• Journal of the Chinese Ceramic Society
  • Vol. 52, Issue 2, 474 (2024)
ZHANG Shaohui1,2, WANG Yan1,3,*, GUO Bingbing2,3, LV Yao2, and NIU Ditao2,3
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • show less
    DOI: Cite this Article
    ZHANG Shaohui, WANG Yan, GUO Bingbing, LV Yao, NIU Ditao. Evolution of Fractal Characteristics of Concrete Pore Structure Under Coupling Effect of Temperature Field and Sulphate Attack[J]. Journal of the Chinese Ceramic Society, 2024, 52(2): 474 Copy Citation Text show less
    References

    [1] ZHANG D L, SUN Z Y, FANG Q. Scientific problems and research proposals for Sichuan-Tibet railway tunnel construction[J]. Undergr Space, 2022, 7(3): 419-439.

    [2] MA Hui, GAO Mingzhong. Mod Tunn Technol, 2020, 57(3): 1-8.

    [3] Wu G, Liu W, Shu H, et al. J Eng Geol, 2019, 27(S1): 513-518.

    [4] SUN Kai. Circulation mechanism and resource evaluation of underground hot water in Xining Basin[D]. Xi'an: Northwest University, 2015.

    [5] HE Miaomiao. Effect of high-temperature sulfate solution on mechanical properties of concrete[D]. Chengdu: Southwest Jiaotong University, 2016.

    [6] GAO Shang. Study on the influence of high temperature sulfate on the durability of concrete[D]. Chengdu: Southwest Jiaotong University, 2016.

    [7] XIA J Y, ZHOU X J, ZHAO L L, et al. Accelerated sulfate corrosion of limestone powder cement-based materials in a high geothermal environment by electrical pulse[J]. Constr Build Mater, 2023, 369: 130561.

    [8] WANG Y, ZHANG S H, NIU D T, et al. Quantitative evaluation of the characteristics of air voids and their relationship with the permeability and salt freeze-thaw resistance of hybrid steel-polypropylene fiber-reinforced concrete composites[J]. Cem Concr Compos, 2022, 125: 104292.

    [9] MüLLAUER W, BEDDOE R E, HEINZ D. Sulfate attack expansion mechanisms[J]. Cem Concr Res, 2013, 52: 208-215.

    [10] WANG L, ZENG X M, YANG H M, et al. Investigation and application of fractal theory in cement-based materials: a review[J]. Fractal Fract, 2021, 5(4): 247.

    [11] NIU D T, ZHANG S H, WANG Y, et al. Effect of temperature on the strength, hydration products and microstructure of shotcrete blended with supplementary cementitious materials[J]. Constr Build Mater, 2020, 264: 120234.

    [12] ZHANG S H, WANG Y, TONG Y P, et al. Flexural toughness characteristics of basalt fiber reinforced shotcrete composites in high geothermal environment[J]. Constr Build Mater, 2021, 298: 123893.

    [13] WANG M N, HU Y P, WANG Q L, et al. A study on strength characteristics of concrete under variable temperature curing conditions in ultra-high geothermal tunnels[J]. Constr Build Mater, 2019, 229: 116989.

    [14] WINSLOW D N. The fractal nature of the surface of cement paste[J]. Cem Concr Res, 1985, 15(5): 817-824.

    [15] ZHANG B Q, LI S F. Determination of the surface fractal dimension for porous media by mercury porosimetry[J]. Ind Eng Chem Res, 1995, 34(4): 1383-1386.

    [16] LI D, NIU D T, FU Q, et al. Fractal characteristics of pore structure of hybrid Basalt-Polypropylene fibre-reinforced concrete[J]. Cem Concr Compos, 2020, 109: 103555.

    [17] ZHANG B Q, LIU W, LIU X F. Scale-dependent nature of the surface fractal dimension for bi- and multi-disperse porous solids by mercury porosimetry[J]. Appl Surf Sci, 2006, 253(3): 1349-1355.

    [18] YU B M, LI J H. A geometry model for tortuosity of flow path in porous media[J]. Chin Phys Lett, 2004, 21(8): 1569-1571.

    [19] XU P, YU B M. Developing a new form of permeability and Kozeny-Carman constant for homogeneous porous media by means of fractal geometry[J]. Adv Water Resour, 2008, 31(1): 74-81.

    [20] YU B M, LI J H. Some fractal characters of porous media[J]. Fractals, 2001, 9(3): 365-372.

    [21] LIU Zanqun, LI Xiangning, DENG Dehua, et al. J Chin Ceram Soc, 2016, 44(8): 1173-1177.

    [22] JIN S S, ZHANG J X, HAN S. Fractal analysis of relation between strength and pore structure of hardened mortar[J]. Constr Build Mater, 2017, 135: 1-7.

    [23] YU C, SUN W, SCRIVENER K. Mechanism of expansion of mortars immersed in sodium sulfate solutions[J]. Cem Concr Res, 2013, 43: 105-111.

    [24] QIAN Jueshi, YU Jincheng, SUN Huaqiang, et al. J Chin Ceram Soc, 2017, 45(11): 1569-1581.

    [25] GOSPODINOV P N, KAZANDJIEV R F, PARTALIN T A, et al. Diffusion of sulfate ions into cement stone regarding simultaneous chemical reactions and resulting effects[J]. Cem Concr Res, 1999, 29(10): 1591-1596.

    [26] ZHANG Wensheng, ZHANG Jinshan, YE Jiayuan, et al. J Chin Ceram Soc, 2017, 45(5): 631-638.

    [27] CEFIS N, COMI C. Chemo-mechanical modelling of the external sulfate attack in concrete[J]. Cem Concr Res, 2017, 93: 57-70.

    [28] JIANG Lei, NIU Ditao. Bull Chin Ceram Soc, 2017, 36(1): 51-56.

    [29] ZHU Hongbo, YAN Meizhu, LI Chen, et al. J Build Mater, 2015, 18(2): 275-280.

    ZHANG Shaohui, WANG Yan, GUO Bingbing, LV Yao, NIU Ditao. Evolution of Fractal Characteristics of Concrete Pore Structure Under Coupling Effect of Temperature Field and Sulphate Attack[J]. Journal of the Chinese Ceramic Society, 2024, 52(2): 474
    Download Citation