DOI QR코드

DOI QR Code

Finite element modeling of a deteriorated R.C. slab bridge: lessons learned and recommendations

  • Ho, I-Kang (CICI Corporation) ;
  • Shahrooz, Bahram M. (Department of Civil & Environmental Engineering, University of Cincinnati)
  • Published : 1998.04.25

Abstract

The test results from non-destructive and destructive field testing of a three-span deteriorated reinforced concrete slab bridge are used as a vehicle to examine the reliability of available tools for finite-element analysis of in-situ structures. Issues related to geometric modeling of members and connections, material models, and failure criteria are discussed. The results indicate that current material models and failure criteria are adequate, although lack of inelastic out-of-plane shear response in most nonlinear shell elements is a major shortcoming that needs to be resolved. With proper geometric modeling, it is possible to adequately correlate the measured global, regional, and local responses at all limit states. However, modeling of less understood mechanisms, such as slab-abutment connections, may need to be finalized through a system identification technique. In absence of the experimental data necessary for this purpose, upper and lower bounds of only global responses can be computed reliably. The studies reaffirm that success of finite-element models has to be assessed collectively with reference to all responses and not just a few global measurements.

Keywords

Acknowledgement

Supported by : National Science Foundation

References

  1. Aktan, A.E., Zwick, M., Miller, R.A. and Shahrooz, B.M. (1992), "Nondestructive and destructive testing of a decommissioned RC slab highway bridge and associated analytical studies", Transportation Record No.1371, Transportation Research Board.
  2. Barzegar, F. (1989), "Analysis of RC membrane elements with anisotropic reinforcement", J. Struct. Engrg., ASCE, 115(3), 647-665. https://doi.org/10.1061/(ASCE)0733-9445(1989)115:3(647)
  3. Clauss, D.B. (1989), "Round-robin analysis of the behavior of 1:6-scale R.C. containment model pressurized to failure: post-test evaluations", NUREG/CR-5341-SAND89-0349, Sandia National Laboratories, Nuclear Regulatory Commission, Washington, D.C.
  4. Chen, W.F. (1982), "Plasticity in reinforced concrete", McGraw-Hill, Inc.
  5. Gallegos-Cazares, S. and Schnobrich, W.C. (1988), "Effects of creep and shrinkage on the behavior of reinforced concrete gable and roof hyperbolic-paraboloids", Civil Engineering Series, SRS No. 543, University of Illinois at Urbana-Champaign, Illinois.
  6. Gilbert, R.I. and Warner, R.F. (1978), "Tension stiffening in reinforced concrete slabs", J. Struct. Engrg., ASCE, 104(12), 1885-1900.
  7. Gupta, A.K. and Habibullah, A. (1982), "Changing crack direction in reinforced concrete analysis", Report, Department of Civil Engineering, North Carolina State University, Rayleigh, North Carolina, January, 1982.
  8. Habibullah, A. and Wilson, E.L. (1989), SAP90 User's Manual, Computers & Structures Inc., Berkeley, CA.
  9. Ho, I.K. and Shahrooz, B.M. (1993), "Nonlinear finite element analysis of a deteriorated reinforced concrete slab bridge", Report No. UC-CII 93/02, Cincinnati Infrastructure Institute.
  10. Hsieh, S., Ting, E. and Chen, W.F. (1982), "A plastic fracture model for concrete", International Journal of Solids and Structures, 18(3), 181-197. https://doi.org/10.1016/0020-7683(82)90001-4
  11. Kupfer, H. and Gerstle, K.N. (1973), "Behavior of concrete under biaxial stress", J. Eng. Mech. Div., ASCE, 99(4), 852-866.
  12. Lopez, L.A., Dodds, R.H., Rehak, D.R. and Schmidt, R.J. (1987), "POLO-FINITE: a structural mechanics system for linear and nonlinear, static and dynamic analysis", Civil Engineering Systems Laboratory, University of lllinois at Urbana-Champaign, Illinois; Department of Civil Engineering, University of Kansas, Lawrence, Kansas; Department of Civil Engineering, Carnegie-Mellon University, Pittsburgh, Pennsylvania, and Department of Civil Engineering, University of Wyoming, Laramie, Wyoming.
  13. Massicotte, B., Elwi, A.E. and MacGregor, J.G. (1990), "Tension-stiffening model for planar reinforced concrete members", J. Struct. Engrg., ASCE, 116(11), November, 3039-3058. https://doi.org/10.1061/(ASCE)0733-9445(1990)116:11(3039)
  14. Mau, S.T. and Hsu, T.C. (1987), "Shear strength prediction for deep beams with web reinforcement", ACI Structural Journal, Nov.-Dec. 513-523.
  15. Milford, R.V. and Schnobrich, W.C. (1984), "Nonlinear behavior of reinforced concrete cooling towers", Civil Engineering Studies, Structural Research Series, No. 514, University of Illinois at Urbana-Champaign.
  16. Miller, R.A., Aktan, A.E. and Shahrooz, B.M. (1994), "Destructive testing of a decommissioned concrete slab bridge", J. Struct. Engrg., ASCE, 120(7), 2176-2198. https://doi.org/10.1061/(ASCE)0733-9445(1994)120:7(2176)
  17. Okamura, H., Maekawa, K. and Sivasubramaniyam, S. (1985), "Verification of modeling for reinforced concrete finite element", In Finite Element Analysis of Reinforced Concrete Structures, edited by Meyer Ch., and Okamura H., Published by ASCE, 528-543.
  18. Shahrooz, B.M., Ho, I.K., Aktan, A.E., Borst, R., Blaauwendraad, J., Veen, C., Iding, R.H. and Miller, R.A. (1994), "Nonlinear finite element analysis of a deteriorated R.C. slab bridge", J. Struct. Engrg., ASCE, 120(2), 422-440. https://doi.org/10.1061/(ASCE)0733-9445(1994)120:2(422)
  19. van Mier, J.G.M. (1987), "Examples of nonlinear analysis of reinforced concrete structures with DIANA", HERON, 32(3).
  20. Vecchio, F.J. and Collins, M.P. (1986), "The modified compression-field theory for reinforced concrete elements subjected to shear", ACI Struc. J., 83(2), 219-231.
  21. Zwick, M. et al. (1992), "Nondestructive and destructive testing of a RC slab bridge and associated analytical studies", Report No. UC-CII 92/02, University of Cincinnati.

Cited by

  1. Ultimate Flexural Capacity of a Severely Damaged Reinforced Concrete T-Girder Bridge vol.22, pp.5, 2017, https://doi.org/10.1061/(ASCE)BE.1943-5592.0001027
  2. Finite element failure analysis of reinforced concrete T-girder bridges vol.24, pp.2, 2002, https://doi.org/10.1016/S0141-0296(01)00107-9
  3. Non-linear finite-element analysis of the shear response in prestressed concrete bridges vol.61, pp.8, 2009, https://doi.org/10.1680/macr.2008.61.8.591
  4. Failure Testing of a Full-Scale Reinforced Concrete T-Girder Bridge vol.243-249, pp.1662-8985, 2011, https://doi.org/10.4028/www.scientific.net/AMR.243-249.1767