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A reliable approach for determining concrete strength in structures by using cores

  • Durmus, Aysegul (Faculty of Engineering (Civil), Karadeniz Technical University) ;
  • Ozturk, Hasan Tahsin (Faculty of Engineering (Civil), Karadeniz Technical University) ;
  • Durmus, Ahmet (Faculty of Engineering (Civil), Karadeniz Technical University)
  • Received : 2011.09.15
  • Accepted : 2012.11.05
  • Published : 2013.05.01

Abstract

As known, concrete classes are described as strength of standard specimens produced and kept in ideal conditions, not including reinforcement and not subjected to any load effect before. Under the circumstances, transforming core strengths to the standard specimen strength is necessary and considering all parameters, affected on the core strength, is inevitable. In fact, effects of the reinforcement and the load history on concrete strength are generally neglected when these mentioned transforms are performing. The main purpose of this paper is investigating the effects of the reinforcement and the load history on the core strength. This investigation is experimentally performed on cores drilled from specimens having different keeping conditions, reinforced, unreinforced, subjected to bending and central pressure in various proportions of failure load during specified periods. Obtained results show that the importance of these effects cannot be neglected.

Keywords

References

  1. ACI Committee 318 (2008), Building code requirements for structural concrete and commentary, American Concrete Institute, Farmington Hills, Mich.
  2. ACI Committee 214.4R. (2010), Guide for obtaining cores and interpreting compressive strength results, American Concrete Institute, Farmington Hills, Mich.
  3. ACI Committee 437R. (2003), Strength evaluation of existing concrete buildings, American Concrete Institute, Farmington Hills, Mich.
  4. Arioz, O., Tuncan, M., Ramyar, K. and Tuncan, A. (2006), "A comparative study on the interpretation of concrete core strength results", Mag. Concrete Res., 58(2), 117-122. https://doi.org/10.1680/macr.2006.58.2.117
  5. Arioz, O., Tuncan, M., Tuncan, A., Ramyar, K. and Cil, I. (2007), "Some factors influencing effect of core diameter on measured concrete compressive strength", ACI Mater. J., 104(3), 291-296.
  6. Bartlett, F.M. and MacGregor, J.G. (1994a), "Effect of moisture condition on concrete core strengths", ACI Mater. J., 91(3), 227-236.
  7. Bartlett, F.M. and MacGregor, J.G. (1994b), "Effect of core length-to-diameter ratio on concrete core strengths", ACI Mater. J., 91(4), 339-348.
  8. Bartlett, F.M. and MacGregor, J.G. (1994c), "Effect of core diameter on concrete core strengths", ACI Mater. J., 91(5), 460-470.
  9. Bloem, D.L. (1968), "Concrete strength in structures", ACI J., 65(3), 176-187.
  10. BS 1881 (1983), Method for determination of the compressive strength of concrete cores, British Standard Institution, London.
  11. Bungey, J.H. (1979), "Determining concrete strength by using small diameter cores", Mag. Concrete Res., 31(107), 91-98. https://doi.org/10.1680/macr.1979.31.107.91
  12. Bungey, J.H., Millard, S.G. and Grantham, M.G. (2006), Testing of concrete in structures, 4th edition, Taylor & Francis.
  13. Dolce, M., Masi, A. and Ferrini, M. (2006), "Estimation of the actual in-place concrete strength in assessing existing RC structures", Proceedings of the Second International fib Congress, Naples, Italy.
  14. Durmus, A. (1976), Contrubition a l'etude, des criters de ruine d'elements de structures en beton-application aux piece armees, These de Docteur Ingenieur, Universite Paul Sabatier, INSA, Na d'ordre 556, Toulouse, France.
  15. EN 933-8 (1999), Test for geometrical properties of aggregates- Part 8: Assessment of fines- sand equivalent test, The European Committee for Standardization (CEN).
  16. EN 1097-6/A1. (2005), Tests for mechanical and physical properties of aggregates - Part 6: Determination of particle density and water absorption, The European Committee for Standardization (CEN).
  17. EN 12390-3. (2009), Testing hardened concrete-Part 3: Compressive strength of test specimens, The European Committee for Standardization (CEN).
  18. EN 13791 (2007), Assessment of in-situ compressive strength in structures and precast concrete components, The European Committee for Standardization (CEN).
  19. EN ISO 6982 (2009), Metallic materials - tensile testing - Part 1: Method of test at room temperature, The European Committee for Standardization (CEN).
  20. Gozacan, A. (2002), Determining concrete strength on structures by the help of cores more accurately, MSc Thesis, Karadeniz Technical University, Institute of Science, Trabzon, Turkey.
  21. ISO 6782 (1982), Aggregates for concrete - Determination of bulk density, International Organization for Standardization.
  22. Malhotra, V.M. (1979), "In-situ strength evaluation of concrete", Concrete Int. Des. Constr., 1(9).
  23. Nikbin, I.M., Eslami, M. and Rezvani, Z.M. (2009), "An experimental comparative survey on the interpretation of concrete core strength results", Euro. J. Sci. Res., 37(3), 445-456.
  24. Nevil, A.M. (1977), Testing of hardened concrete, Pitman Publishing.
  25. Sinha, B.P., Gerstle, K.H. and Tulin, L.G. (1964), "Stress strain relations for concrete under cyclic loading", ACI J., 61(2), 195-212.
  26. Sullivan, P.J.E. (1991), "Testing and evaluation of concrete strength in structures", ACI Mater. J., 88(5), 530-535.
  27. Tam, C.T., Ooi, C.S. and Ooi, K.L. (1978), "Factors influencing strength of concrete cores", Proceedings of Our World in Concrete & Structure, 3rd. Conference, Shangri-La Hotel, Bangkok, Thailand, 607-1179.
  28. Tuncan, M., Arioz, O., Ramyar, K. and Karasu, B. (2008), "Assessing concrete strength by means of small diameter cores", J. Constr. Build. Mater., 22(5), 981-988. https://doi.org/10.1016/j.conbuildmat.2006.11.020
  29. Yip, W.K. (1993), "Estimating the potential strength of concrete with prior load history", Mag. Concrete Res., 45(165), 301-308. https://doi.org/10.1680/macr.1993.45.165.301