Liu Mo, Dai Wenting, Jin Weidong, Li Mingrui, Yang Xue, Han Yongming, Huang Mingxing
College of Construction Engineering, Jilin University, Changchun, 130026, China.
College of Transportation, Jilin University, Changchun, 130025, China.
Sci Rep. 2024 Oct 23;14(1):24989. doi: 10.1038/s41598-024-76774-3.
To achieve dual optimization of the mechanical properties and environmental impacts of geopolymer concrete (GPC), this study proposes a high-strength geopolymer concrete (HSGPC) without coarse aggregate. The mix proportion of HSGPC was optimized using the response surface methodology, targeting compressive strength and splitting tensile strength to determine the optimal mix. Additionally, the carbon emission impact of HSGPC was assessed and compared with ordinary Portland cement concrete, ultra-high-performance concrete, and reactive powder concrete. The results indicate that the optimal mix proportion for HSGPC includes 15% fly ash content, 10.30% silica fume content, alkali activator ratio of 2.5, and a NaOH molar concentration of 10 M. Simultaneously, the carbon emissions of HSGPC are reduced by about 30% compared to ordinary Portland cement concrete. Compared to ultra-high-performance concrete and reactive powder concrete of the same strength, the production of HSGPC respectively reduces carbon emissions by 59.87% and 68.24%. This study not only provides valuable technical support for the practical application of GPC in engineering but also holds significant implications for promoting sustainable development in the construction industry.
为实现地质聚合物混凝土(GPC)力学性能和环境影响的双重优化,本研究提出了一种无粗骨料的高强度地质聚合物混凝土(HSGPC)。采用响应面法对HSGPC的配合比进行优化,以抗压强度和劈裂抗拉强度为目标确定最佳配合比。此外,评估了HSGPC的碳排放影响,并与普通硅酸盐水泥混凝土、超高性能混凝土和活性粉末混凝土进行了比较。结果表明,HSGPC的最佳配合比包括15%的粉煤灰含量、10.30%的硅灰含量、2.5的碱激发剂比例和10 M的NaOH摩尔浓度。同时,与普通硅酸盐水泥混凝土相比,HSGPC的碳排放量减少了约30%。与相同强度的超高性能混凝土和活性粉末混凝土相比,HSGPC的生产分别减少了59.87%和68.24%的碳排放量。本研究不仅为GPC在工程中的实际应用提供了有价值的技术支持,也对促进建筑业的可持续发展具有重要意义。