DOI QR코드

DOI QR Code

Modeling the confined compressive strength of hybrid circular concrete columns using neural networks

  • Oreta, Andres W.C. (De La Salle University) ;
  • Ongpeng, Jason M.C. (De La Salle University)
  • Received : 2009.06.23
  • Accepted : 2011.03.16
  • Published : 2011.10.25

Abstract

With respect to rehabilitation, strengthening and retrofitting of existing and deteriorated columns in buildings and bridges, CFRP sheets have been found effective in enhancing the performance of existing RC columns by wrapping and bonding CFRP sheets externally around the concrete. Concrete columns and piers that are confined by both lateral steel reinforcement and CFRP are sometimes referred to as "hybrid" concrete columns. With the availability of experimental data on concrete columns confined by steel reinforcement and/or CFRP, the study presents modeling using artificial neural networks (ANNs) to predict the compressive strength of hybrid circular RC columns. The prediction of the ultimate confined compressive strength of RC columns is very important especially when this value is used in estimating the capacity of structures. The present ANN model used as parameters for the confining materials the lateral steel ratio (${\rho}_s$) and the FRP volumetric ratio (${\rho}_{FRP}$). The model gave good predictions for three types of confined columns: (a) columns confined with steel reinforcement only, (b) CFRP confined columns, and (c) hybrid columns confined by both steel and CFRP. The model may be used for predicting the compressive strength of existing circular RC columns confined with steel only that will be strengthened or retrofitted using CFRP.

Keywords

References

  1. Cevik, A. and Guzelbey, I. (2008), "Neural network modeling of strength enhancement for CFRP confined concrete cylinders", Build. Environ., 43, 751-763. https://doi.org/10.1016/j.buildenv.2007.01.036
  2. Chuang, P.H., Goh, A.T.C. and Wu, X. (1998), "Modeling the capacity of pin-ended slender reinforced concrete columns using neural networks", J. Struct. Eng. - ASCE, 124(7), 830-838. https://doi.org/10.1061/(ASCE)0733-9445(1998)124:7(830)
  3. De Lorenzis, L. and Tepfers, R. (2003), "A comparative study of models on confinement of concrete cylinders with fiber-reinforced polymers composites", J. Compos. Constr. - ASCE, 7(3), 219-237. https://doi.org/10.1061/(ASCE)1090-0268(2003)7:3(219)
  4. Hoshikuma, J., Kawashima, K., Nagaya, K. and Taylor, A.W. (1997), "Stress-strain model for confined reinforced concrete in bridge piers", J. Struct. Eng. - ASCE, 123(5), 624-633. https://doi.org/10.1061/(ASCE)0733-9445(1997)123:5(624)
  5. Hosotani, M. and Kawashima, K. (1999), "A stress-strain model for concrete cylinders confined by both carbon fiber sheets and tie reinforcement", J. Concrete Eng. - JSCE, 620(43), 25-42. (in Japanese)
  6. Karabinis, A.I. and Rousakis, T.C. (2002), "Concrete confined by FRP material: a plasticity approach", Eng. Struct., 24, 923-932. https://doi.org/10.1016/S0141-0296(02)00011-1
  7. Li, Y.F., Lin, C.T. and Sung, Y.Y. (2003), "A constitutive model for concrete confined with carbon fiber reinforced plastics", Mech. Mater., 35, 603-619. https://doi.org/10.1016/S0167-6636(02)00288-0
  8. Li, Y.F. and Fang, T.S. (2004), "A constitutive model for concrete confined by steel reinforcement and carbon fiber reinforced plastic sheet", Struct. Eng. Mech., 18(1), 21-40 https://doi.org/10.12989/sem.2004.18.1.021
  9. Mander, J.B., Priestley, M.J.N. and Park, R. (1998a), "Theoretical stress-strain model for confined concrete", J. Struct. Eng. - ASCE, 114(8), 1805-1826.
  10. Mander, J.B., Priestley, M.J.N. and Park, R. (1998b), "Observed stress-strain behavior of confined concrete", J. Struct. Eng. - ASCE, 114(8), 1827-1849.
  11. Miyauchi, K., Nishibayashi, S. and Inoue, S. (1997), "Estimation of strengthening effects with carbon fiber sheet for concrete column", Proc. FRPRCS-3, Sapporo, Japan, Vol. 1, 217-224.
  12. Oreta, A. and Kawashima, K. (2003), "Neural network modeling of confined compressive strength and strain of circular concrete columns", J. Struct. Eng. - ASCE, 129(4), 554-561. https://doi.org/10.1061/(ASCE)0733-9445(2003)129:4(554)
  13. Rousakis, T. (2001), "Experimental investigation of concrete cylinders confined by carbon FRP sheets, under monotonic and cyclic axial compressive load", Research Rep., Chalmers Univ. of Technology, Goteborg, Sweden.
  14. Saadatmanesh, H., Ehsani, M.R. and Li, M.W. (1994), "Strength and ductility of concrete columns externally reinforced with fiber composite straps", ACI Struct. J., 91(4), 434-447.
  15. Saafi, M., Toutanji, H. and Li, Zongjin (1999), "Behavior of concrete columns confined with fiber reinforced polymer tubes", ACI Mater. J., 94(4), 500-509.
  16. Saatcioglu, M. and Razvi, S.R. (1992), "Strength and ductility of confined concrete", J. Struct. Eng. - ASCE, 118(6), 1590-1607. https://doi.org/10.1061/(ASCE)0733-9445(1992)118:6(1590)
  17. Sakai, J., Kawashima, K., Une, H. and Yoneda, K. (2000), "Effect of tie spacing on stress-strain relation of confined concrete", J. Struct. Eng. - JSCE, 46(3), 757-766.
  18. Sakai, J. (2001), "Effect of lateral confinement of concrete and varying axial load on seismic response of bridges", Doctor of Engineering Dissertation, Department of Civil Engineering, Tokyo Institute of Technology, Tokyo.
  19. Samaan, M., Mirmiran, A. and Shahawy, M. (1998), "Model of concrete confined by fiber composites", J. Struct. Eng. - ASCE, 124(9), 1025-1031. https://doi.org/10.1061/(ASCE)0733-9445(1998)124:9(1025)
  20. Spoelstra, M.R. and Monti, G. (1999), "FRP-confined concrete model", J. Compos. Constr., 3(30), 143-150. https://doi.org/10.1061/(ASCE)1090-0268(1999)3:3(143)

Cited by

  1. Confining effect of concrete in double-skinned composite tubular columns vol.14, pp.5, 2014, https://doi.org/10.12989/cac.2014.14.5.613
  2. Software for adaptable eccentric analysis of confined concrete circular columns vol.10, pp.4, 2012, https://doi.org/10.12989/cac.2012.10.4.331
  3. Evaluation of ultimate conditions of FRP-confined concrete columns using genetic programming vol.162, 2016, https://doi.org/10.1016/j.compstruc.2015.09.005
  4. Investigation on the Sensitivity of Ultrasonic Test Applied to Reinforced Concrete Beams Using Neural Network vol.8, pp.3, 2018, https://doi.org/10.3390/app8030405
  5. Artificial neural network model using ultrasonic test results to predict compressive stress in concrete vol.19, pp.1, 2017, https://doi.org/10.12989/cac.2017.19.1.059
  6. Reliability analysis of strength models for CFRP-confined concrete cylinders vol.244, pp.None, 2020, https://doi.org/10.1016/j.compstruct.2020.112312
  7. Prediction of Properties of FRP-Confined Concrete Cylinders Based on Artificial Neural Networks vol.10, pp.9, 2011, https://doi.org/10.3390/cryst10090811
  8. Investigation of the effects of corrosion on bond strength of steel in concrete using neural network vol.28, pp.1, 2021, https://doi.org/10.12989/cac.2021.28.1.077
  9. Comparison of data mining methods to predict mechanical properties of concrete with fly ash and alccofine vol.15, pp.None, 2011, https://doi.org/10.1016/j.jmrt.2021.09.024
  10. Innovative Approach for Moment Capacity Estimation of Spirally Reinforced Concrete Columns Using Swarm Intelligence-Based Algorithms and Neural Network vol.26, pp.4, 2021, https://doi.org/10.1061/(asce)sc.1943-5576.0000612
  11. Forecasting Strength of CFRP Confined Concrete Using Multi Expression Programming vol.14, pp.23, 2021, https://doi.org/10.3390/ma14237134