Chen Jincai, Xie Bo, Lu Zhongyu, He Shaohua, Ma Shuqian
School of Civil and Transportation Engineering, Guangdong University of Technology, Guangzhou 510006, China.
Materials (Basel). 2025 May 29;18(11):2559. doi: 10.3390/ma18112559.
This study investigates the early hydration characteristics and kinetics of ordinary Portland cement (OPC) and calcium sulfoaluminate cement (CSA) composite pastes. The hydration mechanisms of OPC-CSA systems with different proportions are analyzed through zonal analysis and the Krstulović-Dabić method. The experimental results show that in OPC-dominated systems, an appropriate amount of CSA promotes the rapid hydration of ye'elimite and optimizes the cumulative hydration heat and pore structure. However, excessive CSA inhibits hydration due to alkalinity imbalance. In CSA-dominated systems, 10% OPC increases the alkalinity, promoting ye'elimite to hydrate into ettringite. Higher OPC content hinders the hydration process due to ion concentration imbalance. The kinetics model indicates that CSA accelerates the interfacial reaction and diffusion in the OPC system, while OPC reduces the overall hydration rate of the CSA system. Microscopic analysis confirms that the composite system improves the pore structure through mineral interaction. In the OPC-dominated area, the pore structure is mainly composed of small and dense pores. In the CSA-dominated area, the characteristics of large pores are affected by the expansion properties of CSA and hydration heat. This study constructs a coupling mechanism of alkalinity regulation and crystal nucleus generation, providing a theoretical basis for the design of high-performance composite cement materials.
本研究探讨了普通硅酸盐水泥(OPC)与硫铝酸钙水泥(CSA)复合浆体的早期水化特性及动力学。通过区域分析和Krstulović-Dabić方法分析了不同比例的OPC-CSA体系的水化机理。实验结果表明,在以OPC为主的体系中,适量的CSA促进了钙矾石的快速水化,并优化了累积水化热和孔结构。然而,过量的CSA由于碱度失衡而抑制水化。在以CSA为主的体系中,10%的OPC提高了碱度,促进钙矾石水化生成钙矾石。较高的OPC含量由于离子浓度失衡而阻碍水化过程。动力学模型表明,CSA加速了OPC体系中的界面反应和扩散,而OPC降低了CSA体系的整体水化速率。微观分析证实,复合体系通过矿物相互作用改善了孔结构。在以OPC为主的区域,孔结构主要由小而致密的孔组成。在以CSA为主的区域,大孔的特征受CSA膨胀性能和水化热的影响。本研究构建了碱度调节与晶核生成的耦合机制,为高性能复合水泥材料的设计提供了理论依据。