Bertolini, L., Elsener, B., Pedeferri, P., Polder, R.: Corrosion of Steel in Concrete: Prevention, Diagnosis, Repair. Wiley-VCH, Weinheim (2000)
Broomfield, J.P.: Corrosion of Steel in Concrete. Taylor & Francis, New York (2007)
Revie, R.W., Uhlig, H.H.: Corrosion and Corrosion Control, 4th edn. Wiley-Interscience, New York (2008)
Bohni, H.: Corrosion in Concrete Structures. CRC Press, New York (2005)
Kurtis, K.E., Mehta, P.K.: A critical review of deterioration of concrete due to corrosion of reinforcing steel. ACI Spec. Publ. 170, 535–554 (1997)
Mehta, P.K., Monteiro, P.J.M.: Concrete: Microstructure, Properties, and Materials. McGraw-Hill Professional, New York (2005)
Koch, G.H., Brongers, M., P.H., Thompson, N.G., Virmani, Y.P., Payer, J.H.: Corrosion cost and preventative strategies in the United States. In: NACE International (2003)
Samson, E., Marchand, J.: Modeling the transport of ions in unsaturated cement-based materials. Comput. Struct. 85(23–24), 1740–1756 (2007). doi:10.1016/j.compstruc.2007.04.008
Samson, E., Marchand, J.: Numerical solution of the extended Nernst–Planck model. J. Colloid Interface Sci. 215(1), 1–8 (1999). doi:10.1006/jcis.1999.6145
Azad, V.J., Li, C., Verba, C., Ideker, J.H., Isgor, O.B.: A COMSOL–GEMS interface for modeling coupled reactive-transport geochemical processes. Comput. Geosci. UK 92, 79–89 (2016)
Karadakis, K., Azad, V.J., Ghods, P., Isgor, O.B.: Numerical investigation of the role of mill scale crevices on the corrosion initiation of carbon steel reinforcement in concrete. J. Electrochem. Soc. 163(6), C306–C315 (2016)
Martin-Perez, B., Pantazopoulou, S.J., Thomas, M.D.A.: Numerical solution of mass transport equations in concrete structures. Comput. Struct. 79(13), 1251–1264 (2001). doi:10.1016/S0045-7949(01)00018-9
Isgor, O.B., Razaqpur, A.G.: Finite element modeling of coupled heat transfer, moisture transport and carbonation processes in concrete structures. Cem. Concr. Comp. 26(1), 57–73 (2004). doi:10.1016/S0958-9465(02)00125-7
van der Zanden, A.J.J., Taher, A., Arends, T.: Modelling of water and chloride transport in concrete during yearly wetting/drying cycles. Constr. Build. Mater. 81, 120–129 (2015)
Marchand, J., Samson, E.: Predicting the service-life of concrete structures—Limitations of simplified models. Cem. Concr. Comp. 31(8), 515–521 (2009). doi:10.1016/j.cemconcomp.2009.01.007
Florea, M.V.A., Brouwers, H.J.H.: Chloride binding related to hydration products Part I: ordinary portland cement. Cem. Concr. Res. 42(2), 282–290 (2012)
Yuan, Q., Shi, C.J., De Schutter, G., Audenaert, K., Deng, D.H.: Chloride binding of cement-based materials subjected to external chloride environment—a review. Constr. Build. Mater. 23(1), 1–13 (2009)
Birnin-Yauri, U.A., Glasser, F.P.: Friedel’s salt, Ca2Al(OH)(6)(Cl, OH)center dot 2H(2)O: its solid solutions and their role in chloride binding. Cem. Concr. Res. 28(12), 1713–1723 (1998)
Glasser, F.P., Kindness, A., Stronach, S.A.: Stability and solubility relationships in AFm phases—part 1. Chloride, sulfate and hydroxide. Cem. Concr. Res. 29(6), 861–866 (1999)
Suryavanshi, A.K., Scantlebury, J.D., Lyon, S.B.: Mechanism of Friedel’s salt formation in cements rich in tri-calcium aluminate. Cem. Concr. Res. 26(5), 717–727 (1996)
Plusquellec, G., Nonat, A.: Interactions between calcium silicate hydrate (C–S–H) and calcium chloride, bromide and nitrate. Cem. Concr. Res. 90, 89–96 (2016)
Martin-Perez, B., Zibara, H., Hooton, R.D., Thomas, M.D.A.: A study of the effect of chloride binding on service life predictions. Cem. Concr. Res. 30(8), 1215–1223 (2000)
Neville, A.M.: Properties of Concrete, 4th edn. Pearson Education Limited, Essex (1996)
Samson, E., Marchand, J., Robert, J.L., Bournzel, J.P.: Modelling ion diffusion mechanisms in porous media. Int. J. Numer. Meth. Eng. 46(12), 2043–2060 (1999)
Davies, C.: Electrochemistry, Newnes. In: London (1967)
Nilsson, L.O., Massat, M., Tang, L.: The effect of non-linear chloride binding on the prediction of chloride penetration into concrete structutres. In: Malhotra, V.M. (ed.) Durability of Concrete, pp. 469–486. American Concrete Institute (ACI), Detroit (1994)
Tang, L.P., Nilsson, L.O.: Chloride binding-capacity and binding isotherms of OPC pastes and mortars. Cem. Concr. Res. 23(2), 247–253 (1993)
Kulik, D.A., Wagner, T., Dmytrieva, S.V., Kosakowski, G., Hingerl, F.F., Chudnenko, K.V., Berner, U.R.: GEM-selektor geochemical modeling package: revised algorithm and GEMS3K numerical kernel for coupled simulation codes. Comput. Geosci. 17(1), 1–24 (2013). doi:10.1007/s10596-012-9310-6
Wagner, T., Kulik, D.A., Hingerl, F.F., Dmytrieva, S.V.: Gem-selektor geochemical modeling package: TSolmod library and data interface for multicomponent phase models. Can. Miner. 50(5), 1173–1195 (2012). doi:10.3749/canmin.50.5.1173
Kulik, D., Berner, U., Curti, E.: Modelling chemical equilibrium partitioning with the GEMS-PSI code (2004)
Kulik, D.A.: Gibbs energy minimization approach to modeling sorption equilibria at the mineral-water interface: thermodynamic relations for multi-site-surface complexation. Am. J. Sci. 302(3), 227–279 (2002). doi:10.2475/ajs.302.3.227
Johnson, J.W., Oelkers, E.H., Helgeson, H.C.: SUPCRT92: a software package for calculating the standard molal thermodynamic properties of minerals, gases, aqueous species, and reactions from 1 to 5000 bar and 0 to 1000 C. Comput. Geosci. UK 18(7), 899–947 (1992)
Hummel, W., Berner, U., Curti, E., Pearson, F., Thoenen, T.: Nagra/PSI chemical thermodynamic data base. Radiochim. Acta 90(9–11), 805–813 (2002)
Lothenbach, B., Winnefeld, F.: Thermodynamic modelling of the hydration of portland cement. Cem. Concr. Res. 36(2), 209–226 (2006). doi:10.1016/j.cemconres.2005.03.001
Loser, R., Lothenbach, B., Leemann, A., Tuchschmid, M.: Chloride resistance of concrete and its binding capacity—comparison between experimental results and thermodynamic modeling. Cem. Concr. Comp. 32(1), 34–42 (2010)
Zibara, H.: Binding of External Chlorides by Cement Pastes. University of Toronto, Toronto (2001)
Powers, T.C., Brownyard, T.L.: Studies of the physical properties of hardened portland cement paste. J. Am. Concr. Inst. 18(3), 249–336 (1946)
Lumley, J.S., Gollop, R.S., Moir, G.K., Taylor, H.F.W.: Degrees of reaction of the slag ln some blends with portland cements. Cem. Concr. Res. 26(1), 139–151 (1996)
Zeng, Q., Li, K.F., Fen-chong, T., Dangla, P.: Determination of cement hydration and pozzolanic reaction extents for fly-ash cement pastes. Constr. Build. Mater. 27(1), 560–569 (2012)
Boddy, A., Bentz, E., Thomas, M.D.A., Hooton, R.D.: An overview and sensitivity study of a multimechanistic chloride transport model. Cem. Concr. Res. 29(6), 827–837 (1999)