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Required ties in continuous RC beams to resist progressive collapse by catenary action

  • Alrudaini, Thaer M.S. (Department of Civil Engineering, Collage of Engineering, University of Basrah)
  • Received : 2019.06.09
  • Accepted : 2021.04.06
  • Published : 2021.05.25

Abstract

Ties are mandated by many design guidelines and codes to prevent the progressive collapse of buildings initiated by local failures. This study develops a model to estimate catenary/cable action capacity and the required ties in continuous reinforced concrete beams to bridge above the potential failed interior columns. The developed model is derived based on virtual work method and verified using test results presented in the literature. Also, parametric investigations are conducted to estimate the required ties in continuous reinforced concrete beams supporting one-way slab systems. A comparison is conducted between the estimated tie reinforcement using the developed model and that provided by satisfying the integrity provisions of the ACI 318-14 (2014) code. It is shown that the required tie reinforcements to prevent progressive collapse using the developed model are obviously larger than that provided by the integrity requirements of the ACI 318-14 (2014) code. It has been demonstrated that the increases in the demanded tie reinforcements over that provided by satisfying ACI 318-14 (2014) integrity provisions are varied between 1.01 and 1.46.

Keywords

Acknowledgement

The author acknowledges that the research described in this paper was unfunded by any organization, institutions or people.

References

  1. Abruzzo, J., Matta, A. and Panariello, G. (2006), "Study of mitigation strategies for progressive collapse of a reinforced concrete commercial building", J. Perform. Constr. Facil., 20(4), 348-390. https://doi.org/10.1061/(ASCE)0887-3828(2006)20:4(384).
  2. ACI 318-14 (2014), Building Code Requirement for Structural Concrete and Commentary, American Concrete Institute, Farmington Hill, MI, USA.
  3. Ahmadi, R., Rashidian, O., Abbasnia, R., Nav, F.M. and Usefi, N. (2016), "Experimental and numerical evaluation of progressive collapse behavior in scaled RC beam-column subassemblage", Shock. Vib., 2016, Article ID 3748435. http://dx.doi.org/10.1155/2016/3748435.
  4. ASCE (2007), Seismic Rehabilitation of Existing Buildings, American Society of Civil Engineers, New York, USA.
  5. ASCE (2010), Minimum Design Loads for Buildings and other Structures, American Society of Civil Engineers, New York, USA.
  6. Astaneh-Asl, A. (2003), "Progressive collapse prevention in new and existing buildings", Ninth Arab structural Engineering Conference, Abu Dhabi, UAE.
  7. British Standards Institutes (1996), Loading for Buildings. Part 1: Code of Practice for Dead and Imposed Loads, London, United Kingdom.
  8. British Standards Institutes (1997), Structural Use of Concrete. Part 1: Code of Practice for Design and Construction, London, United Kingdom.
  9. Choi, H. and Kim, J. (2011), "Progressive collapse-resisting capacity of RC beam-column sub-assemblage", Mag. Concrete Res., 63(4), 297-310. https://doi.org/10.1680/macr.9.00170.
  10. Elkholy, S. and El-Ariss, B. (2016), "Improving the robustness of reinforced concrete structures under sudden column losses", Int. J. Prot. Struct., 7(2), 282-300. https://doi.org/10.1177/2041419616649103.
  11. Eurocode 2 (2004), Design of Concrete Structures. Part 1: General Rules and Rules for Buildings, European Committee for Standardization, Brussels, Belgium.
  12. GSA (2003), Progressive Collapse Analysis and Design Guidelines for New Federal Office Buildings and Major Modernization Projects, U.S. General Services Administration USGSA, Washington, D.C., USA.
  13. GSA (2013), Alternate Path Analysis and Design Guidelines for Progressive Collapse Resistance, U.S GSA, Washington, D.C., USA.
  14. Jian, H. and Zheng, Y. (2014), "Simplified models of progressive collapse response and progressive collapse-resisting capacity curve of RC beam-column substructures", J. Perform. Constr. Facil., 28(4), 04014008. https://doi.org/10.1061/(ASCE)CF.1943-5509.0000492.
  15. Kim, J. and Yu, J. (2012), "Analysis of reinforced concrete frames subjected to column loss", Mag. Concrete Res., 64(1), 21-33. https://doi.org/10.1680/macr.2012.64.1.21.
  16. Lew, H.S., Bao, Y., Sade, F., Main, J.A., Pujol, S. and Soen, M.A. (2011), "An Experiental and computational study of reinforced concrete assemblages under a column removal scenario", NIST Technical Note 1720, National Institute of Standards and Technology, Gaithersburg, MD.
  17. Li, Y., Lu, X., Guan, H. and Ye, L. (2011), "An improved tie method for progressive collapse resistance design of reinforced concrete frame structures", Eng. Struct., 33(10), 2931-2942. https://doi.org/10.1016/j.engstruct.2011.06.017.
  18. Li, Y., Lu, X., Guan, H. and Ye, L. (2014), "Progressive collapse resistance demand of reinforced concrete frames under catenary mechanism", ACI Struct. J., 111(5), 1225-1234. https://doi.org/10.14359/51687029
  19. Lin, K., Li, Y., Lu, X. and Guan, H. (2016), "Effect of seismic and progressive collapse design on the vulnerability of RC frame structures", J. Perform. Constr. Facil., 31(1), 04016079. https://doi.org/10.1061/(ASCE)CF.1943-5509.0000942.
  20. NIST (2007), "Best practices for reducing the potential for progressive collapse in buildings", National Institute of Standards and Technology, US Department of Commerce, USA.
  21. Orton, S., Jirsa, J.O. and Bayrak, O. (2009), "Carbon fiber-reinforced polymer for continuity in existing reinforced concrete buildings vulnerable to collapse", ACI Struct. J., 106(5), 608-616.
  22. Pachernari, A., Keramati, A. and Pachernari, Z. (2010), "Investigation of progressive collapse in intermediate RC frame structures", Struct. Des. Tall Spec. Build., 22(2), 116-125. https://doi.org/10.1002/tal.663.
  23. Qian, K., Li, B. and Ma, J. (2014), "Load-carrying mechanism to resist progressive collapse of RC buildings", J. Struct. Eng., 141(2), 04014107. https://doi.org/10.1061/(ASCE)ST.1943-541X.0001046.
  24. Ren, P., Li, Y., Lu, X., Guan, H. and Zhou, Y. (2016), "Experimental investigation of progressive collapse resistance of one-way reinforced concrete beam-slab substructures under a middle-column-removal scenario", Eng. Struct., 118, 28-40. https://doi.org/10.1016/j.engstruct.2016.03.051.
  25. Sasani, M. and Sagiroglu, S. (2008), "Progressive collapse of reinforced concrete structures: a multihazard perspective", ACI Struct. J., 105(1), 96-103.
  26. Tsai, M., Lu, J. and Huang, B. (2014), "Column-loss response of beam-column sub-assemblages with different bar-cutoff patterns", Struct. Eng. Mech., 49(6), 775-792. http://doi.org/10.12989/sem.2014.49.6.775.
  27. Tsai, M.H. and Lin, B.H. (2008), "Investigation of progressive collapse resistance and inelastic response for an earthquake-resistant RC building subjected to column failure", Eng. Struct., 30(12), 3619-3628. https://doi.org/10.1016/j.engstruct.2008.05.031.
  28. UFC (2013), Design of Buildings to Resist Progressive Collapse, The Unified Facilities Criteria 4-023-03, Department of Defense.
  29. Yi, W., He, Q., Xiao, Y. and Kunnath, S.K. (2008), "Experimental study on progressive collapse-resistant behavior of reinforced concrete frame structures", ACI Struct. J., 105(4), 433-439.
  30. Yu, J. and Tan, K.H. (2013), "Structural behavior of RC beam-column subassemblages under a middle column removal scenario", J. Struct. Eng., 139(2), 233-250. https://doi.org/10.1061/(ASCE)ST.1943-541X.0000658.