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A Novel Experimental Approach for Evaluating Residual Capacity of Fire Damaged Concrete Members

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Abstract

Reinforced concrete structures exposed to fire retain significant residual capacity due to better fire resistance properties of concrete, and future re-use of the structure is generally possible. Nonetheless, fire induced degradation can result in a permanent loss of strength and serviceability. An accurate evaluation of residual capacity is necessary for taking informed decisions on future use and need for repairs in fire damaged concrete structures. This paper proposes a novel three-stage experimental approach for evaluating residual capacity of fire damaged concrete members. The approach comprises of evaluating response in three sequential stages, namely, during pre-fire exposure condition; during fire exposure comprising of heating and cooling phases of fire, followed by complete cool down of the member to ambient temperature; and then finally during post-fire exposure condition. This approach is applied to evaluate residual capacity of four concrete beams subject to different fire scenarios and load levels. Results indicate that fire damaged concrete beams retain significant residual capacity even after exposure to heating duration lasting beyond their prescriptive fire rating. Furthermore, decay (cooling) rate of fire exposure impacts extent of post-fire residual capacity retained in reinforced concrete beams. Also, increasing load level present prior to, and during fire exposure (including extended cool down) lead to a greater reduction in stiffness than residual capacity of fire damaged concrete beams. Finally, relatively large post-fire deflections occur in fire damaged concrete beams which adversely impact their serviceability limit state. The proposed approach can form the basis to conduct standardized tests for determining residual capacity of fire damaged concrete members.

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References

  1. EN 1992-1-2 (2004) Eurocode 2: design of concrete structures. Part 1–2: General rules—structural fire design. Commission of European Communities, Brussels, Belgium

  2. ASTM E119 (2008) Standard test methods for determining effects of large hydrocarbon pool fires on structural members and assemblies. American Society for Testing and Materials, West Conshohocken, PA

  3. Beitel JJ, Iwankiw NR (2005) Historical survey of multi-story building collapses due to fire. Fire Prot Eng 42–48

  4. Tovey A, Crook R (1986) Experience of fires in concrete structures. Vol 20. Detroit: evaluation and repair of the damage to concrete, Special Publication SP 92, American Concrete Institute

  5. Gosain N, Drexler F, Choudhuri D (2008) Evaluation and repair of fire damaged buildings. Struct Mag 18–22

  6. Alonso C (2009) Assessment of post-fire reinforced concrete structures: determination of depth of temperature penetration and associated damage. Concrete Repair, Rehabilitation and Retroitting II. pp 471–8

  7. Awoyera P, Akinwumi I (2014) Forensic investigation of fire-affected reinforced concrete buildings. IOSR J 11:17–23

    Google Scholar 

  8. Annerel E, Taerwe L (2010) Assessment of the residual strength of concrete members after fire exposure. In: Hirt M, Radic J, Mandic A (eds) Joint IABSE-FIB conference: codes structural engineering: development and needs for international practice (IABSE-2010), Department of Structural Engineering, Ghent University, Dubrovnik, pp 1285–92

  9. Kodur VKR, Agrawal A (2015) Critical factors governing the residual response of reinforced concrete beams exposed to fire. Fire Technol. https://doi.org/10.1007/s10694-015-0527-5

    Article  Google Scholar 

  10. Kodur VKR, Agrawal A (2016) An approach for evaluating residual capacity of reinforced concrete beams exposed to fire. Eng Struct 110:293–306. https://doi.org/10.1016/j.engstruct.2015.11.047

    Article  Google Scholar 

  11. Kodur VKR, Dwaikat MB, Fike RS (2010) An approach for evaluating the residual strength of fire-exposed RC beams. Mag Concr Res 62:479–88. https://doi.org/10.1680/macr.2010.62.7.479

    Article  Google Scholar 

  12. Xu YY, Wu B, Jiang M, Huang X (2012) Experimental study on residual flexural behavior of reinforced concrete beams after exposure to fire. Adv Mater Res 457–458:183–7. https://doi.org/10.4028/www.scientific.net/amr.457-458.183

    Article  Google Scholar 

  13. Kodur VKR, Hibner D, Agrawal A (2017) Residual response of reinforced concrete columns exposed to design fires. Procedia Eng 210:574–81. https://doi.org/10.1016/j.proeng.2017.11.116

    Article  Google Scholar 

  14. Moetaz MEH, Elibiarif S, Ragabs M (1996) Effect of fire on flexural behaviour. Constr Build Mater 10:147–50. http://dx.doi.org/10.1016/0950-0618(95)00041-0

    Article  Google Scholar 

  15. Kumar A, Kumar V (2003) Behaviour of RCC beams after exposure to elevated temperatures. Inst Eng India Civ Eng Div 84:165–70

    Google Scholar 

  16. Dwaikat MB, Kodur VKR (2009) Response of restrained concrete beams under design fire exposure. J Struct Eng 135:1408–17

    Article  Google Scholar 

  17. Choi EG, Shin YS, Kim HS (2013) Structural damage evaluation of reinforced concrete beams exposed to high temperatures. J Fire Prot Eng 23:135–51. https://doi.org/10.1177/1042391512474666

    Article  Google Scholar 

  18. Hsu JH, Lin CS (2008) Effect of fire on the residual mechanical properties and structural performance of reinforced concrete beams. J Fire Prot Eng 18:245–74. https://doi.org/10.1177/1042391507077171

    Article  Google Scholar 

  19. Bai LL, Wang ZQ (2011) Residual bearing capacity of reinforced concrete member after exposure to high temperature. Adv Mater Res 368–373:577–81. https://doi.org/10.4028/www.scientific.net/amr.368-373.577

    Article  Google Scholar 

  20. ACI (2008) ACI 318-08: building code requirements for reinforced concrete. Vol. 2. ACI, Detroit

    Google Scholar 

  21. Abd-elaty MAA (2014) Compressive strength prediction of Portland cement concrete with age using a new model. HBRC J 10(2): 145–155. https://doi.org/10.1016/j.hbrcj.2013.09.005

    Article  Google Scholar 

  22. Mindess S, Young JF, Darwin D (2003) Concrete. Prentice-Hall Inc., Englewood Cliffs

    Google Scholar 

  23. Nilsson L (2002) Long-term moisture transport in high performance concrete. Mater Struct 35:641–9

    Article  Google Scholar 

  24. Dwaikat MB, Kodur VKR (2009) Fire induced spalling in high strength concrete beams. Fire Technol 46: 251–74. https://doi.org/10.1007/s10694-009-0088-6

    Article  Google Scholar 

  25. ACI 216.1-97 (1997) Standard method for determining fire resistance of concrete and masonry construction assemblies. ACI, Farmington Hills

    Google Scholar 

  26. Torić N, Boko I, Peroš B (2013) Reduction of postfire properties of high-strength concrete. Adv Mater Sci Eng 2013:1–9. https://doi.org/10.1155/2013/712953

    Article  Google Scholar 

  27. Kodur VKR, Agrawal A (2017) Effect of temperature induced bond degradation on fire response of reinforced concrete beams. Eng Struct. https://doi.org/10.1016/j.engstruct.2017.03.022

    Article  Google Scholar 

  28. Bazant Z, Thonguthai W (1978) Pore pressure and drying of concrete at high temperature. J Eng Mech Div 104:1059–79

    Google Scholar 

  29. Kodur VKR, Phan L (2007) Critical factors governing the fire performance of high strength concrete systems. Fire Saf J 42:482–8. https://doi.org/10.1016/j.firesaf.2006.10.006

    Article  Google Scholar 

  30. Hertz K (2003) Limits of spalling of fire-exposed concrete. Fire Saf J 38:103–16

    Article  Google Scholar 

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Acknowledgements

The authors wish to acknowledge the support of United States Agency for International Development (through Pakistan-US Science and Technology Cooperative Program grant PGA-2000003665) and Michigan State University for undertaking this research. Any opinions, findings, conclusions, or recommendations expressed in this paper are those of the author and do not necessarily reflect the views of the institution.

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Correspondence to V. K. R. Kodur.

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Agrawal, A., Kodur, V.K.R. A Novel Experimental Approach for Evaluating Residual Capacity of Fire Damaged Concrete Members. Fire Technol 56, 715–735 (2020). https://doi.org/10.1007/s10694-019-00900-1

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