Ji Xiangnan, Takasu Koji, Suyama Hiroki, Koyamada Hidehiro
Department of Architecture, Faculty of Environmental Engineering, The University of Kitakyushu, Kitakyushu 808-0135, Japan.
Materials (Basel). 2023 Mar 27;16(7):2645. doi: 10.3390/ma16072645.
Curing temperature affects the compressive strength of cement paste systems via the pozzolanic reaction. However, different processes, climates, and weather conditions often result in different initial curing temperatures. The relationship between curing temperature and compressive strength is still an underexplored domain. To explore the effect of curing temperature on calcium hydroxide (CH)-based fly ash composites, fly ashes from different carbon sources were used to make CH-based composites, and the compressive strength, reaction rate, CH content, and C-S-H generation were analyzed. The correlation between the reaction rate and C-S-H content was analyzed. High-temperature curing improved the compressive strength of the cement paste system by affecting the CH-based reaction rate in the initial stage, with the highest initial reaction rate reaching 28.29%. However, after cooling to constant temperature, high-temperature curing leads to a decrease in CH and C-S-H content. The average decrease rate of calcium hydroxide content under high temperature curing is 38%, which is about 2.38 times that of room-temperature curing conditions. This led to a decrease in the compressive strength of the cement paste. Therefore, the performance of CH-based fly ash composites produced by low-temperature curing was superior to that of composites produced by high-temperature curing.
养护温度通过火山灰反应影响水泥浆体体系的抗压强度。然而,不同的工艺、气候和天气条件常常导致不同的初始养护温度。养护温度与抗压强度之间的关系仍是一个未被充分探索的领域。为了探究养护温度对氢氧化钙(CH)基粉煤灰复合材料的影响,使用来自不同碳源的粉煤灰制备CH基复合材料,并分析其抗压强度、反应速率、CH含量和C-S-H生成情况。分析了反应速率与C-S-H含量之间的相关性。高温养护通过影响初始阶段基于CH的反应速率提高了水泥浆体体系的抗压强度,最高初始反应速率达到28.29%。然而,冷却至恒温后,高温养护导致CH和C-S-H含量降低。高温养护下氢氧化钙含量的平均降低率为38%,约为室温养护条件下的2.38倍。这导致水泥浆体抗压强度降低。因此,低温养护制备的CH基粉煤灰复合材料的性能优于高温养护制备的复合材料。