Bulletin of the Chinese Ceramic Society, Volume. 44, Issue 3, 1069(2025)
Activity Evaluation of Multi-Source Solid Waste Preparation Admixtures and Microscopic Properties of Cement Hydration Products
[2] [2] BENHELAL E, SHAMSAEI E, RASHID M I. Challenges against CO2 abatement strategies in cement industry: a review[J]. Journal of Environmental Sciences, 2021, 104: 84-101.
[3] [3] BORDY A, YOUNSI A, AGGOUN S, et al. Cement substitution by a recycled cement paste fine: role of the residual anhydrous clinker[J]. Construction and Building Materials, 2017, 132: 1-8.
[4] [4] WU M, ZHANG Y S, JIA Y T, et al. Study on the role of activators to the autogenous and drying shrinkage of lime-based low carbon cementitious materials[J]. Journal of Cleaner Production, 2020, 257: 120522.
[5] [5] SILVA B A, FERREIRA PINTO A P, GOMES A. Natural hydraulic lime versus cement for blended lime mortars for restoration works[J]. Construction and Building Materials, 2015, 94: 346-360.
[6] [6] WANG Y G, LIU X M, ZHU X, et al. Synergistic effect of red mud, desulfurized gypsum and fly ash in cementitious materials: mechanical performances and microstructure[J]. Construction and Building Materials, 2023, 404: 133302.
[7] [7] ZHANG W, GU J R, ZHOU X, et al. Circulating fluidized bed fly ash based multi-solid wastes road base materials: hydration characteristics and utilization of SO3 and f-CaO[J]. Journal of Cleaner Production, 2021, 316: 128355.
[8] [8] LI Y, LIU X M, LI Z P, et al. Preparation, characterization and application of red mud, fly ash and desulfurized gypsum based eco-friendly road base materials[J]. Journal of Cleaner Production, 2021, 284: 124777.
[9] [9] GESOAGˇGLU M, GNEYISI E, ZBAY E. Properties of self-compacting concretes made with binary, ternary, and quaternary cementitious blends of fly ash, blast furnace slag, and silica fume[J]. Construction and Building Materials, 2009, 23(5): 1847-1854.
[10] [10] CHEN G F, LI S J, ZHAO Y S, et al. Hydration and microstructure evolution of a novel low-carbon concrete containing recycled clay brick powder and ground granulated blast furnace slag[J]. Construction and Building Materials, 2023, 386: 131596.
[11] [11] BAYRAKTAR O Y. The possibility of fly ash and blast furnace slag disposal by using these environmental wastes as substitutes in Portland cement[J]. Environmental Monitoring and Assessment, 2019, 191(9): 560.
[12] [12] ZHANG D S, HAO W W, YANG Q N. Experimental study on the application of recycled concrete waste powder in alkali-activated foamed concrete[J]. Materials, 2023, 16(17): 5728.
[13] [13] LIKES L, MARKANDEYA A, HAIDER M M, et al. Recycled concrete and brick powders as supplements to Portland cement for more sustainable concrete[J]. Journal of Cleaner Production, 2022, 364: 132651.
[14] [14] WU P F, ZENG Q S, LIU X M, et al. Synergistic preparation of high-performance composite blast furnace slag powder from multiple industrial solid wastes: performance regulation and optimization[J]. Construction and Building Materials, 2024, 411: 134231.
[15] [15] OZTURK M, KARAASLAN M, AKGOL O, et al. Mechanical and electromagnetic performance of cement based composites containing different replacement levels of ground granulated blast furnace slag, fly ash, silica fume and rice husk ash[J]. Cement and Concrete Research, 2020, 136: 106177.
[17] [17] ESKANDARI-NADDAF H, KAZEMI R. ANN prediction of cement mortar compressive strength, influence of cement strength class[J]. Construction and Building Materials, 2017, 138: 1-11.
[20] [20] XU Z H, GAO J M, ZHAO Y S, et al. Promoting utilization rate of ground granulated blast furnace slag (GGBS): incorporation of nanosilica to improve the properties of blended cement containing high volume GGBS[J]. Journal of Cleaner Production, 2022, 332: 130096.
[21] [21] LI Z P, XU G, SHI X M. Reactivity of coal fly ash used in cementitious binder systems: a state-of-the-art overview[J]. Fuel, 2021, 301: 121031.
[23] [23] DE MATOS P R, ANDRADE NETO J S, TAMBARA L U, et al. Measuring the early-age volumetric change of cement paste through in situ XRD[J]. Materials Today Communications, 2023, 36: 106857.
[24] [24] MAZLOOM M, SAFFARI A, MEHRVAND M. Compressive shear and torsional strength of beams made of self-compacting concrete[J]. Computers and Concrete, 2015, 15(6): 935-950.
[25] [25] KIM J J, FOLEY E M, REDA TAHA M M. Nano-mechanical characterization of synthetic calcium-silicate-hydrate (C-S-H) with varying CaO/SiO2 mixture ratios[J]. Cement and Concrete Composites, 2013, 36: 65-70.
[26] [26] DUAN Y P, FENG M S, ZHONG X Y, et al. Thermodynamic simulation of carbonate cements-water-carbon dioxide equilibrium in sandstone for prediction of precipitation/dissolution of carbonate cements[J]. PLoS One, 2016, 11(12): e0167035.
[27] [27] GONZLEZ-SANTAMARA D E, JUSTEL A, FERNNDEZ R, et al. SEM-EDX study of bentonite alteration under the influence of cement alkaline solutions[J]. Applied Clay Science, 2021, 212: 106223.
[28] [28] YANG K, ZHONG M Q, MAGEE B, et al. Investigation of effects of Portland cement fineness and alkali content on concrete plastic shrinkage cracking[J]. Construction and Building Materials, 2017, 144: 279-290.
[29] [29] MIAO C, LIANG L X, ZHANG F, et al. Review of the fabrication and application of porous materials from silicon-rich industrial solid waste[J]. International Journal of Minerals, Metallurgy and Materials, 2022, 29(3): 424-438.
[30] [30] BENDIMERAD A Z, ROZIRE E, LOUKILI A. Plastic shrinkage and cracking risk of recycled aggregates concrete[J]. Construction and Building Materials, 2016, 121: 733-745.
[32] [32] HONORIO T, BARY B, BENBOUDJEMA F. Thermal properties of cement-based materials: multiscale estimations at early-age[J]. Cement and Concrete Composites, 2018, 87: 205-219.
[33] [33] ZHU S Y, LIU H, DONG J C, et al. Research on carbon dioxide reduction technologies and its costs in Chinas cement industry[J]. Environmental Engineering Cheng, 2021,39(10): 15-22.
[34] [34] ZHANG J, LI H Y, ZHANG X L, et al. Process improvement of polyvinyl chloride production using caustic soda and calcium carbide method[J] Chemical Design Communication News, 2019, 45 (09): 110+138.
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SIMA Xiaoqing, XIE Xiangbing, LI Guanghui, LIU Chenchen, ZHANG Yilin, SI Bin, JI Yang, SHAO Jinggan. Activity Evaluation of Multi-Source Solid Waste Preparation Admixtures and Microscopic Properties of Cement Hydration Products[J]. Bulletin of the Chinese Ceramic Society, 2025, 44(3): 1069
Received: Sep. 2, 2024
Accepted: Apr. 24, 2025
Published Online: Apr. 24, 2025
The Author Email: XIE Xiangbing (xiexiangbing.good@163.com)