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Articles

Self-healing cementitious materials containing encapsulated epoxy-montmorillonite-calcium nitrate: evaluating crack-healing performance, mechanical and thermal properties

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References

  • Borg RP, Cuenca E, Gastaldo Brac EM, et al. Crack sealing capacity in chloride-rich environments of mortars containing different cement substitutes and crystalline admixtures. J Sustain Cem-Based Mater. 2018;7(3):141–159.
  • Dinarvand P, Rashno A. Review of the potential application of bacteria in self-healing and the improving properties of concrete/mortar. J Sustain Cem-Based Mater. 2021:1–34.DOI:10.1080/21650373.2021.1936268.
  • Fernandez CA, Correa M, Nguyen MT, et al. Progress and challenges in self-healing cementitious materials. J Mater Sci. 2021;56(1):201–230.
  • Talaiekhozani A, Abd MMZ. A review of self-healing concrete research development. J Environ Treat Tech. 2014;2:1–11.
  • De Belie N, Gruyaert E, Al‐Tabbaa A, et al. A review of self‐healing concrete for damage management of structures. Adv Mater Interfaces. 2018;5(17):1800074.
  • Sidiq A, Gravina R, Giustozzi F. Is concrete healing really efficient? A review. Constr Build Mater. 2019; 205:257–273.
  • De Belie N, Wang J. Bacteria-based repair and self-healing of concrete. J Sustain Cem-Based Mater. 2016;5(1-2):35–56.
  • Song G, Ma N, Li HN. Applications of shape memory alloys in civil structures. Eng Struct. 2006;28(9):1266–1274.
  • Wang X, Fang C, Li D, et al. A self-healing cementitious composite with mineral admixtures and built-in carbonate. Cem Concr Compos. 2018; 92:216–229.
  • Han K, Ju JW, Zhang H, et al. Mechanical response analysis of self-healing cementitious composites with microcapsules subjected to tensile loading based on a micromechanical damage-healing model. Constr Build Mater. 2021; 280:122251.
  • Jiang W, Zhou G, Wang C, et al. Synthesis and self-healing properties of composite microcapsule based on sodium alginate/melamine-phenol–formaldehyde resin. Constr Build Mater. 2021; 271:121541.
  • Du W, Liu Q, Lin R, et al. Preparation and characterization of microcrystalline wax/epoxy resin microcapsules for self-healing of cementitious materials. Material 2021;14(7):1725.
  • Van Tittelboom K, De Belie N, Van Loo D, et al. Self-healing efficiency of cementitious materials containing tubular capsules filled with healing agent. Cem Concr Compos. 2011;33(4):497–505.
  • Jadhav S, Rajendra G, Hundiwale D. Synthesis and characterization of phenol–formaldehyde microcapsules containing linseed oil and its use in epoxy for self‐healing and anticorrosive coating. J Appl Polym Sci. 2011;119(5):2911–2916.
  • Dong B, Guohao F, Weijian D, et al. Self-healing features in cementitious material with urea–formaldehyde/epoxy microcapsules. Constr Build Mater. 2016; 106:608–617.
  • Kurt G, Ulutan S. Encapsulation of linseed oil and linseed oil-based alkyd resin by urea formaldehyde shell for self-healing systems. Prog Org Coat. 2018; 121:190–200.
  • Blaiszik BJ, Caruso MM, McIlroy DA, et al. Microcapsules filled with reactive solutions for self-healing materials. Polymer. 2009;50(4):990–997.
  • Ebrahimnezhad-Khaljiri H, Eslami-Farsani R, Arbab Chirani S. Microcapsulated epoxy resin with nanosilica- urea formaldehyde composite shell. J Appl Polym Sci. 2020;137(16):48580.
  • Li CC, Yu DH, Chang SJ, et al. New approach for the synthesis of nanozirconia fortified microcapsules. Langmuir. 2017;33(23):5843–5851.
  • Ghorbanzadeh Ahangari M, Fereidoon A, Jahanshahi M, et al. Effect of nanoparticles on micromechanical and surface properties of poly(urea-formaldehyde) composite microcapsules. Compos B Eng. 2014; 56:450–455.
  • White SR, Sottos NR, Geubelle PH, et al. Autonomic healing of polymer composites. Nature. 2001;409(6822):794–797.
  • Yuan L, Gu A, Liang G. Preparation and properties of poly(urea–formaldehyde) microcapsules filled with epoxy resins. Mater Chem Phys. 2008;110(2-3):417–425.
  • Wang R, Li H, Hu H, et al. Preparation and characterization of self‐healing microcapsules with poly(urea‐formaldehyde) grafted epoxy functional group shell. J Appl Polym Sci. 2009;113(3):1501–1506.
  • Jin H, Mangun CL, Stradley DS, et al. Self-healing thermoset using encapsulated epoxy-amine healing chemistry. Polymer. 2012;53(2):581–587.
  • Suryanarayana C, Rao KC, Kumar D. Preparation and characterization of microcapsules containing linseed oil and its use in self-healing coatings. Prog Org Coat. 2008;63(1):72–78.
  • Yuan YC, Rong MZ, Zhang MQ. Preparation and characterization of microencapsulated polythiol. Polymer. 2008;49(10):2531–2541.
  • Beglarigale A, Eyice D, Seki Y, et al. Sodium silicate/polyurethane microcapsules synthesized for enhancing self-healing ability of cementitious materials: Optimization of stirring speeds and evaluation of self-healing efficiency. J Build Eng. 2021; 39:102279.
  • Zheng T, Qian C, Su Y. Influences of different calcium sources on the early age cracks of self-healing cementitious mortar. Biochem Eng J. 2021; 166:107849.
  • Al-Ansari M, Abu-Taqa AG, Hassan MM, et al. Performance of modified self-healing concrete with calcium nitrate microencapsulation. Constr Build Mater. 2017; 149:525–534.
  • Milla J, Hassan MM, Rupnow T, et al. Measuring the crack-repair efficiency of steel fiber reinforced concrete beams with microencapsulated calcium nitrate. Constr Build Mater. 2019; 201:526–538.
  • Hassan MM, Milla J, Rupnow T, et al. Microencapsulation of calcium nitrate for concrete applications. Transportation Research Record. 2016;2577(1):8–16.
  • Farshi Azhar F, Ahmadinia A, Mohammadjafari Sadeghi A. Modified self-healing cementitious materials based on epoxy and calcium nitrate microencapsulation. J Microencapsul. 2021;38(4):203–217.
  • Zhang Z, Cheng P, Li Y. Effect of nano montmorillonite on the multiple self-healing of microcracks in asphalt mixture. Road Mater Pavement Des. 2021;33(12):1–15.
  • Abdelrahman M, Katti DR, Ghavibazoo A, et al. Engineering physical properties of asphalt binders through nanoclay-asphalt interactions. J Mater Civil Eng. 2014; 26(12):04014099–1–04014099-9.
  • Liu G, van de Ven M, Wu SP, et al. Influence of organo-montmorillonites on fatigue properties of bitumen and mortar. Int J Fatigue. 2011;33(12):1574–1582.
  • Jia M, Zhang ZP, Wei L, et al. Study on properties and mechanism of organic montmorillonite modified bitumens: View from the selection of organic reagents. Constr Build Mater. 2019;217:331–342.
  • Zhang HL, Zhu CZ, Tan BY, et al. Effect of organic layered silicate on microstructures and aging properties of styrene-butadiene-styrene copolymer modified bitumen. Constr Build Mater. 2014; 68:31–38.
  • Chi MC. Effects of sugar cane bagasse ash as a cement replacement on properties of mortars. Sci Eng Compos Mater. 2012;19(3):279–285.
  • Allison PG, Moser RD, Chandler MQ, et al. Machanical, thermal, and microstructural analysis of polyvinyl alcohol/montmorillonite nanocomposites. J Nanomater. 2015; 2015:1–9.
  • Weng Z, Wang J, Senthil T, et al. Mechanical and thermal properties of ABS/montmorillonite nanocomposites for fused deposition modeling 3D printing. Mater Des. 2016; 102:276–283.
  • Zhou Y, Pervin F, Rangari VK, et al. Influence of montmorillonite clay on the thermal and mechanical properties of conventional carbon fiber reinforced composites. J Mater Process Technol. 2007;191(1-3):347–351.
  • ASTM C305-14. Standard practice for mechanical mixing of hydraulic cement pastes and mortars of plastic consistency. West Conshohocken, PA: ASTM International, 2014.
  • ASTM C348-19. Standard test method for flexural strength of hydraulic-cement mortars. West Conshohocken, PA: ASTM International, 2019.
  • ASTM C109/C109M-16a. Standard test method for compressive strength of hydraulic cement mortars (using 2-in. or [50-mm] cube specimens. West Conshohocken, PA: ASTM International, 2016.
  • Wenting L, Xujing Z, Nan Z, et al. Preparation and properties of melamine urea-formaldehyde microcapsules for self-healing of cementitious materials. Material 2016;9(3):152.
  • Yin T, Rong M, Zhang M, et al. Self-healing epoxy composites preparation and effect of the healant consisting of microencapsulated epoxy and latent curing agent. Compos Sci Technol. 2007;67(2):201–212.
  • Qianjin M, Xiaojuan F, Peng L, et al. Characteristics self-healing microcapsules for cementitious composites. J Wuhan Univ Technol Mater Sci. 2018; 33:1108–1112.
  • Fredi G, Simon F, Sychev D, et al. Bioinspired polydopamine coating as an adhesion enhancer between paraffin microcapsules and an epoxy matrix. Acs Omega. 2020;5(31):19639–19653.
  • Gray A, Egan S, Bakalis S, et al. Determination of microcapsule physicochemical, structural, and mechanical properties. Particuology 2016; 24:32–43.
  • Camino G, Operti L, Trossarelli L. Mechanism of thermal degradation of urea-formaldehyde polycondensates. Polym Degrad Stab. 1983;5(3):161–172.
  • Yuan L, Liang GZ, Xie JQ, et al. Thermal stability of microencapsulated epoxy resins with poly(urea-formaldehyde). Polym Degrad Stab. 2006;91(10):2300–2306.
  • Hager I. Color change in heated concrete. Fire Technol. 2014;50(4):945–958.
  • Kaynak C, Nakas I, Isitman NA. Mechanical properties, flammability and char morphology of epoxy resin/montmorillonite nanocomposites. Appl Clay Sci. 2009;46(3):319–324.
  • Wang B, Qi N, Gong W, et al. Study on the microstructure and mechanical properties for epoxy resin/montmorillonite nanocomposites by positron. Radiat Phys Chem. 2007;76(2):146–149.
  • Pluart LL, Duchet J, Sautereau H. Epoxy/montmorillonite nanocomposites: influence of organophilic treatment on reactivity, morphology and fracture properties. Polymer 2005;46(26):12267–12278.
  • Alsagayar ZS, Rahmat AR, Bin Arsad A, et al. Tensile and flexural properties of montmorillonite nanoclay reinforced epoxy resin composites. AMR 2015; 1112:373–376.
  • Bee ST, Hassan A, Ratnam CT, et al. Dispersion and roles of montmorillonite on structural, flammability, thermal and mechanical behaviours of electron beam irradiated flame retarded nanocomposite. Composites 2014; 61:41–48.

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