[1] DONDI M, ERCOLANI G, GUARINI G, et al. The role of surface microstructure on the resistance to stains of porcelain stoneware bricks[J]. Journal of the European Ceramic Society, 2005, 25(4): 357-365.
[2] SANCHEZ E, IBANEZ M J, GARCIA T J, et al. Porcelain tile microstructure: implications for polished tile properties[J]. Journal of the European Ceramic Society, 2006, 26(13): 2533-2540.
[3] WEI L L, HU M Y, CHEN L L, et al. Inhibitory effect of porcelain tile polishing residue on alkali-silicate reaction under different alkali environment[J]. Journal of Building Materials, 2021, 24(1): 99-105 (in Chinese).
[4] CHENG H, WANG J, ZENG G D, et al. Study on the effect of high content ceramic polishing slag on the properties of foamed lightweight soil[J]. Journal of Wuhan University of Technology (Transportation Science & Engineering), 2022, 46(2): 292-296 (in Chinese).
[5] LI L, LIU W F, YOU Q X, et al. Waste ceramic powder as a pozzolanic supplementary filler of cement for developing sustainable building materials[J]. Journal of Cleaner Production, 2020, 259: 120853.
[6] SONG Q, BAO J W, XUE S B, et al. Study on the recycling of ceramic polishing slag in autoclaved aerated foam concrete by response surface methodology[J]. Journal of Building Engineering, 2022, 56: 104827.
[7] YAN W, LI N, LI Y Y, et al. Effect of particle size on microstructure and strength of porous spinel ceramics prepared by pore-forming in situ technique[J]. Bulletin of Materials Science, 2011, 34(5): 1109-1112.
[8] ZONG Y B, WAN Q L, CANG D Q. Preparation of anorthite-based porous ceramics using high-alumina fly ash microbeads and steel slag[J]. Ceramics International, 2019, 45(17): 22445-22451.
[9] DING G B, QI H, XING W H. Effect of particle size distribution of raw powders on the pore structure of macroporous alumina supports[J]. Membrane Science and Technology, 2008, 28(5): 23-27 (in Chinese).
[10] ZHANG X. Preparation and sintering properties of submicron alumina ceramic powder[D]. Nanjing: Nanjing University of Science and Technology, 2016 (in Chinese).
[11] BAI X, WANG X M, CHU M Y, et al. Effect of raw material processing technology and pore evolution on hot-pressing densification of AZO target[J]. Powder Metallurgy Technology, 2017, 35(6): 446-453 (in Chinese).
[12] KONG W J, ZHANG H, SUN D D, et al. Effect of ball milling time on phase structure and sintering properties of AZO ceramics[J]. Journal of Kashi University, 2022, 43(3): 34-37 (in Chinese).
[13] FU S Y, LIU R J, WEI J Z, et al. Effect of holding time on the properties of porous ceramics with high-volume polished slag and its pore structure characteristics[J]. Frontiers in Materials, 2023, 10: 1147120.
[14] FU Y L. Preparation of glazed tile with polished porcelain waste[D]. Guangzhou: South China University of Technology, 2012 (in Chinese).
[15] MONFORT E, GARCIA T J, CELADES I, et al. Evolution of fluorine emissions during the fast firing of ceramic tile[J]. Applied Clay Science, 2008, 38(3/4): 250-258.
[16] CANNILLO V, ESPOSITO L, RAMBALDI E, et al. Microstructural and mechanical changes by chemical ageing of glazed ceramic surfaces[J]. Journal of the European Ceramic Society, 2009, 29(9): 1561-1569.
[17] WANG Q T, YU H Q, BEN T, et al. Preparation of lightweight high-strength thermal insulation and decoration integration porous ceramics using red mud[J]. Journal of the Australian Ceramic Society, 2020, 56(1): 91-98.
[18] LIU Z H. Study of the preparation of ceramic bricks with cyanide tailings[D]. Wuhan: Wuhan University of Technology, 2018 (in Chinese).