Yao Ziqi, Luo Ling, Qin Yongjun, Cheng Jiangbo, Qu Changwei
College of Civil Engineering and Architecture, Xinjiang University, Urumqi, 830017, China.
Xinjiang Civil Engineering Technology Research Center, Urumqi, 830017, China.
Sci Rep. 2024 Apr 20;14(1):9101. doi: 10.1038/s41598-024-59872-0.
In order to alleviate environmental problems and reduce CO emissions, geopolymers had drew attention as a kind of alkali-activated materials. Geopolymers are easier access to raw materials, green and environment friendly than traditional cement industry. Its special reaction mechanism and gel structure show excellent characteristics such as quick hardening, high strength, acid and alkali resistance. In this paper, geopolymer pastes were made with metakaolin (MK) and ground granulated blast furnace slag (GGBFS) as precursors. The effects of liquid-solid ratio (L/S) and modulus of sodium silicate (Ms) on the performances of MK-GGBFS based geopolymer paste (MSGP) were characterized by workability, strength and microstructural tests. The regression equations were obtained by central composite design method to optimize the mix design of MSGP. The goodness of fit of all the equations were more than 98%. Based on the results of experiments, the optimum mix design was found to have L/S of 0.75 and Ms of 1.55. The workability of MSGP was significantly improved while maintaining the strength under the optimum mix design. The initial setting time of MSGP decreased by 71.8%, while both of the fluidity and 28-d compressive strength increased by 15.3%, compared with ordinary Portland cement pastes. Therefore, geopolymers are promising alternative cementitious material, which can consume a large amount of MK and GGBFS and promote green and clean production.
为了缓解环境问题并减少二氧化碳排放,地质聚合物作为一种碱激活材料受到了关注。与传统水泥工业相比,地质聚合物更容易获取原材料,且绿色环保。其特殊的反应机理和凝胶结构表现出诸如快速硬化、高强度、耐酸碱等优异特性。本文以偏高岭土(MK)和磨细粒化高炉矿渣(GGBFS)为前驱体制备了地质聚合物浆体。通过工作性能、强度和微观结构测试,表征了液固比(L/S)和硅酸钠模量(Ms)对基于MK-GGBFS的地质聚合物浆体(MSGP)性能的影响。采用中心复合设计方法获得回归方程,以优化MSGP的配合比设计。所有方程的拟合优度均超过98%。基于实验结果,发现最佳配合比设计的L/S为0.75,Ms为1.55。在最佳配合比设计下,MSGP的工作性能得到显著改善,同时强度得以保持。与普通硅酸盐水泥浆体相比,MSGP的初凝时间缩短了71.8%,而流动性和28天抗压强度均提高了15.3%。因此,地质聚合物是一种有前途的替代胶凝材料,它可以消耗大量的MK和GGBFS,并促进绿色清洁生产。