DOI QR코드

DOI QR Code

Post-peak behavior and flexural ductility of doubly reinforced normal- and high-strength concrete beams

  • Pam, H.J. (Department of Civil Engineering, The University of Hong Kong) ;
  • Kwan, A.K.H. (Department of Civil Engineering, The University of Hong Kong) ;
  • Ho, J.C.M. (Department of Civil Engineering, The University of Hong Kong)
  • 발행 : 2001.11.25

초록

The complete moment-curvature curves of doubly reinforced concrete beams made of normal- or high-strength concrete have been evaluated using a newly developed analytical method that takes into account the stress-path dependence of the constitutive properties of the materials. From the moment-curvature curves and the strain distribution results obtained, the post-peak behavior and flexural ductility of doubly reinforced normal- and high-strength concrete beam sections are studied. It is found that the major factors affecting the flexural ductility of reinforced concrete beam sections are the tension steel ratio, compression steel ratio and concrete grade. Generally, the flexural ductility decreases as the amount of tension reinforcement increases, but increases as the amount of compression reinforcement increases. However, the effect of the concrete grade on flexural ductility is fairly complicated, as will be explained in the paper. Quantitative analysis of such effects has been carried out and a formula for direct evaluation of the flexural ductility of doubly reinforced concrete sections developed. The formula should be useful for the ductility design of doubly reinforced normal- and high-strength concrete beams.

키워드

참고문헌

  1. ACI Committee 363 (1992), "State-of-the-art report on high strength concrete", ACI 363-R92, American Concrete Institute, Detroit, U.S.A., 55pp.
  2. Attard, M.M., and Setunge, S. (1996), "The stress strain relationship of confined and unconfined concrete", ACI Mater. J., 93(5), 432-442.
  3. Attard, M.M., and Stewart, M.G. (1998), "A two parameter stress block for high-strength concrete", ACI Struct. J., 95(3), 305-317.
  4. Carreira, D.J., and Chu, K.H. (1986), "The moment-curvature relationship of reinforced concrete members", ACI J., 83(2), 191-198.
  5. Ho, J.C.M., Pam, H.J., and Kwan, A.K.H. (2001), "Theoretical analysis of complete moment-curvature behavior of reinforced high-strength concrete beams", Eng. Struct. (to be published).
  6. Pam, H.J., Kwan, A.K.H., and Islam, M.S. (2001), "Flexural strength and ductility of reinforced normal- and high-strength concrete beams", Proc., Institution of Civil Engineers, Structures and Buildings (to be published).
  7. Park, R., and Paulay, T. (1975), Reinforced Concrete Structures, John Wiley & Sons, New York, U.S.A., 769pp.
  8. Samra, R.M., Deeb, N.A.A., and Madi, U.R. (1996), "Transverse steel content in spiral concrete columns subjected to eccentric loading", ACI Struct. J., 93(4), 412-419.
  9. Sheikh, S.A., and Yeh, C.C. (1997), "Analytical moment-curvature relations for tied concrete columns", J. Struct. Eng., ASCE, 118(2), 529-544.

피인용 문헌

  1. Effects of strain hardening of reinforcement on flexural strength and ductility of reinforced concrete columns vol.20, pp.7, 2011, https://doi.org/10.1002/tal.554
  2. Effect of continuous spirals on uni-axial strength and ductility of CFST columns vol.104, 2015, https://doi.org/10.1016/j.jcsr.2014.10.007
  3. Predicting the Ductility of RC Beams Using Nonlinear Regression and ANN vol.40, pp.4, 2016, https://doi.org/10.1007/s40996-016-0033-0
  4. Design of high-strength concrete beams subjected to small axial loads vol.58, pp.6, 2006, https://doi.org/10.1680/macr.2006.58.6.333
  5. Inelastic design of low-axially loaded high-strength reinforced concrete columns vol.25, pp.8, 2003, https://doi.org/10.1016/S0141-0296(03)00050-6
  6. Flexural strength and ductility of reinforced concrete beams vol.152, pp.4, 2002, https://doi.org/10.1680/stbu.2002.152.4.361
  7. Effect of relative stiffness on moment redistribution in reinforced high-strength concrete beams vol.69, pp.14, 2017, https://doi.org/10.1680/jmacr.15.00499
  8. Strain-Gradient-Dependent Stress-Strain Curve for Normal-Strength Concrete vol.16, pp.11, 2013, https://doi.org/10.1260/1369-4332.16.11.1911
  9. Theoretical study on effect of confinement on flexural ductility of normal and high-strength concrete beams vol.56, pp.5, 2004, https://doi.org/10.1680/macr.2004.56.5.299
  10. Limited ductility design of reinforced concrete columns for tall buildings in low to moderate seismicity regions vol.20, pp.1, 2011, https://doi.org/10.1002/tal.610
  11. Deformability design of high-performance concrete beams vol.22, pp.9, 2013, https://doi.org/10.1002/tal.728
  12. Effectiveness of adding confinement for ductility improvement of high-strength concrete columns vol.32, pp.3, 2010, https://doi.org/10.1016/j.engstruct.2009.11.017
  13. Flexural ductility and deformability of concrete beams incorporating high-performance materials vol.21, pp.2, 2012, https://doi.org/10.1002/tal.579
  14. Flexural ductility of high-strength concrete columns with minimal confinement vol.42, pp.7, 2009, https://doi.org/10.1617/s11527-008-9431-5
  15. Structural behavior of ultra high performance concrete beams subjected to bending vol.32, pp.11, 2010, https://doi.org/10.1016/j.engstruct.2010.07.017
  16. Flexural ductility design of high-strength concrete columns vol.22, pp.1, 2013, https://doi.org/10.1002/tal.662
  17. Curvature ductility of high strength concrete beams according to Eurocode 2 vol.58, pp.1, 2016, https://doi.org/10.12989/sem.2016.58.1.001
  18. Numerical Analysis on the High-Strength Concrete Beams Ultimate Behaviour vol.245, 2017, https://doi.org/10.1088/1757-899X/245/3/032013
  19. Improving flexural ductility of high-strength concrete beams vol.159, pp.6, 2006, https://doi.org/10.1680/stbu.2006.159.6.339
  20. Improving design limits of strength and ductility of NSC beam by considering strain gradient effect vol.47, pp.2, 2013, https://doi.org/10.12989/sem.2013.47.2.185
  21. Flexural ductility design of high-strength concrete beams vol.22, pp.6, 2013, https://doi.org/10.1002/tal.714
  22. Flexural Strength and Deformability Design of Reinforced Concrete Beams vol.14, 2011, https://doi.org/10.1016/j.proeng.2011.07.176
  23. Experimental Tests on High-Strength Concrete Columns Subjected to Combined Medium Axial Load and Flexure vol.15, pp.8, 2012, https://doi.org/10.1260/1369-4332.15.8.1359
  24. Minimum flexural ductility design of high-strength concrete beams vol.56, pp.1, 2004, https://doi.org/10.1680/macr.2004.56.1.13
  25. FE modeling of inelastic behavior of reinforced high-strength concrete continuous beams vol.49, pp.3, 2014, https://doi.org/10.12989/sem.2014.49.3.373
  26. A minimum ductility design method for non-rectangular high-strength concrete beams vol.1, pp.2, 2004, https://doi.org/10.12989/cac.2004.1.2.115
  27. Ductility of symmetrically reinforced concrete columns vol.61, pp.5, 2009, https://doi.org/10.1680/macr.2008.00149
  28. Limited Deformability Design of High-strength Concrete Beams in Low to Moderate Seismicity Regions vol.17, pp.3, 2011, https://doi.org/10.3846/13923730.2011.594219
  29. Predictions of curvature ductility factor of doubly reinforced concrete beams with high strength materials vol.12, pp.6, 2013, https://doi.org/10.12989/cac.2013.12.6.831
  30. Effect of small axial force on flexural ductility design of high-strength concrete beams vol.24, pp.11, 2015, https://doi.org/10.1002/tal.1209
  31. Effects of strain hardening of steel reinforcement on flexural strength and ductility of concrete beams vol.19, pp.2, 2005, https://doi.org/10.12989/sem.2005.19.2.185
  32. Complete nonlinear response of reinforced concrete beams under cyclic loading vol.16, pp.2, 2007, https://doi.org/10.1002/tal.301
  33. Predictions of Curvature Ductility Factor of Reinforced Concrete Beam Sections Used High Strength Concrete and Steel vol.33, pp.2, 2013, https://doi.org/10.12652/Ksce.2013.33.2.483
  34. Curvature ductility prediction of reinforced high‐strength concrete beam sections vol.16, pp.4, 2010, https://doi.org/10.3846/jcem.2010.52
  35. Ductility Design of High-Strength Concrete Beams and Columns vol.13, pp.4, 2010, https://doi.org/10.1260/1369-4332.13.4.651
  36. Curvature Ductility of Concrete Element under High Strain-Rates vol.166-169, pp.1662-7482, 2012, https://doi.org/10.4028/www.scientific.net/AMM.166-169.2910
  37. vol.20, pp.1, 2013, https://doi.org/10.1080/1023697X.2013.785084
  38. Effects of Using High-strength Concrete on Flexural Ductility of Reinforced Concrete Beams vol.9, pp.1, 2002, https://doi.org/10.1080/1023697x.2002.10667863
  39. Complete moment-curvature relationship of reinforced normal- and high-strength concrete beams experiencing complex load history vol.2, pp.4, 2005, https://doi.org/10.12989/cac.2005.2.4.309
  40. Effect of axial load on flexural behaviour of cyclically loaded RC columns vol.3, pp.4, 2001, https://doi.org/10.12989/cac.2006.3.4.261
  41. Comparison between ACI 318-05 and Eurocode 2 (EC2-94) in flexural concrete design vol.32, pp.6, 2009, https://doi.org/10.12989/sem.2009.32.6.705
  42. Normalised rotation capacity for deformability evaluation of high-performance concrete beams vol.1, pp.3, 2001, https://doi.org/10.12989/eas.2010.1.3.269
  43. Maximum concrete stress developed in unconfined flexural RC members vol.8, pp.2, 2001, https://doi.org/10.12989/cac.2011.8.2.207
  44. Minimum deformability design of high-strength concrete beams in non-seismic regions vol.8, pp.4, 2001, https://doi.org/10.12989/cac.2011.8.4.445
  45. Inelastic design of high-axially loaded concrete columns in moderate seismicity regions vol.39, pp.4, 2001, https://doi.org/10.12989/sem.2011.39.4.559
  46. Concurrent flexural strength and deformability design of high-performance concrete beams vol.40, pp.4, 2001, https://doi.org/10.12989/sem.2011.40.4.541
  47. Effect of confinement on flexural ductility design of concrete beams vol.20, pp.2, 2001, https://doi.org/10.12989/cac.2017.20.2.129
  48. New approach for Ductility analysis of partially prestressed concrete girders vol.70, pp.3, 2001, https://doi.org/10.12989/sem.2019.70.3.257
  49. Shear performance of an innovative UHPFRC deck of composite bridge with coarse aggregate vol.7, pp.4, 2019, https://doi.org/10.12989/acc.2019.7.4.219
  50. Experimental and numerical studies on flexural behavior of high strength concrete beams containing waste glass vol.11, pp.3, 2001, https://doi.org/10.12989/acc.2021.11.3.239
  51. Evaluation of Flexural Performance of Composite Girder Consisting of Square Steel Pipes and Reinforced Lattice vol.33, pp.4, 2021, https://doi.org/10.7781/kjoss.2021.33.4.247