Chen Xue-Fei, Zhang Xiu-Cheng, Peng Ying
School of Civil Engineering, Putian University, Putian 351100, China.
Engineering Research Center of Disaster Prevention and Mitigation of Southeast Coastal Engineering Structures (JDGC03), Fujian Province University, Putian 351100, China.
Materials (Basel). 2025 Jun 5;18(11):2651. doi: 10.3390/ma18112651.
Fly ash aggregates (FAAs) were synthesized via a hydrothermal process, involving the reaction of fly ash and cement at 180 °C under saturated steam conditions. A thorough examination was carried out to evaluate the impact of cement content on the physico-mechanical properties of the resulting FAAs. A comprehensive exploration was undertaken to decipher the mechanisms by which cement modulates the cylinder compressive strength of FAAs, encompassing mineralogical composition, microstructure, insoluble residue content, and loss on ignition. As the cement proportion increased, a concomitant rise in the amount of hydration products was observed, leading to an enhanced filling effect. This, subsequently, resulted in reduced water absorption and increased apparent density of the FAAs. The augmented filling effect of hydration products contributed to a gradual elevation in the cylinder compressive strength of FAAs as cement content escalated from 5 to 35 wt%. However, a significant transition occurred when cement content surpassed 35%, reaching 35-45 wt%. Within this range, the micro-aggregate effect was diminished, causing a decrease in cylinder compressive strength. The optimal equilibrium between the filling effect and micro-aggregate effect was attained at 35 wt% cement content, where the cylinder compressive strength of FAAs reached its peak value of 18.5 MPa. This research is expected to provide a feasible approach for solid waste reduction, with a particular emphasis on the utilization of fly ash.
粉煤灰集料(FAAs)通过水热法合成,该方法涉及粉煤灰与水泥在180°C饱和蒸汽条件下的反应。进行了全面检查,以评估水泥含量对所得FAAs物理力学性能的影响。开展了全面探索,以解读水泥调节FAAs圆柱体抗压强度的机制,包括矿物组成、微观结构、不溶残渣含量和烧失量。随着水泥比例增加,观察到水化产物量随之增加,导致填充效果增强。这随后导致FAAs吸水率降低和表观密度增加。随着水泥含量从5 wt%增加到35 wt%,水化产物增强的填充效果促使FAAs圆柱体抗压强度逐渐提高。然而,当水泥含量超过35%达到35 - 45 wt%时,发生了显著转变。在此范围内,微集料效应减弱,导致圆柱体抗压强度降低。在水泥含量为35 wt%时,填充效果和微集料效应达到最佳平衡,此时FAAs圆柱体抗压强度达到峰值18.5 MPa。预计该研究将为减少固体废物提供一种可行方法,尤其侧重于粉煤灰的利用。