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Experimental study on rheology, strength and durability properties of high strength self-compacting concrete

  • Bauchkar, Sunil D. (Department of Civil Engineering, Datta Meghe College of Engineering) ;
  • Chore, H.S. (Department of Civil Engineering, Datta Meghe College of Engineering)
  • 투고 : 2017.12.09
  • 심사 : 2018.06.10
  • 발행 : 2018.08.25

초록

The rheological behaviour of high strength self compacting concrete (HS-SCC) studied through an experimental investigation is presented in this paper. The effect of variation in supplementary cementitious materials (SCM) $vis-{\grave{a}}-vis$ four different types of processed crushed sand as fine aggregates is studied. Apart from the ordinary Portland cement (OPC), the SCMs such as fly ash (FA), ground granulated blast furnace slag (GGBS) ultrafine slag (UFS) and micro-silica (MS) are used in different percentages keeping the mix -paste volume and flow of concrete, constant. The combinations of rheology, strength and durability are equally important for selection of mixes in respect of high-rise building constructions. These combinations are referred to as the rheo-strength and rheo-durability which is scientifically linked to performance based rating. The findings show that the fineness of the sands and types of SCM affects the rheo-strength and rheo-durability performance of HS-SCC. The high amount of fines often seen in fine aggregates contributes to the higher yield stress. Further, the mixes with processed sand is found to offer better rheology as compared to that of mixes made using unwashed crushed sand, washed plaster sand, washed fine natural sand. The micro silica and ultra-fine slag conjunction with washed crushed sand can be a good solution for high rise construction in terms of rheo-strength and rheo-durability performance.

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참고문헌

  1. Ahmad, S. and Mahmood, S. (2008), "Effects of crushed and natural sand on the properties of fresh and hardened concrete", 33rd Conference on Our World in Concrete & Structures, Singapore.
  2. Ahmed, A. and Mahure, S.H. (2016), "High strength selfcompacting concrete using fly ash", Int. J. Res. App. Sci. Eng. Tech. (IJRASET), 4(8), 489-497
  3. ASTM-C1202 (2010), Standard Test Method for Electrical Indication of Concrete's ability to resist Chloride Ion Penetration, American Society of Testing Materials, USA
  4. Aydin, S., Hilmi, A. and Ramyar, K. (2009), "Effects of fineness of cement on polynaphthalene sulfonate based superplasticizer-cement interaction", Constr. Build. Mater., 23(6), 2402-2408 https://doi.org/10.1016/j.conbuildmat.2008.10.004
  5. Banfill, P.F.G. (1994), "Rheological methods for assessing the flow properties of mortar and related materials", Constr. Build. Mater., 1(1), 1-30
  6. Bartos, P.J.M. and Marrs, D.L. (1999), "Development and testing of self-compacting grout for the production of SIFCON", Proceedings of the International Workshop High Performance Fiber Reinforced Cement Composites, Germany.
  7. Bauchkar, S.D. and Chore, H.S. (2014), "Rheological properties of self-consolidating concrete with various mineral admixtures", Struct. Eng. Mech., 51(1), 1-13 https://doi.org/10.12989/sem.2014.51.1.001
  8. Bilodeau, A. and MalhotraI, V.M. (1992), "Concrete incorporating high volumes of ASTM Class F fly ashes: Mechanical properties and resistance to deicing salt scaling and to chlorideion penetration", Proceedings of the Fourth International Conference on Use of Fly Ash, Silica Fume, Slag and Natural Pozzolana in Concrete, Istanbul, Turkey.
  9. Boukendakdji, O., Kenai, S., Kadri, E.H. and Rouis, F. (2009), "Effect of slag on the rheology of fresh self-compacted concrete", Constr. Build. Mater., 23(7), 2593-2598. https://doi.org/10.1016/j.conbuildmat.2009.02.029
  10. Bouziani, T. and Benmounah, A. (2013), "Correlation between Vfunnel and Mini-slump test results with viscosity", KSCE J. Civil Eng., 17(1), 173-178 https://doi.org/10.1007/s12205-013-1569-1
  11. BS 1881-122 (2011), Testing Concrete-Part 122-Method for Determination of Water Absorption, British Standards Institution (BSI), London.
  12. Celik, T. and Marar, K. (1996), "Effects of crushed stone dust on some properties of concrete", Cement Concrete Res., 26(7), 1121-1130. https://doi.org/10.1016/0008-8846(96)00078-6
  13. Cry, M., Legrand, C. and Mouret, M. (2000), "Study of the shear thickening effect of superplasticisers on the rheological behavior of cement pastes containing or not mineral additives", Cement Concrete Res., 30(9), 1477-1483 https://doi.org/10.1016/S0008-8846(00)00330-6
  14. Daniel, D.G., Lamond, J.F. and Pielert, J.H. (2006), "Significance of tests and properties of concrete and concrete making materials- Factors influencing concrete workability", ASTM Int., 169(4), 339.
  15. DIN 1048-Part 5 (1991), "Testing method for concrete-Hardened concrete", German Standard for Determination of Permeability of Concrete, Deutsches Institute for Normunge, Berlin.
  16. Donza, H., Cabrera, O. and Irassar, E.F. (2002), "High strength concrete with different fine aggregates", Cement Concrete Res., 32(11), 1755-1761. https://doi.org/10.1016/S0008-8846(02)00860-8
  17. EFNARC (2005), "The European guideline for self-compacting concrete (SCC): Specification for Production and Use", 68.
  18. Ferraris, C.F. (1999), "Measurement of the rheological properties of high performance concrete: State of the art report", J. Res. Nat. Inst. Stand. Technol., 104(5), 461-477. https://doi.org/10.6028/jres.104.028
  19. Ferraris, C.F., Obla, K.H. and Hill, R. (2001), "The influence of mineral admixtures on the rheology of cement paste and concrete", Cement Concrete Res., 31(2), 245-255 https://doi.org/10.1016/S0008-8846(00)00454-3
  20. Hooten, R.D. (1993), "Influence of silica fume replacement of cement on physical properties and resistance to Sulphate attack, Freezing and Thawing, and alkali-silica reactivity", ACI Mater. J., 90(2), 143-151.
  21. Hudson, B. (1999), "Modification to the fine aggregate angularity test", Proceedings, Seventh Annual International Center for AggregatesResearch Symposium, Austin, TX.
  22. IS: 10262 (2009), Concrete Mix Proportioning Guideline, Bureau of Indian Standards, New Delhi.
  23. IS: 383 (1970), Specification for Coarse and Fine Aggregates from Natural Sources for Concrete, Bureau of Indian Standards, New Delhi.
  24. Jayashree, C. and Gettu, R. (2008), "Experimental study of the flow behavior ofsuperplasticized cement paste", Mater. Struct., 41(9), 1581-1593. https://doi.org/10.1617/s11527-008-9350-5
  25. Khayat, K.H. (1999), "Workability, testing, and performance of self-consolidating concrete", ACI Mater. J., 96(3), 339-346.
  26. Kosmatka, S.H., Kerkhoff, B., Panarese, W.C., MacLeod, N.F. and McGrath, R.J. (2002), "Design and control of concrete mixtures", Portland Cement Association of Canada, Skokie.
  27. Kwan, A.K.H. and Ng, I.Y.T. (2009), "Optimum super plasticizer dosage and aggregate proportions for SCC", Mag. Concrete Res., 61(4), 281-292. https://doi.org/10.1680/macr.2008.00010
  28. Li, Y., Zhou, S., Yin, J. and Gao, Y. (2004), "The effect of fly ash on the fluidity of cement paste, mortar, and concrete", Proceedings of the International Workshop Sustainable Dev. Concrete Tech., Beijing, China.
  29. Maekawa, K. and Ozawa, K. (1999), "Development of SCCs prototype", Self-Compacting High-Performance Concrete, Social System Institute, 20-32. (in Japanese)
  30. Mindess, S., Young, J.F. and Darwin, D. (2003), Concrete, 2nd Edition, Prentice Hall, Pearson Education, USA.
  31. Neubauer, C.M., Yang, M. and Jennings, H.M. (1998), "Interparticle potential and sedimentation behaviour of cement suspensions: Effects of admixtures", Adv. Cement Base Mater., 8, 17-27 https://doi.org/10.1016/S1065-7355(98)00005-4
  32. Neville, A.M. (1996), Properties of Concrete, John Wiley & Sons, New York.
  33. Okamura, H., Ouchi, M., Hibino, M. and Ozawa, K. (1995), "A rational mix-design method for mortar in self-compacting concrete", Proceedings of the 6th East Asia-Pacific Conference on Structural Engineering and Construction, Taipei, ROC, 2, 1307-1312.
  34. Ozawa, K., Maekawa, K., Kunishima, M. and Okamura, H. (1989), "Development of high performance concrete based on the durability design of concrete structures", Proceedings of the 2nd East-Asia and Pacific Conference on Structural Engineering and Construction (EASEC-2), 1, 445-450.
  35. Plank, J., Vlad, D., Brandl, A. and Chatziagorastou, P. (2009), "Colloidal chemistry examination of the steric effect of polycarboxylate superplasticizers", Cement Int., 3(2), 100-110.
  36. Ponikiewski, T. (2011), "The rheology of fresh steel fibre reinforced self compacting mixtures", ACEE Arch. Civil Eng. Environ., 4(2), 65-72.
  37. Ponikiewski, T. and Katzer, J. (2017), "Fresh mix characteristics of self-compacting concrete reinforced by fibre", Periodica Polytechnica Civil Eng. J., 61(2), 226-231.
  38. Ramachandran, V.S. (1992), "Super-plasticizers progress in cement and concrete", ABI Books (Part II), New Delhi, India.
  39. Raussel, N. (2006), "Correlation between yield stress and slump: Comparison between numerical simulations and concrete rheometers results", Mater. Struct., 39, 501-509.
  40. Tattersall, G.H. and Banfill, P.F.G. (1983), The Rheology of Fresh Concrete, Pitman Publishing Inc., Marshfield.
  41. Tattersall, G.H. (1991), Workability and Quality Control of Concrete, E & FN Spon Publishers, London.
  42. Vasusmitha, R. and Srinivasa Rao, P. (2013), "Strength andsurability study ofhigh strength self compacting concrete", Int. J. Min. Metal. Mech. Eng., 1(1), 18-26.
  43. Vengala, J., Sudarsan, M.S. and Ranganath, R.V. (2003), "Experimental study for obtaining self-compacting concrete", Ind. Concrete J., 77(8), 1261-1266.
  44. Vikan, H. and Justnes, H. (2007), "Rheology of cementitious paste with silica fume and limestone", Cement Concrete Res., 37(2), 1512-1517 https://doi.org/10.1016/j.cemconres.2007.08.012
  45. Wallevik, J.E. (2008), "Rheological properties of cement paste: Thixotropic behavior and structural breakdown", Cement Concrete Res., 39(1), 14-29 https://doi.org/10.1016/j.cemconres.2008.10.001
  46. Willis, M.H., Jr. (1967), "How aggregate particle shape influences concrete mixing water requirement", J. Mater., 2(4), 843-865.
  47. Zhu, M., Wang, F.G., Wang, F.Z. and Liu, Y.P. (2017), "The micromechanics model analysis of the viscosity regulation of ultra-high strength concrete with low viscosity", IOP Conference Series: Materials Science and Engineering, 170(1), 012033.