INORGANIC MATERIALS AND CERAMIC MATRIX COMPOSITES |
|
|
|
|
|
Study on the Effect and Mechanism of Secondary Aluminum Ash Sintering Slag Grinding Fine Powder on the Properties of Modified Magnesium Sulfide Cement-based Materials |
CUI Jiaming, MA Hongrui, MA Zheyang, JI Luxin, WANG Sheng, BA Mingfang*
|
School of Civil & Environment Engineering and Geography Science, Ningbo University, Ningbo 315211, Zhejiang, China |
|
|
Abstract In order to improve the performance of modified magnesium oxide (MMOS) cement-based materials, the influence of secondary aluminum ash sintering slag grinding fine powder (DF) on their workability and mechanical properties was investigated. Microscopic testing techniques including XRD, SEM, FTIR, and TG were employed to analyze the mechanism of this influence. The results indicate that with increasing of DF content, the workability of MMOS cement-based materials is promoted,when the DF content is within 10%. The mechanical properties initially show little variation but tend to increase with higher DF content, particularly at lower water-cement ratios. As curing time progresses, early-stage mechanical properties of MMOS cement specimens with different DF contents exhibit minimal change, while significant improvement is observed in later stages. Microscopic analysis reveals that excessive DF content delays the hydration reaction process, leading to a decreased rate of hydration product formation such as 5·1·7 phase (5Mg(OH)2·MgSO4·7H2O), thereby enhancing the workability of MMOS cement-based materials while reducing their early-stage mechanical properties. Furthermore, leaching tests confirm that heavy metal and harmful substance content in MMOS cement-based materials comply with standards set by the "Technical Specification for Cement Kiln Co-processing of Solid Waste". These findings provide a theoretical foundation for utilizing secondary aluminum ash in building materials, emphasizing its potential for high-value resource utilization.
|
Published: 10 August 2025
Online: 2025-08-13
|
|
|
|
1 Qin L, Gao X J, Chen T F. Journal of Cleaner Production, 2018, 191, 220. 2 Li Q Y. The effect of mineral admixtures and carbonation curing on the performance of magnesium oxysulfide cement. Master's Thesis, Harbin Institute of Technology, China, 2019 (in Chinese). 李奇岩. 矿物混合材和碳化养护对硫氧镁水泥性能的影响. 硕士学位论文, 哈尔滨工业大学, 2019. 3 Coppola L, Coffetti D, Crotti E, et al. Journal of Cleaner Production, 2019, 220, 475. 4 Guan Y, Hu Z Q, Zhang Z H, et al. Cement and Concrete Research, 2021, 143, 106387. 5 Jiang G, Cui K, Dong T, et al. Petroleum Science and Technology, 2021, 39(7-8), 216. 6 Gomes C, Camarini G. Key Engineering Materials, 2014, 600, 308. 7 Wang L. Research on modification technology of magnesium oxysulfide cement. Master's Thesis, Chongqing University, China, 2016 (in Chinese). 王磊. 硫氧镁水泥改性技术研究. 硕士学位论文, 重庆大学, 2016. 8 Wu C Y, Yu H F, Dong J M, et al. ACI Materials Journal, 2014, 111(3), 291. 9 Wu C Y. The basic theory of basic magnesium oxysulfide cement and its application technology in civil engineering. Master's Thesis, Graduate School of the Chinese Academy of Sciences (Qinghai Salt Lake Institute), China, 2014 (in Chinese). 吴成友. 碱式硫氧镁水泥的基本理论及其在土木工程中的应用技术研究. 硕士学位论文, 中国科学院研究生院(青海盐湖研究所), 2014. 10 Wang J F, Ba M F, Yang Y Y, et al. Materials Reports, 2014, 28(S2), 303(in Chinese). 王婕斐, 巴明芳, 杨莹莹, 等. 材料导报, 2014, 28(S2), 303. 11 Meshram A, Singh K K. Resources Conservation and Recycling, 2018, 130, 95. 12 Zhong W. Research on the production of aluminate cement CA50 by replacing part of high alumina bauxite with aluminum ash. Master's Thesis, Southwest University of Science and Technology, China, 2018 (in Chinese). 钟文.铝灰替代部分高铝矾土生产铝酸盐水泥CA50的研究. 硕士学位论文, 西南科技大学, 2014. 13 Lou B J, Shen H L, Liu B, et al. Construction and Building Materials, 2023, 409(15), 133989. 14 Gireesh M, Sujay R N, Sreedhara B M, et al. Resource-Efficient Techno-logies, 2016, 2(2), 68. 15 Zhang J J, Marta F S, Deng J X, et al. Journal of Materials Research and Technology, 2023, 26, 5638. 16 Zhang J J, Liu B, Zhao S Z, et al. Construction and Building Materials, 2020, 262(30), 120781. 17 Cui J M, Jiang Y H, Huang F J, et al. New Building Materials, 2022, 49(9), 27 (in Chinese). 崔嘉铭, 蒋元海, 黄发军, 等. 新型建筑材料, 2022, 49(9), 27. 18 Lahalle H, Coumes C. C. D, Mesbah A, et al. Cement and Concrete Research, 2016, 87, 77. |
|
|
|