References
- Kwon, S.J., Na, U.J., Park, S.S., Jung, S.H. (2009). Service lifeprediction of concrete wharves with early-aged crack:Probabilistic approach for chloride diffusion, Structural Safety,31, 75-98. https://doi.org/10.1016/j.strusafe.2008.03.004
- Pradhan, B. (2014). Corrosion behavior of steel reinforcementin concrete exposed to composite chloride-sulfate environment,Construction and Building Materials, 72, 398-410. https://doi.org/10.1016/j.conbuildmat.2014.09.026
- NT Build 443. Concrete, Hardened: Accelerated Chloride Penetration,Nordtest, Finland, 1995.
- NT Build 492. Concrete, Mortar and Cement-based Repair Materials:Chloridemigration Coefficient from Non-steady-state MigrationExperiments, Nordtest, Finland, 1999.
- ASTM C 1202. Standard Test Method for Electrical Indication of Concrete's Ability to Resist Chloride Ion Penetration. Annual book of ASTM standards. American Society for Testing and Materials; 2005.
- Oh, B.H., Jang, S.Y. (2007). Effects of material and environmental parameters on chloride penetration profiles in concrete structures, Cement and Concrete Research, 37(1), 398-410. https://doi.org/10.1016/j.cemconres.2006.02.004
- Choi, Y.C., Park, B., Pang, G.S., Lee, K.M., Choi, S. (2017). Modelling of chloride diffusivity in concrete considering effect of aggregates, Construction and Building Materials, 136, 81-87. https://doi.org/10.1016/j.conbuildmat.2017.01.041
- Park, K.P., Kim, S.S., Lee, S.T., Kim, J.P., Jung, H.S. (2011). Properties on the freeze-thaw of concrete subjected to seawater attack, Journal of the Korea Concrete Institute, 23(1), 23-30 [in Korean]. https://doi.org/10.4334/JKCI.2011.23.1.023
- Kim, S.W., Choi, K.B., Yun, H.D. (2010). Effect of freeze-thaw cycles after cracking damage on the flexural behavior of reinforced concrete beams, Journal of the Korea Concrete Institute, 22(3), 399-407 [in Korean]. https://doi.org/10.4334/JKCI.2010.22.3.399
- Cho, T.J., Kim, L.H., Cho, H.N. (2008). Development of deterioration prediction model and reliability model for the cyclic freeze-thaw of concrete structures, Journal of the Korea Concrete Institute, 20(1), 13-22 [in Korean]. https://doi.org/10.4334/JKCI.2008.20.1.013
- Pang, G.S., Chae, S.T. Chang, S.P. (2009). Predicting model for pore structure of concrete including interface transition zone between aggregate and cement paste, International Journal of Concrete Structures and Materials, 3(2), 81-90. https://doi.org/10.4334/IJCSM.2009.3.2.081
- Lide, D.R. (2000). CRC Handbook of Chemistry and Physics, 81st Edition. CRC Press, Boca Raton, USA.
- Hernandez, M.G., Anaya, J.J., Ullate, L.G., Cegarra, M., Sanchez, T. (2006). Application of a micromechanical model of three phases to estimating the porosity of mortar by ultrasound, Cement and Concrete Research, 36(4), 617-624. https://doi.org/10.1016/j.cemconres.2004.07.018
- Kendall, K. (1984). In Physics and Chemistry in Porous Media, Johnson, American Institute of Physics, New York, USA.