[1] WANG Y H, XIAO R, LU H, et al. Effect of curing conditions on the strength and durability of air entrained concrete with and without fly ash[J]. Cleaner Materials, 2023, 7: 100170.
[5] XIANG S C, TAN Y S, GAO Y L, et al. Bubble evolution under the action of polycarboxylate and air-entraining agent and its effects on concrete properties-a review[J]. Materials, 2022, 15(20): 7053.
[7] DUAN M H, QIN Y, LI Y, et al. Durability and damage model of polyacrylonitrile fiber reinforced concrete under freeze-thaw and erosion[J]. Construction and Building Materials, 2023, 394: 132238.
[12] WU H S, SHEN A Q, REN G P, et al. An experimental investigation and optimization of the properties of concrete containing cellulose fiber based on system theory[J]. Construction and Building Materials, 2024, 411: 134463.
[13] GIVKASHI M R, TOHIDLOO M. The effect of freeze-thaw cycles and sulfuric acid attack separately on the compressive strength and microstructure of 3D-printed air-entrained concrete[J]. Construction and Building Materials, 2024, 440: 137411.
[17] SHPAK A, GONG F Y, JACOBSEN S. Frost durability of high-volume fly ash concrete: relation liquid transport-damage[J]. Cement and Concrete Research, 2023, 163: 107017.
[19] POWERS T C. Void space as a basis for producing air-entrained concrete[J]. ACI Journal Proceedings, 1954, 50(5): 741-760.