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Review

Concrete anti-carbonation coatings: a review

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Pages 337-356 | Received 21 Jun 2020, Accepted 28 Jul 2020, Published online: 10 Aug 2020

References

  • Klopfer H. The carbonation of external concrete and how to combat it. Bautenschutz Bausanieruniz. 1978;3:86–97.
  • De La Rilem R. CPC-18 Measurement of hardened concrete carbonation depth. Mat Struct. 1988;21:453–455.
  • Aguirre-Guerrero AM, de Gutiérrez RM. Assessment of corrosion protection methods for reinforced concrete. In Pacheco-Torgal F, Melchers R, de Belie N, Shi X, Tittelboom KV, Perez AS, editors. Eco-efficient repair and rehabilitation of concrete infrastructures. Cambridge: Elsevier; 2018: 315–353.
  • Pan X, Shi Z, Shi C, et al. A review on concrete surface treatment part I: types and mechanisms. Constr Build Mater. 2017;132:578–590.
  • Ho DW, Harrison RS. Influence of surface coatings on carbonation of concrete. J Mater Civ Eng. 1990;2(1):35–44.
  • Ho DWS, Lewis RK. The specification of concrete for reinforcement protection—performance criteria and compliance by strength. Cem Concr Res. 1988;18(4):584–594.
  • Sanjuán MA, del Olmo C. Carbonation resistance of one industrial mortar used as a concrete coating. Build Environ. 2001;36(8):949–953.
  • Basheer PAM, Basheer L, Cleland DJ, et al. Surface treatments for concrete: assessment methods and reported performance. Constr Build Mater. 1997;11(7–8):413–429.
  • Zafeiropoulou T, Rakanta E, Batis G. Performance evaluation of organic coatings against corrosion in reinforced cement mortars. Prog Org Coat. 2011;72(1–2):175–180.
  • Thomas NL. The barrier properties of paint coatings. Prog Org Coat. 1991;19(2):101–121.
  • Meares P. Transient permeation of organic vapors through polymer membranes. J Appl Polym Sci. 1965;9(3):917–932.
  • Tupy` M, Štefková D, Sotiriadis K, et al. Recycled poly (vinyl butyral) used as a barrier to prevent mortar carbonation. Adv Mater Res. 2014;1000:28–34.
  • Park DC. Carbonation of concrete in relation to CO2 permeability and degradation of coatings. Constr Build Mater. 2008;22(11):2260–2268.
  • Swamy RN, Tanikawa S. An external surface coating to protect concrete and steel from aggressive environments. Mater Struct. 1993;26(8):465–478.
  • Almusallam A, Khan FM, Maslehuddin M. Performance of concrete coating under varying exposure conditions. Mat Struct. 2002;35(8):487–494.
  • Li G, Guo C, Gao X, et al. Time dependence of carbonation re-sistance of concrete with organic film coatings. Constr Build Mater. 2016;114:269–275.
  • Medeiros MH, Helene P. Surface treatment of reinforced concrete in marine environment: influence on chloride diffusion coefficient and capillary water absorption. Constr Build Mater. 2009;23(3):1476–1484.
  • Almusallam AA, Khan FM, Dulaijan SU, et al. Effectiveness of surface coatings in improving concrete durability. Cem Concr Compos. 2003;25(4–5):473–481.
  • Aguiar JB, Camões A, Moreira PM. Coatings for concrete protection against aggressive environments. Adv Concrete Technol. 2008;6(1):243–250.
  • Aguiar JB, Júnior C. Carbonation of surface protected concrete. Constr Build Mater. 2013;49:478–483.
  • Merah A, Khenfer MM, Korichi Y. The effect of industrial coating type acrylic and epoxy resins on the durability of concrete subjected to accelerated carbonation. J Adhes Sci Technol. 2015;29(22):2446–2460.
  • Zafeiropoulou T, Rakanta E, Batis G. Carbonation resistance and anticorrosive properties of organic coatings for concrete structures. JSEMAT. 2013;03(01):67–74.
  • Chi J, Zhang G, Xie Q, et al. High performance epoxy coating with cross-linkable solvent via Diels-Alder reaction for anti-corrosion of concrete. Prog Org Coat. 2020;139:105473.
  • Zheng W, Chen WG, Feng T, et al. Enhancing chloride ion penetration resistance into concrete by using graphene oxide reinforced waterborne epoxy coating. Prog Org Coat. 2020;138:105389.
  • Zhang G, Xie Q, Ma C, et al. Permeable epoxy coating with reactive solvent for anticorrosion of concrete. Prog Org Coat. 2018;117:29–34.
  • Saravanan K, Sathiyanarayanan S, Muralidharan S, et al. Performance evaluation of polyaniline pigmented epoxy coating for corrosion protection of steel in concrete environment. Prog Org Coat. 2007;59(2):160–167.
  • Mei Y, Xu J, Jiang L, et al. Enhancing corrosion resistance of epoxy coating on steel reinforcement by aminobenzoate intercalated layered double hydroxides. Prog Org Coat. 2019;134:288–296.
  • Song XF, Zhang D, He TS. Corrosion behaviour of reinforcing steel embedded in a concrete surface treated by in situ synthesised super-absorbent resin. Mag Concr Res. 2013;65(1):63–70.
  • Li G, Dong L, Bai Z, et al. Predicting carbonation depth for concrete with organic film coatings combined with ageing effects. Constr Build Mater. 2017;142:59–65.
  • Pan X, Shi Z, Shi C, et al. A review on surface treatment for concrete–Part 2: performance. Constr Build Mater. 2017;133:81–90.
  • Papadakis VG, Fardis MN, Vayenas CG. Effect of composition, environmental factors and cement-lime mortar coating on concrete carbonation. Mater Struct. 1992;25(5):293–304.
  • Lee HS, Wang XY. Prediction of the carbonation depth of concrete with a mortar finish. KEM. 2008;385–387:633–636.
  • Tsao W-H, Liang M-T, Chang J-J, et al. Effect of mortar coating on concrete carbonation. J Mar Sci Technol. 2015;23(4):420–430.
  • Benchiheub D, Amouri C, Houari H, et al. Effect of natural pozzolana and polypropylene fibers on the performance of lime mortar for old buildings restoration. J Adhes Sci Technol. 2018;32(12):1324–1340.
  • de Oliveira Andrade JJ, Possan E, Squiavon JZ, et al. Evaluation of mechanical properties and carbonation of mortars produced with construction and demolition waste. Constr Build Mater. 2018;161:70–83.
  • Huang NM, Chang JJ, Liang MT. Effect of plastering on the carbonation of a 35-year-old reinforced concrete building. Constr Build Mater. 2012;29:206–214.
  • Janotka I, Bačuvčík M, Paulík P. Low carbonation of concrete found on 100-year-old bridges. Case Stud Constr Mater. 2018;8:97–115.
  • Brenna A, Bolzoni F, Beretta S, et al. Long-term chloride-induced corrosion monitoring of reinforced concrete coated with commercial polymer-modified mortar and polymeric coatings. Constr Build Mater. 2013;48:734–744.
  • Diamanti MV, Brenna A, Bolzoni F, et al. Effect of polymer modified cementitious coatings on water and chloride permeability in concrete. Constr Build Mater. 2013;49:720–728.
  • Eom I-H, Jeong E-C, Kim Y-S. A study on carbonation resistance of concrete using surface-coated lightweight aggregates. J Korea Inst Build Construct. 2014;14(1):21–28.
  • Li D, Chen B, Sun H, et al. Evaluating the effect of external and internal factors on carbonation of existing concrete building structures. Constr Build Mater. 2018;167:73–81.
  • Moon HY, Shin DG, Choi DS. Evaluation of the durability of mortar and concrete applied with inorganic coating material and surface treatment system. Constr Build Mater. 2007;21(2):362–369.
  • Zhang Z, Yao X, Wang H. Potential application of geopolymers as protection coatings for marine concrete III. Field experiment. Appl Clay Sci. 2012;67-68:57–60.
  • Li Q, Li Z, Yuan G, et al. The effect of a proprietary inorganic coating on compressive strength and carbonation depth of simulated fire-damaged concrete. Mag Concr Res. 2013;65(11):651–659.
  • Franzoni E, Pigino B, Pistolesi C. Ethyl silicate for surface protection of concrete: performance in comparison with other inorganic surface treatments. Cem Concr Compos. 2013;44:69–76.
  • Ates M. A review on conducting polymer coatings for corrosion protection. J Adhes Sci Technol. 2016;30(14):1510–1536.
  • Sun HY, Yang Z, Shan GL, et al. Current situation of research and application of silicone water repellent for protecting reinforced concrete. Paper presented at: 7th International Conference on Bridge Maintenance, Safety and Management; 2014 July 7–11; Shanghai, China.
  • Wang HS, Wang W, Wang R, et al. Carbonation of surface protected concrete with silicone material. AMM. 2014;584–586:883–886.
  • Pan X, Shi C, Zhang J, et al. Effect of inorganic surface treatment on surface hardness and carbonation of cement-based materials. Cem Concr Compos. 2018;90:218–224.
  • De Muynck W, Debrouwer D, Belie ND, et al. Bacterial carbonate precipitation improves the durability of cementitious materials. Cem Concr Res. 2008;38(7):1005–1014.
  • Li PH, Qu WJ. Microbial carbonate mineralization as an improvement method for durability of concrete structures. AMR. 2011;365:280–286.
  • Yodmalai D, Sahamitmongkol R, Tangtermsirikul S, et al. Carbonation resistance of concrete with crystalline material coating. Mag Concr Res. 2011;63(8):573–582.
  • Motohashi K. Evaluation methods of concrete carbonation suppressive performance of surface coating. Paper presented at: Third International Conference on Sustainable Construction Materials and Technologies; 2013, August 19–21; Kyoto, Japan.
  • Lee H-M, Lee H-S, Min S, et al. Carbonation-induced corrosion initiation probability of rebars in concrete with/without finishing materials. Sustainability. 2018;10(10):3814.
  • Ding Z, Fang Y, J.-F S, et al. In situ precipitation for the surface treatment and repair of cement-based materials. J Adhes Sci Technol. 2020;34(11):1233–1240.
  • Corcione CE, Striani R, Capone C, et al. Preliminary study of the application of a novel hydrophobic photo-polymerizable nano-structured coating on concrete substrates. Prog Org Coat. 2018;121:182–189.
  • Delucchi M, Barbucci A, Cerisola G. Crack-bridging ability of organic coatings for concrete: influence of the method of concrete cracking, thickness and nature of the coating. Prog Org Coat. 2004;49(4):336–341.
  • Delucchi M, Barbucci A, Temtchenko T, et al. Study of the crack-bridging ability of organic coatings for concrete: analysis of the mechanical behaviour of unsupported and supported films. Prog Org Coat. 2002;44(4):261–269.
  • Delucchi M, Barbucci A, Cerisola G. Crack-bridging ability and liquid water permeability of protective coatings for concrete. Prog Org Coat. 1998;33(1):76–82.
  • Li G, Hu W, Cui H, et al. Long-term effectiveness of carbonation resistance of concrete treated with nano-SiO2 modified polymer coatings. Constr Build Mater. 2019;201:623–630.
  • Delucchi M, Cerisola G. Influence of thickness on mechanical properties and crack-bridging ability of coatings for concrete. Prog Org Coat. 2005;54(4):305–309.
  • Horgnies M, Willieme P, Gabet O. Influence of the surface properties of concrete on the adhesion of coating: characterization of the interface by peel test and FT-IR spectroscopy. Prog Org Coat. 2011;72(3):360–379.
  • Giurgiutiu V, Lyons J, Petrou M, et al. Fracture mechanics testing of the bond between composite overlays and a concrete substrate. J Adhes Sci Technol. 2001;15(11):1351–1371.
  • Saraswathy V, Rengaswamy NS. Adhesion of an acrylic paint coating to a concrete substrate. J Adhes Sci Technol. 1998;12(7):681–694.
  • Barroso De Aguiar J, Cruz MD. A study of the adhesion between hydraulic mortars and concrete. J Adhes Sci Technol. 1998;12(11):1243–1251.
  • Hassan MM, Dylla H, Mohammad LN, et al. Evaluation of the durability of titanium dioxide photocatalyst coating for concrete pavement. Constr Build Mater. 2010;24(8):1456–1461.
  • Barbucci A, Delucchi M, Goretta L, et al. Electrochemical and physico-chemical characterization of fluorinated organic coatings for steel and concrete protection: influence of the pigment volume concentration. Prog Org Coat. 1998;33(2):139–148.
  • Seneviratne AMG, Sergi G, Page CL. Performance characteristics of surface coatings applied to concrete for control of reinforcement corrosion. Constr Build Mater. 2000;14(1):55–59.
  • Sergi G, Seneviratne AMG, Maleki MT, et al. Control of reinforcement corrosion by surface treatment of concrete. Proc Inst Civil Eng-Struct Build. 2000;140(1):85–100.
  • Selvaraj R, Selvaraj M, Iyer SVK. Studies on the evaluation of the performance of organic coatings used for the prevention of corrosion of steel rebars in concrete structures. Prog Org Coat. 2009;64(4):454–459.
  • Chen Y, Wang R, Wang H, et al. Study on PVA-siloxane mixed emulsion coatings for hydrophobic cement mortar. Prog Org Coat. 2020;147:105775.
  • Shen L, Jiang H, Wang T, et al. Performance of silane-based surface treatments for protecting degraded historic concrete. Prog Org Coat. 2019;129:209–216.
  • Shi L, Liu J, Liu J. Effect of polymer coating on the properties of surface layer concrete. Procedia Eng. 2012;27:291–300.
  • Tsukagoshi M, Miyauchi H, Tanaka K. Protective performance of polyurethane waterproofing membrane against carbonation in cracked areas of mortar substrate. Constr Build Mater. 2012;36:895–905.
  • Beushausen H, Burmeister N. The use of surface coatings to increase the service life of reinforced concrete structures for durability class XC. Mater Struct. 2015;48(4):1243–1252.
  • Li G, Yang B, Guo C, et al. Time dependence and service life prediction of chloride resistance of concrete coatings. Constr Build Mater. 2015;83:19–25.
  • Lo TY, Liao W, Wong CK, et al. Evaluation of carbonation resistance of paint coated concrete for buildings. Constr Build Mater. 2016;107:299–306.
  • Delucchi M, Cerisola G. Influence of temperature on crack-bridging ability of coatings for concrete. Prog Org Coat. 2012;75(3):253–258.
  • Djouani F, Connan C, Delamar M, et al. Cement paste–epoxy adhesive interactions. Constr Build Mater. 2011;25(2):411–423.
  • Djouani F, Connan C, Chehimi MM, et al. Interfacial chemistry of epoxy adhesives on hydrated cement paste. Surf Interface Anal. 2008;40(3–4):146–150.
  • Djouani F, Chehimi MM, Benzarti K. Interactions of fully formulated epoxy with model cement hydrates. J Adhes Sci Technol. 2013;27(5–6):469–489.
  • Benzarti K, Chataigner S, Quiertant M, et al. Accelerated ageing behaviour of the adhesive bond between concrete specimens and CFRP overlays. Constr Build Mater. 2011;25(2):523–538.
  • Barbucci A, Delucchi M, Cerisola G. Organic coatings for concrete protection: liquid water and water vapour permeabilities. Prog Org Coat. 1997;30(4):293–297.

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