for progress of early pozzolanic reaction. Fly ash develops its activity over time, thus synergic effect influences the later properties of composites. Samples containing blended pozzolana exhibit shorter initial setting times and higher compressive strength, as well as faster consumption of Ca(OH) compared to the reference. Investigated mixtures seem to be promising as "green" binders, alternatives to cement, after optimizing their compositions or additional activating procedure.
介绍了对含有大量辅助胶凝材料的四组分粘结剂水化的研究结果。样品由混合火山灰(传统粉煤灰和废铝硅酸盐催化剂的混合物)、水泥(占粘结剂约20 wt.%)和Ca(OH)组成。提出将废铝硅酸盐催化剂作为活性组分,其可改善低水泥掺量混合物的性能,而Ca(OH)的作用是增强火山灰反应。通过量热法、TG/DTG、FTIR和X射线衍射研究了此类混合物的早期和后期水化阶段。还测定了初凝时间和抗压强度。得出结论:通过用活性更高的细颗粒火山灰替代部分粉煤灰并引入额外量的Ca(OH),可提高粉煤灰-水泥粘结剂的反应活性并改善其性能。废催化剂主要负责在水化的最初几小时内起加速作用以及早期火山灰反应的进行。粉煤灰随时间发展其活性,因此协同效应影响复合材料的后期性能。与参比样相比,含有混合火山灰的样品表现出更短的初凝时间、更高的抗压强度以及更快的Ca(OH)消耗。经优化其组成或额外的活化程序后,所研究的混合物似乎有望成为水泥的替代“绿色”粘结剂。