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Articles

Embodied CO2-based optimal design of concrete with fly ash considering stress and carbonation

References

  • Seiler PH, Duer HS. The future of construction. Cem Concr Compos. 2019;101:2–4.
  • Diaz-Loya I, Juenger M, Seraj S, et al. Extending supplementary cementitious material resources: Reclaimed and remediated fly ash and natural pozzolans. Cem Concr Compos. 2019;101:44–51.
  • Lim C-H, Yoon Y-S, Kim J-H. Genetic algorithm in mix proportioning of high-performance concrete. Cem Concr Res. 2004;34(3):409–420.
  • Venkatesan M, Zaib Q, Shah IH, et al. Optimum utilization of waste foundry sand and fly ash for geopolymer concrete synthesis using D-optimal mixture design of experiments. Resour Conserv Recycl. 2019;148:114–123.
  • Jiao D, Shi C, Yuan Q, et al. Mixture design of concrete using simplex centroid design method. Cem Concr Compos. 2018;89:76–88.
  • Hemalatha T, Ramaswamy A, Kishen JMC. Simplified mixture design for production of self-consolidating concrete. ACI Mater J. 2015;112(2):277–285.
  • Yeh IC. Computer-aided design for optimum concrete mixtures. Cem Concr Compos. 2007;29(3):193–202.
  • Yeh IC. Optimization of concrete mix proportioning using a flattened simplex–centroid mixture design and neural networks. Eng Comput. 2009;25(2):179–190.
  • Khayat KH, Kassimi F, Ghoddousi P. Mixture proportioning and testing of fiber-reinforced self-consolidating concrete. ACI Mater J. 2014;111(2):143–151.
  • Naseri H, Jahanbakhsh H, Hosseini P, et al. Designing sustainable concrete mixture by developing a new machine learning technique. J Cleaner Prod. 2020;258:120578.
  • Ozlem A, Akay KU, Sennaroglu B. Self-consolidating high-strength concrete optimization by mixture design method. ACI Mater J. 2010;107:357–365.
  • Cheng M-Y, Prayogo D, Wu Y-W. Novel genetic algorithm-based evolutionary support vector machine for optimizing high-performance concrete mixture. J Comput Civ Eng. 2014;28(4):06014003.
  • Papadakis VG. Effect of supplementary cementing materials on concrete resistance against carbonation and chloride ingress. Cem Concr Res. 2000;30(2):291–299.
  • Papadakis VG, Tsimas S. Supplementary cementing materials in concrete part I: efficiency and design. Cem Concr Res. 2002;32(10):1525–1532.
  • Ekolu SO. Model for practical prediction of natural carbonation in reinforced concrete: Part 1-formulation. Cem Concr Compos. 2018;86:40–56.
  • Atis CD. Accelerated carbonation and testing of concrete made with fly ash. Constr Build Mater. 2003;17:147–152.
  • Castel A, François R, Arliguie G. Effect of loading on carbonation penetration in reinforced concrete elements. Cem Concr Res. 1999;29(4):561–565.
  • Gowripalan N, Sirivivatnanon V, Lim CC. Chloride diffusivity of concrete cracked in flexure. Cem Concr Res. 2000;30(5):725–730.
  • Picandet V, Khelidj A, Bastian G. Effect of axial compressive damage on gas permeability of ordinary and high-performance concrete. Cem Concr Res. 2001;31(11):1525–1532.
  • Wang W, Lu C, Li Y, et al. Effects of stress and high temperature on the carbonation resistance of fly ash concrete. Constr Build Mater. 2017;138:486–495.
  • Li Y, Ahmed R, Han B, et al. Chemo-mechanical composite layer model for CO2-attacked cement. Constr Build Mater. 2020;252:119128.
  • Qiu Q. A state-of-the-art review on the carbonation process in cementitious materials: Fundamentals and characterization techniques. Constr Build Mater. 2020;247:118503.
  • Yoon Y-S, Yang K-H, Kwon S-J. Service life of GGBFS concrete under carbonation through probabilistic method considering cold joint and tensile stress. J Build Eng. 2020;32:101826.
  • Miller SA, John VM, Pacca SA, et al. Carbon dioxide reduction potential in the global cement industry by 2050. Cem Concr Res. 2018;114:115–124.
  • Long G, Gao Y, Xie Y. Designing more sustainable and greener self-compacting concrete. Constr Build Mater. 2015;84:301–306.
  • Yeh I-C. Modeling of strength of high-performance concrete using artificial neural networks. Cem Concr Res. 1998;28(12):1797–1808.
  • Oh BH, Jang SY. Prediction of diffusivity of concrete based on simple analytic equations. Cem Concr Res . 2004;34(3):463–480.
  • Demis S, Papadakis VG. A software-assisted comparative assessment of the effect of cement type on concrete carbonation and chloride ingress. Comput Concr. 2012;10:373–389.
  • Rezagholilou A, Papadakis VG, Nikraz H. Rate of carbonation in cement modified base course material. Constr Build Mater. 2017;150:646–652.
  • Mosley B, Bungey J, Hulse R. Reinforced concrete design to eurcode. 7th ed., Vol. 2. England, UK: Palgrave Macmillan; 2012.
  • EN1992-1-1, Eurocode 2. Design of concrete structures. Part 1–1: general rules and rules for buildings. Brussels: CEN; 2004.
  • Khaloo AR, Karimi H, Asadollahi S, et al. A new mixture design method for ultra-high-strength concrete. ACI Mater J. 2017;114(2):215–224.
  • DeRousseau MA, Kasprzyk JR, Srubar WV. Computational design optimization of concrete mixtures: a review. Cem Concr Res. 2018;109:42–53.
  • Rao GA. Generalization of Abrams' law for cement mortars. Cem Concr Res . 2001;31(3):495–502.
  • Wang X-H, Val DV, Zheng L, et al. Carbonation of loaded RC elements made of different concrete types: accelerated testing and future predictions. Constr Build Mater. 2020;243:118259.
  • Noguchi T, Maruyama I, Kanematsu M. Performance based design system for concrete mixture with multi-optimizing genetic algorithm. In: Grieve G, Owens G, editors. Proceedings of the 11th International Congress on the Chemistry of Cement. Durban (NC): South Africa; 2003. pp. 1921–1930.
  • Mo Z, Gao X, Su A. Mechanical performances and microstructures of metakaolin contained UHPC matrix under steam curing conditions. Constr Build Mater. 2021;268:121112.
  • Ren G, Yao B, Huang H, et al. Influence of sisal fibers on the mechanical performance of ultra-high performance concretes. Constr Build Mater. 2021;286:122958.
  • Zhang J, Chen T, Gao X. Incorporation of self-ignited coal gangue in steam cured precast concrete. J Cleaner Prod. 2021;292:126004.

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