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Nonlinear finite element analysis of torsional R/C hybrid deep T-beam with opening

  • Lisantono, Ade (Department of Civil Engineering, Faculty of Engineering, Universitas Atma Jaya Yogyakarta)
  • Received : 2011.12.13
  • Accepted : 2012.10.29
  • Published : 2013.05.01

Abstract

A nonlinear finite element analysis of R/C hybrid deep T-beam with web opening subjected to pure torsion is presented. Hexahedral 8-nodes and space truss element were used for modeling concrete and reinforcement. The reinforcement was assumed perfectly bonded to the corresponding nodes of the concrete element. The constitutive relations for concrete and reinforcement are based on the modified field theory and elastic perfectly plastic. The smear crack approach was adopted for modeling the crack. The torque-twist angle relationship curve based on the finite element analysis was compared to the experimental results. The comparison shows that the curve of torque-twist angle predicted by the nonlinear finite element analysis is linear before cracking and close to the experimental result. After cracking, the curve becomes nonlinear and stiffer compared to the experimental result.

Keywords

References

  1. ACI Committee 318 (2008), Building code requirements for structural concrete (ACI 318M-08) and commentary, American Concrete Institute, Detroit.
  2. Alshoaibi, A.M. (2010), "Finite element procedures for the numerical simulation of fatigue crack propagation under mixed mode loading", Struct. Eng. Mech., 35(3), 283-299. https://doi.org/10.12989/sem.2010.35.3.283
  3. Aurich, M., Filho, A.C., Bittencourt, T.N. and Shah, S.P. (2011), "Finite element analysis of cracking at early age", Struct. Eng. Mech., 37(5), 459-473. https://doi.org/10.12989/sem.2011.37.5.459
  4. Bedard, C. and Kotsovos, M.D. (1986), "Fracture processes of concrete for NLFEA methods", J. Struct. Eng.-ASCE, 112(3), 573-587. https://doi.org/10.1061/(ASCE)0733-9445(1986)112:3(573)
  5. Broo, H., Lundgren, K. and Plos, M. (2008), A guide to non-linear finite element modelling of shear and torsion in concrete bridge, Report 2008: 18, Department of Civil and Environmental Engineering, Division of Structural Engineering, Concrete Structure, Chalmers University of Technology, Goteborg, Sweden.
  6. Cervenka, J., Bazant, Z.P. and Wierer, M. (2005), "Equivalent localization element for crack band approach to mesh-sensitivity in microplane model", Int. J. Numer. Meth. Eng., 62(5), 700-726. https://doi.org/10.1002/nme.1216
  7. Fafitis, A. and Won, Y.H. (1994), "Nonlinear finite element analysis of concrete deep beams", J. Struct. Eng.-ASCE, 120(4), 1202-1220. https://doi.org/10.1061/(ASCE)0733-9445(1994)120:4(1202)
  8. Hsu, T.T.C. and Mo, Y.L. (1985a), "Softening of concrete in torsional members-theory and tests", ACI J., 82(3), 290-303.
  9. Hsu, T.T.C. and Mo, Y.L. (1985b), "Softening of concrete in torsional members-design recommendations", ACI J., 82(4), 443-452.
  10. Hsu, T.T.C. (1988), "Softened truss model theory for shear and torsion", ACI Struct. J., 85(6), 624-635.
  11. Hsu, T.T.C. (1991a), "Nonlinear analysis of concrete membrane elements", ACI Struct. J., 88(5), 552-561.
  12. Hsu, T.T.C. (1991b), "Nonlinear analysis of concrete torsional members", ACI Struct. J., 88(6), 674-682.
  13. Jeng, C.H, and Hsu, T.T.C. (2009), "A softened membrane model for torsion in reinforced concrete members", Eng. Struct., 31(9), 1944-1954. https://doi.org/10.1016/j.engstruct.2009.02.038
  14. Jeng, C.H. (2010), "Simple rational formulas for cracking torque and twist of reinforced concrete members", ACI Struct. J., 107(2), 189-198.
  15. Kotsovos, M.D. and Pavlovic, M.N. (1995), Structural concrete finite element analysis for limit state design, Thomas Telford, London.
  16. Kwak, H.G. and Filippou, F.C. (1990), Finite element analysis of reinforced concrete structures under monotonic loads, Report No. UCB/SEMM-90/14, Department of Civil Engineering, University of California at Berkeley, California.
  17. Lisantono, A., Besari, M.S., Suhud, R. and Soemardi, B.W. (2001), "The effect of LWC flanges and web opening on the torsional capacity of reinforced concrete deep T-beams", Proceeding of the Eighth East Asia-Pasific Conference on the Structural Engineering and Construction, Nanyang Technological University, Singapore, 1349.
  18. Lisantono, A., Besari, M.S., Suhud, R. and Soemardi, B.W. (2002a), "The effect of web opening location on the torsional behavior of reinforced concrete hybrid deep T-beams", J. Teknik Sipil, Universitas Tarumanagara, 2, Tahun ke VIII-Juli, 183-194.
  19. Lisantono, A., Besari, M.S., Suhud, R. and Soemardi, B.W. (2002b), "Experimental study on the effect of web opening location on the behavior of reinforced concrete hybrid deep T-beam subjected to pure torsion-various location in the vertical direction", Media Teknik, Majalah Ilmiah Teknologi, Universitas Gadjah Mada, 4 Th. XXIV, Edisi November, 16-22.
  20. Lisantono, A., Besari, M.S., Suhud, R. and Soemardi, B.W. (2004), "Experimental investigation on the effect of web opening dimension on the behavior of R/C hybrid deep T-beam subjected to pure torsion", J. Teknik Sipil, Institut Teknologi Bandung, 11(1), 1-7.
  21. Lisantono, A. (2004), Studi perilaku torsi murni balok tinggi-T hybrid beton normal dan ringan dengan bukaan pada badan, Dissertation for the Doctor Degree, Institut Teknologi Bandung.
  22. Lisantono, A. (2005), "Sensitivity of shear retention factor in nonlinear finite element analyisis of torsional reinforced convcrete hybrid deep T-beams", J. Teknik Sipil, Program Studi Teknik Sipil, Fakultas Teknik, Universitas Atma Jaya Yogyakarta, 6(1), 36-43.
  23. Lundgren, K. (1999), Three-dimensional modelling of bond in reinforced concrete, Thesis for the Degree of Doctor of Philosophy, Division of Concrete Structures, Department of Structural Engineering, Chalmers University of Technology, Goteborg, Sweden.
  24. Mahmood, M.N. (2007), "Nonlinear analysis of reinforced concrete beams under pure torsion", J. Appl. Sci., 7(22), 3524-3529. https://doi.org/10.3923/jas.2007.3524.3529
  25. Mau, S.T. and Hsu, T.T.C. (1987), "Shear behavior of reinforced concrete framed wall panels with vertical loads", ACI Struct. J., 84(3), 228-234.
  26. Pimentel, M., Cachim, P. and Figueiras, J. (2008), "Deep-beams with indirect support: numerical modeling and experimental assessment", Comput. Concrete, 5(2), 117-134. https://doi.org/10.12989/cac.2008.5.2.117
  27. Shayanfar, M.A. and Safiey, A. (2008), "A new approach for nonlinear finite element analysis of reinforced concrete structures with corroded reinforcements", Comput. Concrete, 5(2), 155-174. https://doi.org/10.12989/cac.2008.5.2.155
  28. Valipour, H.R. and Foster, S.J. (2010), "Nonlinear analysis of 3D reinforced concrete frames: effect of section torsion on the global response", Struct. Eng. Mech., 36(4), 421-445. https://doi.org/10.12989/sem.2010.36.4.421
  29. Vecchio, F.J. and Collins, M.P. (1986), "The modified compression-field theory for reinforced concrete element subjected to shear", ACI J., 83(2), 219-231.
  30. Vecchio, F.J. (1989), "Nonlinear finite element analysis of reinforced concrete membranes", ACI Struct. J., 86(1), 26-35.

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