DOI QR코드

DOI QR Code

Experimental investigation on self-compacting concrete reinforced with steel fibers

  • Received : 2015.11.18
  • Accepted : 2016.03.24
  • Published : 2016.07.10

Abstract

Self-Compacting Concrete (SCC) has been originally developed in Japan to offset a growing shortage of skilled labors, is a highly workable concrete, which is not needed to any vibration or impact during casting. The utilizing of fibers in SCC improves the mechanical properties and durability of hardened concrete such as impact strength, flexural strength, and vulnerability to cracking. The purpose of this investigation is to determine the effect of steel fibers on mechanical performance of traditionally reinforced Self-Competing Concrete beams. In this study, two mixes Mix 1% and Mix 2% containing 1% and 2% volume friction of superplasticizer are considered. For each type of mixture, four different volume percentages of 60/30 (length/diameter) fibers of 0.0%, 1.0%, 1.5% and 2% were used. The mechanical properties were determined through compressive and flexural tests. According to the experimental test results, an increase in the steel fibers volume fraction in Mix 1% and Mix 2% improves compressive strength slightly but decreases the workability and other rheological properties of SCC. On the other hand, results revealed that flexural strength, energy absorption capacity and toughness are increased by increasing the steel fiber volume fraction. The results clearly show that the use of fibers improves the post-cracking behavior. The average spacing of between cracks decrease by increasing the fiber volume fraction. Furthermore, fibers increase the tensile strength by bridging actions through the cracks. Therefore, steel fibers increase the ductility and energy absorption capacity of RC elements subjected to flexure.

Keywords

References

  1. ACI Committee 237R-07 (2007), Self -consolidating concrete, American Concrete Institute.
  2. ACI Committee 544(1990), State-of-the-art report on fiber reinforced concrete, ACI Manual of Concrete Practice, Part 5, 22.
  3. Aggarwal, P., Siddique, R., Aggarwal, Y. and Gupta, S.M. (2008), "Self-compacting concrete - procedure for mix design", Leonardo Elec. J. Pract. Tech., 12, 15-24.
  4. ASTM C 1018 (1997), Standard Test Method For Flexural Toughness And First-Crack Strength Of Fiber-Reinforced Concrete (using beam with third-point loading), American Standards for Testing and Materials.
  5. ASTM C 33 (2003), "Standard specification for concrete aggregates", American Standards for Testing and Materials.
  6. Choi, K.K. and Park, H.G. (2007), "Unified shear strength model for reinforced concrete beams-Part II:Verification and simplified method", ACI Struct. J., 104(2), 153-168.
  7. CNR-DT 204 (2006), Guide for the Design and Construction of Fiber-Reinforced Concrete Structures, CNR - Advisory Committee on Technical Recommendations for Construction.
  8. Daczko, J. (2012), Self-consolidating concrete: hardened properties of SCC, New York, USA.
  9. EFNARC (2002), "Specification and guidelines for self-compacting concrete", European Federation for Specialist Construction Chemicals and Concrete Systems, Norfolk, UK.
  10. EFNARC (2002), "Specification and guidelines for self-compacting concrete", European Federation of Supplies of Specialist Construction Chemicals, Farnham, Surrey, UK.
  11. EFNARC (2005), Specifications and guidelines for self-compacting concrete, Englished.European Federation for Spec ConstrChem&Concr Syst.
  12. Eren, O. and Alyousif, A. (2010), Production of self-compaction fiber reinforcement concrete in North Cyprus.
  13. Fathi, A., Salih, M., Shafiq, N., Nuruddin, M.F., Elheber, A. and Memon, F.A. (2014), "Comparison of the effects of different fibers on the properties of self-compacting concrete", Res. J. Appl. Sci. Eng. Tech., 7(16), 3332-3341.
  14. Fib Model Code (2010), Federation Internationale Du Beton/International Federation For Structural Concrete, Germany.
  15. Fritih, Y., Vidal, T., Turatsinze, A. and Pons, G. (2013), "Flexural and shear behavior of steel fiber reinforced SCC beams", KSCE J. Civil Eng., 17(6), 1383-1393. https://doi.org/10.1007/s12205-013-1115-1
  16. Gaimster, R. and Dixon, N. (2003), Self-compacting concrete. In Advanced Concrete Technology, Elsevier Butterworth-Heinemann, 9/1-9/21.
  17. Geiker, M. (2008), "Self-compacting concrete (SCC) in Developments in the formulation and reinforcement of concrete", Woodhead Publishing Limited, 187-207.
  18. Gencel, O., Ozel, C., Brostow, W. and Martinez-Barrera, G. (2011), "Mechanical properties of selfcompacting concrete reinforced with polypropylene fibres", Mater. Res. Innov., 15(3), 216-225.. https://doi.org/10.1179/143307511X13018917925900
  19. Hossain, K.M.A., Lachemi, M., Sammour, M. and Sonebi, M. (2013), "Strength and fracture energy characteristics of self-consolidating concrete incorporating polyvinyl alcohol, steel and hybrid fibres", Constr. Build. Mater., 45, 20-29. https://doi.org/10.1016/j.conbuildmat.2013.03.054
  20. Khaloo, A., Molaei Raisi, E., Hosseini, P. and Tahsiri, H. (2014), "Mechanical performance of selfcompacting concrete reinforced with steel fibers", Constr. Build. Mater., 51, 179-186. https://doi.org/10.1016/j.conbuildmat.2013.10.054
  21. Li, V.C., Ward, R. and Hamza, A.M. (1992), "Steel and synthetic fibers as shear reinforcement", ACI Mater. J., 89(5), 499-508.
  22. Lim, D.H. and Oh, B.H. (1999), "Experimental and theoretical investigation on the shear of steel fiber reinforced concrete beams", Eng. Struct., 21, 937-944. https://doi.org/10.1016/S0141-0296(98)00049-2
  23. Malhotra, V.M., Garette, G.G. and Bilodeau, A. (1994), "Mechanical properties and durability of polypropylene fiber reinforced high-volume fly ash concrete for shotcrete applications", ACI Mater., 91(5), 478-86.
  24. Mansur, M.A., Ong, K.C.G. and Paramasivam, P. (1986), "Shear strength of fibrous concrete beams without stirrups", ASCE J. Struct. Eng., 112(9), 2066-2079. https://doi.org/10.1061/(ASCE)0733-9445(1986)112:9(2066)
  25. Nanni, A. (1988), "Splitting-tension test for fiber reinforced concrete", ACI Mater., 85(4), 229-33.
  26. Narayanan, R. and Darwish, I.Y.S. (1987), "Use of steel fibers as shear reinforcement", ACI Struct. J., 84(3), 216-227.
  27. Nehdi, M. and Ladanchuk, JD. (2004), "Fiber synergy in fiber-reinforced self-consolidating concrete", ACI Mater., 101(6), 508-17.
  28. Ning, X., Ding, Y., Zhang, F. and Zhang, Y. (2015), "Experimental study and prediction model for flexural behavior of reinforced SCC beam containing steel fibers", Constr. Build. Mater., 93, 644-653. https://doi.org/10.1016/j.conbuildmat.2015.06.024
  29. Pajak, M. and Ponikiewski, T. (2013), "Flexural behavior of self-compacting concrete reinforced with different types of steel fibers", Constr. Build. Mater., 47, 397-408. https://doi.org/10.1016/j.conbuildmat.2013.05.072
  30. Ramakrishna, G. and Sundararajan, T. (2005), "Studies on the durability of natural fibres and the effect of corroded fibres on the strength of mortar", Cement Concrete Compos., 27(5), 575-582. https://doi.org/10.1016/j.cemconcomp.2004.09.008
  31. RILEM TC 162-TDF (2003), Test And Design Methods For Steel Fibre Reinforced Concrete, Materials and Structures / Materiaux et Constructions, 560-567
  32. Sarmiento, E. (2011), "Influence of concrete flow on the mechanical properties of ordinary and fiber reinforced concrete", MS Thesis, Technical University of Catalonia (UPC).
  33. Tlemat, H., Pilakoutas, K. and Neocleous, K. (2003), "Pullout behaviour of steel fibers recycled from used tires", Role of Concrete in Sustainable Development, Pros of Instep on Celebrating Concrete: People and Practice, Thomas Telford Ltd., Dundee.
  34. Yakhlaf, M. (2013), "Development of carbon fiber reinforced self-consolidating concrete patch for repair applications", Master Thesis, The University of Waterloo.

Cited by

  1. Effect of specimen geometry and specimen preparation on the concrete compressive strength test vol.62, pp.1, 2016, https://doi.org/10.12989/sem.2017.62.1.097
  2. Impact resistance of polypropylene fiber reinforced concrete two-way slabs vol.62, pp.3, 2017, https://doi.org/10.12989/sem.2017.62.3.373
  3. Contribution of steel fiber as reinforcement to the properties of cement-based concrete: A review vol.20, pp.2, 2016, https://doi.org/10.12989/cac.2017.20.2.155
  4. Effectiveness of fibers and binders in high-strength concrete under chemical corrosion vol.64, pp.2, 2016, https://doi.org/10.12989/sem.2017.64.2.243
  5. Behavior of hybrid concrete beams with waste rubber vol.23, pp.4, 2016, https://doi.org/10.12989/cac.2019.23.4.245
  6. Experimental and analytical investigation of the shear behavior of strain hardening cementitious composites vol.72, pp.1, 2016, https://doi.org/10.12989/sem.2019.72.1.019
  7. Effect of fine fillers from industrial waste and various chemical additives on the placeability of self-compacting concrete vol.25, pp.1, 2016, https://doi.org/10.12989/cac.2020.25.1.059
  8. Influence of coarse aggregate properties on specific fracture energy of steel fiber reinforced self compacting concrete vol.9, pp.2, 2016, https://doi.org/10.12989/acc.2020.9.2.173
  9. Effective flexural rigidities for RC beams and columns with steel fiber vol.34, pp.3, 2016, https://doi.org/10.12989/scs.2020.34.3.453
  10. Dynamic response of reinforced concrete members incorporating steel fibers with different aspect ratios vol.11, pp.2, 2016, https://doi.org/10.12989/acc.2021.11.2.089