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Sustainable concrete mix design for a target strength and service life

  • Tapali, Julia G. (Department of Environmental and Natural Resources Management, University of Patras) ;
  • Demis, Sotiris (Department of Civil Engineering, University of Patras) ;
  • Papadakis, Vagelis G. (Department of Environmental and Natural Resources Management, University of Patras)
  • Received : 2012.12.22
  • Accepted : 2013.08.15
  • Published : 2013.12.25

Abstract

Considering the well known environmental issues of cement manufacturing (direct and indirect levels of $CO_2$ emissions), clinker replacement by supplementary cementing materials (SCM) can be a very promising first step in reducing considerably the associated emissions. However, such a reduction is possible up to a particular level of SCM utilization, influenced by the rate of its pozzolanic reaction. In this study a (4-step) structured methodology is proposed in order to be able to further adjust the concrete mix design of a particular SCM, in achieving additional reduction of the associated levels of $CO_2$ emissions and being at the same time accepted from a derived concrete strength and service life point of view. On this note, the aim of this study is twofold. To evaluate the environmental contribution of each concrete component and to provide the best possible mix design configuration, balanced between the principles of sustainability (low environmental cost) and durability (accepted concrete strength and service life ). It is shown that such a balance can be achieved, by utilising SCM by-products in the concrete mix, reducing in this way the fixed environmental emissions without compromising the long-term safety and durability of the structure.

Keywords

References

  1. ACC (2010), Sustainable Development Report. India.
  2. Atis, C.D. (2003), "Accelerated carbonation and testing of concrete made with fly ash", Constr. Build. Mater., 17,147-152. https://doi.org/10.1016/S0950-0618(02)00116-2
  3. Antiohos, S.K., Papadakis, V.G., Chaniotakis, E. and Tsimas, S. (2007), "Improving the performance of ternary blended cements by mixing different types of fly ashes", Cement Concrete Res., 37(6), 877-885. https://doi.org/10.1016/j.cemconres.2007.02.017
  4. Bren, D. (2011), Scientific Synthesis of Calera Carbon Sequestration and Carbonaceous by - Product Applications - Vonsensus Findings of the Scientific Synthesis Team, University of California, School of Environmental Science and Management, Santa Barbara, USA.
  5. CEMBUREAU (2009), Activity Report, The European Cement Association, Brussels.
  6. CEMBUREAU (2011), Quarterly economic report, 1st quarter 2011: First signs of stabilization of construction activity in the EU, The European Cement Association, Brussels.
  7. CEN EN 15643 (2011), Sustainability of construction works - Sustainability assessment of buildings, European Committee for Standardization, Brussels.
  8. Chalee, W., Ausapanit, P. and Janurapitakkul, C. (2010), "Utilization of fly ash concrete in marine environment for long term design life analysis", Mater. Des., 31, 1242-1249. https://doi.org/10.1016/j.matdes.2009.09.024
  9. CRH (2011), Sustainability Report - Responsible performance & growth, Ireland.
  10. Demis, S. and Papadakis, V.G. (2012), "A software-assisted comparative assessment of the effect of cement type on concrete carbonation and chloride ingress", Comput. Concr., 10(4), 391-407. https://doi.org/10.12989/cac.2012.10.4.391
  11. Ecosmart Concrete (2008), Environmental Impact - Cement Production and the $CO_2$ Challenge, Ecosmart Foundation, Cabnada.
  12. fib (2010), Model Code First Complete Draft, Volumes I and II, International Federation for Structural Concrete, Brussels.
  13. Flower, D.J.M. and Ganjayan, J.G. (2007), "Green house gas emissions due to concrete manufacture", Int. J. LCA, 12(5), 282-288. https://doi.org/10.1007/s11367-007-0327-3
  14. Ganesan, K.R. and Thangavel, K. (2007), "Evaluation of bagasse ash as supplementary cementitious material", Cement Concrete Comp., 29(6), 515-524. https://doi.org/10.1016/j.cemconcomp.2007.03.001
  15. GHG Protocol (2011), Mobile Guide. Calculating $CO_2$ emissions from mobile sources. Guidance to calculation worksheets, The Greenhouse Gas Protocol Initiative.
  16. Habert, G., Billard, C., Rossi, P., Chen, C. and Roussel, N. (2010), "Cement production technology improvement compared to factor 4 objectives", Cement Concrete Comp., 40, 820-826. https://doi.org/10.1016/j.cemconres.2009.09.031
  17. Heidelberg (2009), Sustainability Report, Heidelberg Cement Northern Europe, Sweden.
  18. Hoenig, V., Hoppe, H. and Emberger, B. (2007), Carbon Capture Technology - Options and Potentials for the Cement Industry, Tannenstrasse: European Cement Research Academy.
  19. Holcim (2011), Corporate Sustainable Development Report, Holcim, Switzerland.
  20. Hosam, E.D.H.S., Rashad, A.M. and El-Sabbagh, B.A. (2010), "Durability and strength evaluation of high-performance concrete in marine structures", Const Build Mater., 21, 878-884.
  21. IEA (2010), International Energy Agency, Energy Technology Systems Analysis Programme (ETSAP) - Technology Brief 103 - Cement Production, IEA Publications, Paris, France.
  22. IPPC (2010), Integrated Pollution Prevention and Control (IPPC) Bureau, Reference document of best available techniques in the cement, lime and magnesium oxide manufacturing industries, European Commission, Joint Research Centre, Institute for Prospective Technological Studies, Seville, Spain.
  23. Italcementi (2011), Sustainability Disclosure, Italcementi Group, Italy.
  24. Khunthingkeaw, J., Tangtermisirikul, S. and Leelawat, T. (2006), "A study on carbonation depth prediction for fly ash concrete", Const. Build. Mater., 20, 744-753. https://doi.org/10.1016/j.conbuildmat.2005.01.052
  25. Lafarge (2011), Sustainability 11th Report, Lafarge Group, France.
  26. Lo, T.Y., Nadeem, A., Tang, W.C.P. and Yu, P.C. (2009), "The effect of high temperature curing on the strength and carbonation of pozzolanic structural lightweight concretes", Const Build Mater., 23, 1306-1310. https://doi.org/10.1016/j.conbuildmat.2008.07.026
  27. Newlands, M.D., Jones, M.R., McCarthy, N.J. and Zheng, L. (2012), "Using fly ash to achieve low embodied $CO_2$ concrete", Proceedings of EUROCOALASH 2012 Conference, Thessaloniki, Greece.
  28. Nochaiya, T., Wongkeo, W. and Chaipanich, A. (2010), "Utilization of fly ash with silica fume and properties of portland cement-fly ash-silica fume concrete", Fuel, 89, 768-774. https://doi.org/10.1016/j.fuel.2009.10.003
  29. Papadakis, V.G. (1999a), "Experimental investigation and theoretical modeling of silica fume activity in Concrete", Cement Concrete Res., 29(1), 79-86. https://doi.org/10.1016/S0008-8846(98)00171-9
  30. Papadakis, V.G. (1999b), "Effect of fly ash on portland cement systems. Part I: low calcium fly ash", Cement Concrete Res., 29(11), 1727-1736. https://doi.org/10.1016/S0008-8846(99)00153-2
  31. Papadakis, V.G. (2000), "Effect of supplementary cementing materials on concrete resistance against carbonation and chloride ingress", Cement Concrete Res., 30, 291-299. https://doi.org/10.1016/S0008-8846(99)00249-5
  32. Papadakis, V.G., Vayenas, C.G. and Fardis, M.N. (1991), "Fundamental modeling and experimental investigation of concrete carbonation", ACI Mater. J., 88, 363-373.
  33. Papadakis, V.G. and Tsimas, S. (2002), "Supplementary cementing materials in concrete Part I: Efficiency and design", Cement Concrete Res., 32, 1525-1532. https://doi.org/10.1016/S0008-8846(02)00827-X
  34. Papadakis, V.G., Antiohos, S. and Tsimas, S. (2002), "Supplementary cementing materials in concrete - part II: A fundamental estimation of the efficiency factor", Cement Concrete Res., 32(10), 1533-1538. https://doi.org/10.1016/S0008-8846(02)00829-3
  35. Papadakis, V.G., Efstathiou, M.P. and Apostolopoulos, C.A. (2007), "Computer-aided approach of parameters influencing concrete service life and field validation", Comput. Concr., 4, 1-18. https://doi.org/10.12989/cac.2007.4.1.001
  36. Papadakis, V.G. and Demis, S. (2013), "Predictive modeling of concrete compressive strength based on cement strength class", Comput. Concr., 11(6), 587-602. https://doi.org/10.12989/cac.2013.11.6.587
  37. Ruffolo, J., Lee, P. and Stewart, D. (2010), Technology predictions, Deloitte Touche Tohmatsu. London.
  38. Sweeny, B. and Sceats, M. (2009), "Calix - A carbon capture breakthrough", Carbon Capture J., 12, 19-21.
  39. U.S. Environmental Protection Agency (2008), Guidebook for Using the Tool BEST Cement: Benchmarking and Energy Savings Tool for the Cement Industry, Lawrence Berkeley National Laboratory, Berkeley, USA.
  40. Valcuende, M. and Parra, C. (2010), "Natural carbonation of self-compacting concretes", Const. Build. Mater., 24, 848-853. https://doi.org/10.1016/j.conbuildmat.2009.10.021
  41. WBCSD (2005), World Business Council for Sustainable Development, Cement sustainability Initiative. Guidelines for the selection and use of fuels and raw materials in the cement manufacturing process, Geneva, Switzerland.
  42. WBSCD (2009), World bsiness cuncil for sstainable dvelopment, Cement Technology Roadmap 2009 - Carbon emissions reductions up to 2050, Geneva, Switzerland.
  43. Zampini, D. (2009), Future developments of concrete in the construction materials industry, Chapter 21, Vol. 1, Thomas Telford.

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