[1] Shen, L., Zhang, L., Yang, X., Di Luzio, G., Xu, L., Wang, H., & Cao, M. Multiscale cracking pattern-based homogenization model of water permeability in hybrid fiber-reinforced concrete after high-temperature exposure. Journal of Building Engineering, 84(2) (2024) 1-17.
[2] Zhang, G., Zheng, H., Wei, X., Li, Z., Yan, Z., & Chen, X. Concrete mechanical properties and pore structure influenced by high permeability water pressure. Developments in the Built Environment, 17(2) (2024) 1-11.
[3] Zeng, W., Wang, W., Pan, J., & Liu, G. Effect of steel fiber on the permeability of freeze-thaw damaged concrete under splitting tensile and compressive loads. Journal of Building Engineering, 80(2) (2023) 1-14.
[4] Zeng, W., Zhao, X., Zou, B., & Chen, C. Topographical characterization and permeability correlation of steel fiber reinforced concrete surface under freeze-thaw cycles and NaCl solution immersion. Journal of Building Engineering, 80(4) (2023) 1-17.
[5] Zhang, J., Zhou, L., Nie, Q., Wu, H., & Wu, L. Effects of calcium sulfate whiskers and basalt fiber on gas permeability and microstructure of concrete. Construction and Building Materials, 411(1) (2024) 134369.
[6] Yang, J., Dong, Q., Chen, X., Shi, B., & Wang, X. Evaluation of concrete surface permeability: A dynamic water film-based approach. Measurement, 224(1) (2024) 113863.
[7] Mandelbrot, B. B., & Mandelbrot, B. B. The fractal geometry of nature. New York: WH freeman. 5 (1982) 468 pages.
[8] Xuan, W., Chen, X., Yang, G., Dai, F., & Chen, Y. Impact behavior and microstructure of cement mortar incorporating waste carpet fibers after exposure to high temperatures. Journal of Cleaner Production, 187(7) (2018) 222-236.
[9] Gao, Y., Jiang, J., De Schutter, G., Ye, G., & Sun, W. Fractal and multifractal analysis on pore structure in cement paste. Construction and Building Materials, 69(3) (2014) 253-261.
[10] Chen, X., Zhou, J., & Ding, N. Fractal characterization of pore system evolution in cementitious materials. KSCE Journal of Civil Engineering, 19(1) (2015) 719-724.
[11] Ma, H., Sun, J., Wu, C., Yi, C., & Li, Y. Study on the pore and microstructure fractal characteristics of alkali-activated coal gangue-slag mortars. Materials, 13(11) (2020) 2442.
[12] Mahamud, M., López, Ó., Pis, J. J., & Pajares, J. A. Textural characterization of chars using fractal analysis. Fuel Processing Technology, 86(2) (2004) 135-149.
[13] Naderi، M. Determination of concrete، stone، mortar، brick and other construction materials permeability with cylindrical chamber method, Registration of patent in Companies and industrial property Office، Reg. N. 67726، Iran, (2010).
[14] Naderi, M., & Kaboudan, A. Experimental study of the effect of aggregate type on concrete strength and permeability. Journal of Building Engineering, 37 (2) (2021) 1-11.
[15] BS EN 12390-8, Testing Hardened Concrete. Depth of Penetration of Water under Pressure, British Standards Institution, London. (2009).
[16] Naderi, M., & Kaboudan, A. Cylindrical Chamber: A New In Situ Method for Measuring Permeability of Concrete with and without Admixtures. Journal of Testing and Evaluation, 48(3) (2020) 2225-2241.
[17] ASTM C1583, Standard test method for tensile strength of concrete surfaces and the bond strength or tensile strength of concrete repair and overlay materials by direct tension (pull-off method), West Conshohocken PA, American Society for Testing and Materials (2004).
[18] Pereira, E., & de Medeiros, M. H. F. Pull Off test to evaluate the compressive strength of concrete: an alternative to Brazilian standard techniques. Revista IBRACON de Estruturas e Materiais, 5(4) (2012) 757-780.
[19] Naderi, Mahmood, and Alireza Kaboudan. Evaluation of the effect of strength, duration, water pressure and casting direction on concrete permeability. Amirkabir Journal of Civil Engineering 52, no. 9 (2020): 2379-2398.
[20] Naderi, Mahmood, and Alireza Kaboudan. Evaluation of the Equation of Water Penetration into Concrete using Results of “Cylindrical Chamber” Method. Amirkabir Journal of Civil Engineering 53, no. 5 (2021): 2175-2194.
[21] Naderi, Mahmood, and Alireza Kaboudan. Effects of Concrete Constituent Materials on the Penetration of Surface Water. Amirkabir Journal of Civil Engineering 53, no. 8 (2021): 3467-3480.
[22] Parhizkari, Majid, Ali Saberi Vaezaneh, and Mahmood Naderi. The effect of penetration-reducing materials on concrete permeability and strength with. Amirkabir Journal of Civil Engineering 55, no. 1 (2023): 19-40.
[23] Kaboudan, Alireza, and Mohammadreza Keshtkar. Studying the permeability and strength of concretes containing silica fume, zeolite and fly ash using “Cylindrical chamber” method and British standard. Journal of Structural and Construction Engineering 7, no. 3 (2020): 92-113.
[24] Naderi, Mahmood, Ali Saberi Vaezaneh, and Majid Parhizkari. The effect of different temperature cycles on permeability and surface resistance of concretes containing permeability-reducing materials. Amirkabir Journal of Civil Engineering 55, no. 9 (2023): 1845-1862.
[25] Naderi, Mahmood, and Alireza Kaboudan. The effect of mineral admixtures on permeability, porosity and electrical resistivity of concrete. Amirkabir Journal of Civil Engineering 54, no. 3 (2022): 933-958.
[26] Kaboudan, Alireza, Mahmood Naderi, and Majid Amin Afshar. The efficiency of Darcy and two-dimensional diffusion flow models to estimate water penetration into concrete. Journal of Building Engineering 34 (2021): 102012.
[27] Kaboudan, A. R., and M. Naderi. Effect of aggregates on the compressive strength and permeability of concrete. Sharif Journal of Civil Engineering 37, no. 4.1 (2022): 81-92.
[28] M. Naderi, and F. Mohammadi. Assessing The Influence Of Concrete Strength On Its Permeability Of Concrete Channel Used For Irrigation In Qazvin Province. Sharif Journal of Civil Engineering 34, no. 2.2 (2018): 143-150.
[29] ASTM C136-19; Standard Test Method for Sieve Analysis of Fine and Coarse Aggregates. ASTM International: West Conshohocken, PA, USA. (2019).
[30] ASTM C127-15; Standard Test Method for Relative Density (Specific Gravity) and Absorption of Fine Aggregate. ASTM International, West Conshohocken, PA. (2015).
[31] ASTM C128-15; Standard Test Method for Relative Density (Specific Gravity) and Absorption of Coarse Aggregate. ASTM International, West Conshohocken, PA. (2015).
[32] Abràmoff, M. D., Magalhães, P. J., & Ram, S. J. Image processing with ImageJ. Biophotonics international, 11(7) (2004) 36-42.
[33] Standard, BS. Testing hardened concrete. Compressive Strength of Test Specimens, BS EN, (2019). 12390-3.
[34] Xu, P. A discussion on fractal models for transport physics of porous media. Fractals, 23(03) (2015) 1530001.
[35] Yu, B., & Cheng, P. A fractal permeability model for bi-dispersed porous media. International journal of heat and mass transfer, 45(14) (2002) 2983-2993.
[36] Kim, J., & Choi, S. Fractal-based microstructure reconstruction to predict the permeability of cement pastes. Construction and Building Materials, 366(4) (2023) 130157.
[37] Liu, H., Xie, Z., Yu, R., & Zhang, N. A New Three-dimensional Fractal Dimension Model to Describe the
Complexity of Concrete Pores. Journal of Advanced Concrete Technology, 20(3) (2022) 127-138.
[38] Wu, C. Q., Xu, H. J., & Zhao, C. Y. A new fractal model on fluid flow/heat/mass transport in complex porous structures. (2020). RETRACTED.
[39] Wheatcraft, S. W., & Tyler, S. W. An explanation of scale‐dependent dispersivity in heterogeneous aquifers using concepts of fractal geometry. Water Resources Research, 24(4) (1988) 566-578.
[40] Xu, P., & Yu, B. Developing a new form of permeability and Kozeny–Carman constant for homogeneous porous media by means of fractal geometry. Advances in water resources, 31(1), (2008) 74-81.
[41] Yu, B., & Liu, W. Fractal analysis of permeabilities for porous media. AIChE journal, 50(1), (2004) 46-57.
[42] Bo-Ming, Y. Fractal character for tortuous streamtubes in porous media. Chinese Physics Letters, 22(1), (2005) 158. [43] Mandelbrot, B. B., & Aizenman, M. Fractals: form, chance, and dimension, (1979).
[44] Mandelbrot, B. B., Passoja, D. E., & Paullay, A. J. Fractal character of fracture surfaces of metals. Nature, 308(5961), (1984). 721-722.
[45] Wei, X., Xiao, L., & Li, Z. Prediction of standard compressive strength of cement by the electrical resistivity measurement. Construction and Building Materials, 31, (2012). 341-346.
[46] KABOUDAN., A. Experimental and theoretical study of the effect of concrete constituent materials on the permeability of hardened concrete using “Cylindrical chamber” method. . Ph.D. Student. , Imam Khomeini International University (2020).
[47] Murata, J., Ogihara, Y., Koshikawa, S., & Itoh, Y. (2004). Study on watertightness of concrete. Materials Journal, 101(2), 107-116.
[48] Torrent, R. J., Neves, R. D., & Imamoto, K. I. Concrete permeability and durability performance: from theory to field applications. CRC Press. (2021).
[59] Basheer, L., Kropp, J., & Cleland, D. J. Assessment of the durability of concrete from its permeation properties: a review. Construction and building materials, 15(2-3), (2001). 93-103.
[50] Teriqet, A., Mohammadi., M., & Medras Y. Thermodynamic investigation of hydration and chemical shrinkage of cement containing slag. Sharif. J. of Civil Eng, 34(4) (2019) 82-57.
[51] Wei, J., Chen, Z., Liu, J., Liang, J., & Shi, C. Review on the characteristics and multi-factor model between pore structures with compressive strength of coral aggregate. Construction and Building Materials, 370(4) (2023) 130326.
[52] Taylor, H. F. Cement chemistry London: Thomas Telford. Boooook. (1997). (Vol. 2, p. 459).
[53] Kosmatka, S. H., Panarese, W. C., & Kerkhoff, B. Design and control of concrete mixtures Skokie, IL: Portland Cement Association. Vol. 5420. (2002). 60077-1083.
[54] Siddiqui, M. S., Nyberg, W., Smith, W., Blackwell, B., & Riding, K. A. Effect of curing water availability and composition on cement hydration. ACI Materials Journal, 110(3), (2013) 315-322.
[55] Springenschmid, R. Betontechnologie für die Praxis, 1st ed.; Beuth Verlag GmbH: Berlin, Germany, 2007.
[56] Alexander, M., Bentur, A., & Mindess, S. Durability of concrete: design and construction (Vol. 20). (2017). CRC Press.
[57] Verein Deutscher Zementwerke. Zement-Taschenbuch, 51th ed.; Verlag Bau + Technik.
[58] Naderi, M., Kaboudan, A. R., & Amin Afshar, M. Studying The Strength And Diffusion And Permeability Coefficients Of Concretes Containing Silica Fume, Fly Ash, Zeolite And Limestone Powder. Sharif Journal of Civil Engineering, 36(2) (2020) 13-25.
[59] Kim, J., & Choi, S. Fractal-based microstructure reconstruction to predict the permeability of cement pastes. Construction and Building Materials, 366(5) (2023) 130157.
[60] Naderi, M., Kaboudan, A., & Akhavan Sadighi, A. Comparative study on water permeability of concrete using cylindrical chamber method and British standard and its relation with compressive strength. Journal of Rehabilitation in Civil Engineering, 6(1) (2018) 116-131.
[61] Naderi, M., B. Maleki, and A. F Amini. Assessing The Permeability Of The Oil And Its Components Into Porous Concrete Using New Cylindrical Chamber Method. Sharif Journal of Civil Engineering 33, no. 1.1 (2017): 89-93.