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Effect of fiber and aggregate size on mode-I fracture parameters of high strength concrete

  • Kumar, Ch.Naga Satish (Department of Civil Engineering, Bapatla Engineering College) ;
  • Krishna, P.V.V.S.S.R. (Department of Civil Engineering, Bapatla Engineering College) ;
  • Kumar, D.Rohini (Department of Civil Engineering, Bapatla Engineering College)
  • Received : 2017.06.27
  • Accepted : 2017.09.27
  • Published : 2017.12.25

Abstract

In this paper, an experimental investigation was carried out to study the effect of volume fraction of fiber and maximum aggregate size on mode-I fracture parameters of high strength concrete. Total of 108 beams were tested on loading frame with three point loading, the variables in the high strength concrete beams are aggregate size (20 mm, 16 mm and 10 mm) and volume fraction of fibers (0%, 0.5%, 1% and 1.5%). The fracture parameters like fracture energy, brittleness number and fracture process zone were analyzed by the size effect method (SEM). It was found that fracture energy (Gf) increases with increasing the Maximum aggregate size and also increasing the volume of fibers, brittleness number (${\beta}$) decreases and fracture process zone (CF) increases.

Keywords

Acknowledgement

Supported by : AICTE

References

  1. Amparano, F.E., Xi, Y. and Roh, Y.S. (2000), "Experimental study on the effect of aggregate content on fracture behavior of concrete", Eng. Fract. Mech., 67(1), 65-84. https://doi.org/10.1016/S0013-7944(00)00036-9
  2. Caggiano, A., Cremona, M., Faella, C., Lima, C. and Martinelli, E. (2012), "Fracture behavior of concrete beams reinforced with mixed long/short steel fibers", J. Conbuildmat., 37, 832-840.
  3. Caggiano, A., Cremona, M., Faella, C., Lima, C. and Martinelli, E. (2012), "Fracture behavior of concrete beams reinforced with mixed long/short steel fibers", Constr. Build. Mater., 37, 832-840. https://doi.org/10.1016/j.conbuildmat.2012.07.060
  4. Barr, B.I.G., Hasso, E.B.D. and Weiss, V.J. (1986), "Effect of specimen and aggregate sizes up on the fracture characteristics of concrete", J. Cement Compos. Lightw. Concrete, 8, 109-119. https://doi.org/10.1016/0262-5075(86)90006-0
  5. Bazant, Z.P. and Pfeiffer, P.A. (1987), "Determination of fracture energy from size effect and brittleness number", ACI Mater. J., 84(6), 463-480.
  6. Bazant, Z.P. and Kazemi, M.T. (1990), "Determination of fracture energy, process zone length and brittleness number from size effect, with application to rock and concrete", J. Fract., 44, 111-131. https://doi.org/10.1007/BF00047063
  7. Bazant, Z.P. and Oh, B.H. (1983), "Crack band theory for fracture of concrete", Mater. Struct., 16, 155-177.
  8. Bazant, Z.P., Kim, J.K. and Pfeiffer, P.A. (1986), "Nonlinear Fracture properties from size effect tests", J. Struct. Eng., 112(2), 289-306. https://doi.org/10.1061/(ASCE)0733-9445(1986)112:2(289)
  9. Bencardino, F., Rizzuti, L., Spadea, G. and Swamy, R. (2010), "Experimental evaluation of fiber reinforced concrete fracture properties", J. Compos., 41(1), 17-24. https://doi.org/10.1016/j.compositesb.2009.09.002
  10. Bentur, A. and Mindess, S. (1990), Fiber Reinforced Cementitious Composites, Elsevier Applied Science, London, New York, U.S.A.
  11. Hillerborg, A. (1985), "Results of three comparative test series for determining the fracture energy GF of concrete", Mater. Struct., 18, 407-413. https://doi.org/10.1007/BF02472416
  12. Holschemacher, K., Mueller, T. and Ribakov, Y. (2010), "Effect of steel fibers on mechanical properties of high strength concrete", J. Matdes, 31(5), 2604-2615.
  13. Mihashi, H., Nomura, N. and Niiseki, S. (1991), "Influence of aggregate size on fracture process zone of concrete detected with 3D acoustic emission technique", Cement Concrete Res., 21, 737-744. https://doi.org/10.1016/0008-8846(91)90168-H
  14. Neville, A.M. (2012), Properties of Concrete, 5th Edition, Pearson Education, Delhi, India.
  15. Okan, K., Erdogan, O., Cengiz, D.A., Mohamed, L. and Khandaker, M.A.H. (2016), "Effects of milled cut steel fibers on the properties of concrete", KSCE J. Civil Eng. J., 20(7), 2783-2789. https://doi.org/10.1007/s12205-016-0577-3
  16. Petersson, P.E. (1980), "Fracture energy of concrete: Practical performance and experimental results", Cement Concrete Res., 10(1), 91-101. https://doi.org/10.1016/0008-8846(80)90055-1
  17. Ricardo, A. and Einsfeld, M.S.L.V. (2006), "Fracture parameters of high performance concrete", Cement Concrete Res., 36, 576-583. https://doi.org/10.1016/j.cemconres.2005.09.004
  18. RILEM FMT-89 (1990), "Size-effect method for determining fracture energy and process zone size of concrete", Mater. Struct., 23(6), 461-465. https://doi.org/10.1007/BF02472030
  19. RILEM TC QFS (2004), "Quasi-brittle fracture scaling and size effect-final report", Mater Struct., 37, 547-568.
  20. Walsh, P.F. (1972), "Fracture of plain concrete", Ind. Concrete J., 46, 469-476.
  21. Wolinski, S., Hordijk, D.A., Reinhardt, H.W. and Cornelissen, H.A.W. (1987), "Influence of aggregate size on fracture mechanics parameters of concrete", J. Cement Compos. Lightw. Concrete, 9, 95-103. https://doi.org/10.1016/0262-5075(87)90025-X
  22. Yan, A., Wu, K.R., Zhang, D. and Yao, W. (2001), "Effect of fracture path on the fracture energy of high-strength concrete", Cement Concrete Res., 31, 1601-1606. https://doi.org/10.1016/S0008-8846(01)00610-X
  23. Yazici, S., Inan, G. and Tabak, V. (2007), "Effect of aspect ratio and volume fraction of steel fiber on mechanical properties of SFRC", J. Conbuildmat., 21(6), 1250-1253.
  24. Zhang, J. and Victor, C.L. (2004), "Simulation of crack propagation in fiber reinforced concrete by fracture mechanics", J. Cemconres, 34, 333-339.
  25. Zhao, Z., Kwon, S.H. and Shah, S.P. (2008), "Effect of specimen size on fracture energy and softening curve of concrete: Part I. Experiments and fracture energy", Cement Concrete Res., 38, 1049-1060. https://doi.org/10.1016/j.cemconres.2008.03.017
  26. Zhou, F.P., Barr, B.I.G. and Lydon, F.D. (1995), "Fracture properties of high strength concrete with varying silica fume content and aggregates", Cement Concrete Res., 25, 543-552. https://doi.org/10.1016/0008-8846(95)00043-C

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