DOI QR코드

DOI QR Code

Physical and Mechanical Properties of Low Carbon Green Concrete

저탄소 그린콘크리트의 물리·역학적 특성

  • Received : 2013.04.19
  • Accepted : 2013.05.14
  • Published : 2013.05.31

Abstract

This study was performed to evaluate the slump flow, air content, setting time, compressive strength, adiabatic temperature rise and diffusion coefficient of chloride used ordinary portland cement, crushed coarse aggregate, crushed sand, river sand, fly ash, limestone powder, blast furnace slag powder and superplasticizer to find optimum mix design of low carbon green concrete for structures. The performances of low carbon green concrete used fly ash, limestone powder and blast furnace slag powder were remarkably improved. This fact is expected to have economical effects in the manufacture of low carbon green concrete for structures. Accordingly, the fly ash, limestone powder and blast furnace slag powder can be used for low carbon green concrete material.

Keywords

References

  1. Bouzoubaa, N., M. Zhang, V. M. Malhotra, and M. D. Golden, 2005. Blended fly ash cements review. ACI Materal Journal 96(6): 641-650.
  2. Cho, I. H., and C. Y. Sung, 2006. Flowability of high flowable concrete with fly ash and lime powder. Journal of the Korean Society of Agricultural Enginners 48(4): 23-29 (in Korean). https://doi.org/10.5389/KSAE.2006.48.4.023
  3. Hassan, K. E., J. G. Cabrera, and R. S. Maliehe, 2001. The effect of mineral admixture on the rheology of cement paste and concrete. Cement and Concrete Research 31: 245-255. https://doi.org/10.1016/S0008-8846(00)00454-3
  4. Kenji, O., and U. Kaketo, 1993. Effect of blending ratio of OPC, BFS and fly ash properties of cement paste, Proceedings of the Japan Concrete Institute 15(1): 23-24.
  5. Neville, A. M., 1995. Properties of concrete, 4th edition.
  6. Sung, C. Y., S. H. Rhee, and C. S. Song, 2000. Experimental study on physical and mechannical properties of concrete with fly ash. Journal of the Korean Society of Agricultural Enginners 42(3): 107-113 (in Korean).
  7. Sung, C. Y., and K. H. Noh, 2004. Flow properties of polypropylene fiber reinforced high flow concrete. Journal of the Korean Society of Agricultural Enginners 46(4): 79-87 (in Korean). https://doi.org/10.5389/KSAE.2004.46.4.057
  8. Sung, C. Y., J. N. Youn, and Y. I. Kim, 2009. Physical and mechanical properties of porous concrete using waste activated carbon. Journal of the Korean Society of Agricultural Enginners 51(4): 21-27 (in Korean). https://doi.org/10.5389/KSAE.2009.51.4.021
  9. Sung, C. Y., and T. H. Kim, 2011. Engineering properties of permeable polymer concrete for pavement using powdered waste glass as filler. Journal of the Korean Society of Agricultural Enginners 38(1): 145-151 (in Korean).
  10. Taylor, H. F. W., 1990. Cement chemistry, Academic Press. London: 543-500.
  11. Temkhajomkit, P., and T. Nawa, 2004. The fluidity of fly ash cement paste containing naphthalene sulfonate superplasticizer, Cement and Concrete Research 23: 1,017-1,024.
  12. Zhuguo, L. I., Y. Tanigawa, and H. Mori, 2002. Theoretical analysis on time-dependence of fluidity and thixotropy of high fluidity concrete, Journal of the Structure Constructure Enginners 558: 15-22.
  13. Mehta, P, K, 2001. Reducing the Environmental Impact of Concrete. Concrete International 23(10): 61-66.