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Numerical prediction of stress and displacement of ageing concrete dam due to alkali-aggregate and thermal chemical reaction

  • Azizan, Nik Zainab Nik (School of Civil Engineering, Universiti Sains Malaysia) ;
  • Mandal, Angshuman (Department of Civil Engineering, Indian Institute of Technology) ;
  • Majid, Taksiah A. (School of Civil Engineering, Universiti Sains Malaysia) ;
  • Maity, Damodar (Department of Civil Engineering, Indian Institute of Technology) ;
  • Nazri, Fadzli Mohamed (School of Environmental Engineering, Universiti Malaysia Perlis)
  • 투고 : 2016.07.13
  • 심사 : 2017.10.11
  • 발행 : 2017.12.25

초록

The damage of concrete due to the expansion of alkali-aggregate reaction (AAR) and thermal-chemical reactions affecting the strength of concrete is studied. The empirical equations for the variations of expansion of AAR, compressive strength and degradation of the modulus of elasticity with time, and compressive strength with degradation of the modulus of elasticity are proposed by analysing numerous experimental data. It is revealed that the expansion of AAR and compressive strength increase with time. The proposed combination of the time variations of chemical and mechanical parameters provides a satisfactory prediction of the concrete strength. Seismic analysis of the aged Koyna dam is conceded for two different long-term experimental data of concrete incorporating the proposed AAR based properties. The responses of aged Koyna dam reveal that the crest displacement of the Koyna dam significantly increases with time while the contour plots show that major principal stress at neck level reduces with time. As the modulus of elasticity decreases with ages the stress generated in the concrete structure get reduces. On the other hand with lesser value of modulus of elasticity the structure becomes more flexible and the crest displacement becomes very high that cause the seismic safety of the dam reduce.

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과제정보

연구 과제 주관 기관 : Universiti Malaysia Perlis (UniMAP)

참고문헌

  1. Atkins, P. (2006), Physical Chemistry, W.H Freeman and Company, New York.
  2. Bangert, F., Grasberger, S., Kuhl, D. and Meschke, G. (2003), "Environmentally induced deterioration of concrete: physical motivation and numerical modeling", Eng. Fract. Mech., 70, 891-910. https://doi.org/10.1016/S0013-7944(02)00156-X
  3. Burman, A., Maity, D., Sreedeep, S. and Gogoi, I. (2011), "Longterm influence of concrete degradation on dam-foundation interaction", Int. J. Comput. Meth., 8(3), 397-423. https://doi.org/10.1142/S0219876211002472
  4. Capra, B. and Sellier, A. (2003), "Orthotropic modelling of alkaliaggregate reaction in concrete structures: Numerical simulations", Mech. Mater., 35(8), 817-830. https://doi.org/10.1016/S0167-6636(02)00209-0
  5. Cusatis, G., Alnaggar, M. and Rezakhani, R. (2015), "Multiscale modeling of alkali silica reaction of concrete", RILEM International Symposium on Concrete Modelling, Eds. K. Li, P.
  6. Yan, and R. Yang, RILEM Publication SARL. Dolen, T.P. (2005), Materials Properties Model of Aging Concrete.
  7. Ghrib, F. and Tinawi, R. (1995), "An application of damage mechanics for seismic analysis of concrete gravity dams", Earthq. Eng. Struct. Dyn., 24, 157-173. https://doi.org/10.1002/eqe.4290240203
  8. Gogoi, I. and Maity, D. (2007), "Influence of sediment layers on dynamic behavior of aged concrete dams", J. Eng. Mech., ASCE, 133(4), 400-413. https://doi.org/10.1061/(ASCE)0733-9399(2007)133:4(400)
  9. Grimal, E., Sellier, A., Multon, S., Le Pape, Y. and Bourdarot, E. (2010), "Concrete modelling for expertise of structures Affected by alkali aggregate reaction", Cement Concrete Res., 40, 502-507. https://doi.org/10.1016/j.cemconres.2009.09.007
  10. Kuhl, D., Bangert, F. and Meschke, G. (2004a), "Coupled chemomechanical deterioration of cementitious materials. Part I: Modeling", Int. J. Solid. Struct., 41(1), 15-40. https://doi.org/10.1016/j.ijsolstr.2003.08.005
  11. Kuhl, D., Bangert, F. and Meschke, G. (2004b), "Coupled chemomechanical deterioration of cementitious materials. Part II: Numerical methods and simulations", Int. J. Solid. Struct., 41(1), 41-67. https://doi.org/10.1016/j.ijsolstr.2003.08.004
  12. Larive, C. (1998), "Apports combin'es de l' experimentation et de la modelisation a la comprehen- sion del alcali- reaction et de ses effets mecaniques", Laboratoire Central des Ponts et Chaussees, Paris. (in French)
  13. Latifee, E.R. and Kabir, M.R. (2015), "Predicting ASR long term expansion through existing test method", Malaysia J. Civil Eng., 27(2), 180-192.
  14. Mathews, J.H. (1992), "Curve fitting", Numerical Methods for Mathematics, Science and Engineering, Prectice-Hall of India, New Delhi.
  15. Multon, S. and Toutlemonde, F. (2006), "Effect of applied stresses on alkali-silica reaction-induced expansions", Cement Concrete Res., 36(5), 912-920. https://doi.org/10.1016/j.cemconres.2005.11.012
  16. Pan, J., Feng, Y., Jin, F. and Zhang, C. (2013a), "Numerical prediction of swelling in concrete arch dams affected by alkaliaggregate reaction", Euro. J. Environ. Civil Eng., 17(4), 1-17. https://doi.org/10.1080/19648189.2012.699705
  17. Pan, J., Feng, Y., Xu, Y., Jin, F., Zhang, C. and Zhang, B. (2013b), "Chemo-damage modeling and cracking analysis of AARaffected concrete dams", Sci. Chin. Technol. Sci., 56(6), 1449-1457. https://doi.org/10.1007/s11431-013-5187-4
  18. Pan, J., Xu, Y., Jin, F. and Zhang, C. (2014), "A unified approach for long-term behavior and seismic response of AAR-affected concrete dams", Soil Dyn. Earthq. Eng., 63, 193-202. https://doi.org/10.1016/j.soildyn.2014.03.018
  19. Saouma, V.E., Martin, R.A., Hariri-Ardebili, M.A. and Katayama, T. (2014), "A mathematical model for the kinetics of the alkalisilica chemical reaction", Cement Concrete Res., 68, 184-195.
  20. Ulm, F.J., Coussy, O., Kefei, L. and Larive, C. (2000), "Thermochemo-mechanics of ASR expansion in concrete structures", J. Eng. Mech., 126(3), 233-242. https://doi.org/10.1061/(ASCE)0733-9399(2000)126:3(233)
  21. Washa, G.W., Saemann, J.C. and Cramer, S.M. (1989), "Fiftyyear properties of concrete made in 1937", ACI Mater. J., 86(4), 367-371.