[1] WANG Q. China's citizens must act to save their environment[J]. Nature, 2013, 497(7448): 159. [2] XIE K C, LI W Y, ZHAO W. Coal chemical industry and its sustainable development in China[J]. Energy, 2010, 35(11): 4349-4355. [3] 赵永彬,吴 辉,蔡晓亮,等.煤气化残渣的基本特性研究[J].洁净煤技术,2015,21(3):110-113+74. ZHAO Y B, WU H, CAI X L, et al. Basic characteristics of coal gasification residual[J]. Clean Coal Technology, 2015, 21(3): 110-113+74 (in Chinese). [4] 曲江山,张建波,孙志刚,等.煤气化渣综合利用研究进展[J].洁净煤技术,2020,26(1):184-193. QU J S, ZHANG J B, SUN Z G, et al. Research progress on comprehensive utilization of coal gasification slag[J]. Clean Coal Technology, 2020, 26(1): 184-193 (in Chinese). [5] MONTAGNARO F, BRACHI P, SALATINO P. Char-wall interaction and properties of slag waste in entrained-flow gasification of coal[J]. Energy & Fuels, 2011, 25(8): 3671-3677. [6] AHMARUZZAMAN M. A review on the utilization of fly ash[J]. Progress in Energy and Combustion Science, 2010, 36(3): 327-363. [7] YAO Z T, JI X S, SARKER P K, et al. A comprehensive review on the applications of coal fly ash[J]. Earth-Science Reviews, 2015, 141: 105-121. [8] SIYAL A A, SHAMSUDDIN M R, KHAN M I, et al. A review on geopolymers as emerging materials for the adsorption of heavy metals and dyes[J]. Journal of Environmental Management, 2018, 224: 327-339. [9] 张 彤,刘 泽,苏壮飞,等.TiO2改性煤气化粗渣基地质聚合物的微观结构与性能[J].硅酸盐通报,2022,41(2):520-525+535. ZHANG T, LIU Z, SU Z F, et al. Microstructure and properties of TiO2 modified coal gasification coarse slag based geopolymer[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(2): 520-525+535 (in Chinese). [10] JINDAL B B. Investigations on the properties of geopolymer mortar and concrete with mineral admixtures: a review[J]. Construction and Building Materials, 2019, 227: 116644. [11] JIANG X, ZHANG Y Y, XIAO R, et al. A comparative study on geopolymers synthesized by different classes of fly ash after exposure to elevated temperatures[J]. Journal of Cleaner Production, 2020, 270: 122500. [12] ZHANG D M, SUN F J, LIU T T. Study on preparation of coal gangue-based geopolymer concrete and mechanical properties[J]. Advances in Civil Engineering, 2021, 2021: 5117584. [13] MEHTA A, SIDDIQUE R. Sustainable geopolymer concrete using ground granulated blast furnace slag and rice husk ash: strength and permeability properties[J]. Journal of Cleaner Production, 2018, 205: 49-57. [14] LIU Z, WANG J X, JIANG Q K, et al. A green route to sustainable alkali-activated materials by heat and chemical activation of lithium slag[J]. Journal of Cleaner Production, 2019, 225: 1184-1193. [15] ABDALQADER A F, JIN F, AL-TABBAA A. Development of greener alkali-activated cement: utilisation of sodium carbonate for activating slag and fly ash mixtures[J]. Journal of Cleaner Production, 2016, 113: 66-75. [16] LIU Y Y, LEI S M, LIN M, et al. Assessment of pozzolanic activity of calcined coal-series kaolin[J]. Applied Clay Science, 2017, 143: 159-167. [17] FANG Y H, LU Z L, WANG Z L. FT-IR study on early-age hydration of alkali-activated slag cement[J]. Key Engineering Materials, 2011, 492: 429-432. |