[1] LI J Y, WANG J M. Comprehensive utilization and environmental risks of coal gangue: A review[J]. J Clean Prod, 2019, 239: 117946.
[7] TEKLAY A, YIN C G, ROSENDAHL L, et al. Calcination of kaolinite clay particles for cement production: A modeling study[J].Cem Concr Res, 2014, 61/62: 11–19.
[8] LI C Q, WANG S D, ZHANG X W, et al. In-situ preparation of coal gangue-based catalytic material for efficient peroxymonosulfate activation and phenol degradation[J]. J Clean Prod, 2022, 374: 133926.
[9] ROJAS M F, CANEDA-MARTíNEZ L, SáNCHEZ DE ROJAS GóMEZ M I, et al. Future eco-efficient cements prepared with kaolinite-based industrial wastes[M]//Encyclopedia of Renewable and Sustainable Materials. Amsterdam: Elsevier, 2020: 398–404.
[18] GUO Z H, XU J J, XU Z H, et al. Performance of cement-based materials containing calcined coal gangue with different calcination regimes[J]. J Build Eng, 2022, 56: 104821.
[23] ZHANG Y L, LING T C. Reactivity activation of waste coal gangue and its impact on the properties of cement-based materials–A review[J].Constr Build Mater, 2020, 234: 117424.
[26] LIU Y Y, LEI S M, LIN M, et al. Assessment of pozzolanic activity of calcined coal-series Kaolin[J]. Appl Clay Sci, 2017, 143: 159–167.
[31] WANG H M, LIU X M, ZHANG Z Q. Pozzolanic activity evaluation methods of solid waste: A review[J]. J Clean Prod, 2023, 402: 136783.