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Seismic retrofitting of a tower with shear wall in UHPC based dune sand

  • Trabelsi, Abderraouf (Universite de Tunis El Manar, Ecole Nationale d'Ingenieurs de Tunis) ;
  • Kammoun, Zied (Universite de Tunis El Manar, Ecole Nationale d'Ingenieurs de Tunis) ;
  • Beddey, Aouicha (Centre d'Etudes Techniques et d'Essais de Construction (C.E.T.E.C))
  • Received : 2016.11.04
  • Accepted : 2017.05.28
  • Published : 2017.06.25

Abstract

To prevent or limit the damage caused by earthquakes on existing buildings, several retrofitting techniques are possible. In this work, an ultra high performance concrete based on sand dune has been formulated for use in the reinforcement of a multifunctional tower in the city of Skikda in Algeria. Tests on the formulated ultra high performance concrete are performed to determine its characteristics. A nonlinear dynamic analysis, based on the "Pushover" method was conducted. The analysis allowed an optimization of the width of reinforced concrete walls used in seismic strengthening. Two types of concrete are studied, the ordinary concrete and the ultra high performance concrete. Both alternatives are compared with the reinforcement with carbon fibers and by base isolation retrofit design.

Keywords

References

  1. Algeriennes RP. RPA 99/Version 2003. Ministere de l'habitat et de l'urbanisme. Centre national de recherche apliquee en genieparasismique. Document technique reglementaire DTR-BC.;2.
  2. Al-Harthy, A.S., Halim, M.A., Taha, R. and Al-Jabri, K.S. (2007), "The properties of concrete made with fine dune sand", Constr. Build. Mater., 21(8), 1803-1808. https://doi.org/10.1016/j.conbuildmat.2006.05.053
  3. Bouziani, T. (2013), "Assessment of fresh properties and compressive strength of self-compacting concrete made with different sand types by mixture design modelling approach", Constr. Build. Mater., 49, 308-314. https://doi.org/10.1016/j.conbuildmat.2013.08.039
  4. Boukri, M., Farsi, M.N., Mebarki, A., Belazougui, M., Amellal, O., Mezazigh, B. and Guessoum, N. (2014), "Earthquake loss estimation of existing buildings: Case of constantine city (Algeria)", Second Conference on Earthquake Engineering and Seismology 2014, Istanbul, Turkey, 25-29 August.
  5. Boumaza-Zeraoulia, F. and Behim, M. (2013), "Formulation des betons autoplacants: Optimisation du squelette granulaire par la methode graphique de Dreux-Gorisse", Synthese: Revue des Sciences et de la Technologie, 27(1), 63-72. https://doi.org/10.1007/BF00660889
  6. Cherifi, F., Farsi, M.N., Kaci, S., Belaidi, O. and Taouche-Kheloui, F. (2015), "Seismic vulnerability of reinforced concrete structures in Tizi-Ouzou City (Algeria)", Procedia Eng., 114, 838-845. https://doi.org/10.1016/j.proeng.2015.08.037
  7. Chopra, A.K. and Goel, R.K. (2002), "A modal pushover analysis procedure for estimating seismic demands for buildings", Earthq. Eng. Struct. D., 31(3), 561-582. https://doi.org/10.1002/eqe.144
  8. Dreux, G. and Festa, J. (1998), Nouveau guide du beton et de ses constituants, Eyrolles.
  9. D'aloia, L., Legeron, F., Le Roy, R., Runfola, P. and Toutlemonde, F. (2003), "Valorisation des betons a hautes performances dans les piles et pylones de grande hauteur des ouvrages d'art", Techniques et Methodes des Laboratories des Ponts et Chaussees-Guide Technique, (BETPIL).
  10. Erdem, R.T. (2016), "Performance evaluation of reinforced concrete buildings with softer ground floors", Građevinar, 68(01), 39-49.
  11. Fajfar, P. (1999), "Capacity spectrum method based on inelastic demand spectra", Earthq. Eng. Struct. D., 28(9), 979-994. https://doi.org/10.1002/(SICI)1096-9845(199909)28:9<979::AID-EQE850>3.0.CO;2-1
  12. FEMA-356: (Prestandard and Commentary for the Seismic Rehabilitation of Buildings), November, 2000, Washington, DC, Federal Emergency Management Agency.
  13. Hamelin, P. and Ferrier, E. (2001), "Etude bibliographique sur les renforcements par materiaux composites de structure du genie civil-Comportement en fatigue et en fluage des renforcements, Identification des problemes lies aux renforcements par composites", Cahier des charges essai de fatigue, Rapport NLCPC/01 du, 27(04), 01.
  14. Ismail, A. (2014), "Non linear static analysis of a retrofitted reinforced concrete building", HBRC J., 10(1), 100-107. https://doi.org/10.1016/j.hbrcj.2013.07.002
  15. Jimenez, M.J. and Garcia-Fernandez, M. (1999), "Seismic hazard assessment in the Ibero-Maghreb region", Ann. Geophys., 42(6), 1057-1065.
  16. Khouadjia, M., Mezghiche, B. and Drissi, M. (2016), "Evaluation experimentale et numerique de la resistance a la compression des betons a base des sables de carriere modifies avec sable de dune", Courrier du Savoir, 20.
  17. Konkov, V. (2013), "Principle approaches to high performance concrete application in construction", Procedia Eng., 57(1), 589-596. https://doi.org/10.1016/j.proeng.2013.04.075
  18. Lakshmanan, N. (2006), "Seismic evaluation and retrofitting of buildings and structures", ISET J. Earthq. Technol., 43(1), 31-48.
  19. Luo, F.J., He, L., Pan, Z., Duan, W.H., Zhao, X.L. and Collins, F. (2013), "Effect of very fine particles on workability and strength of concrete made with dune sand", Constr. Build. Mater., 47, 131-137. https://doi.org/10.1016/j.conbuildmat.2013.05.005
  20. Mazza, F. (2015), "Comparative study of the seismic response of RC framed buildings retrofitted using modern techniques", Earthq. Struct., 9(1), 29-48. https://doi.org/10.12989/eas.2015.9.1.029
  21. Ousalem, H. and Bechtoula, H. (2005), "Inventory survey of the 2003 Zemmouri (Algeria) earthquake: Case study of Dergana City", J. Adv. Concrete Technol., 3(1), 175-183. https://doi.org/10.3151/jact.3.175
  22. Petrini, L., Pinho, R. and Calvi, G.M. (2004), Criteri di progettazione antisismica degli edifici, Iuss Press
  23. Priestley, M.N., Seible, F. and Calvi, G.M. (1996), Seismic design and retrofit of bridges, John Wiley & Sons.
  24. Rmili, A., Ben Ouezdou, M., Added, M. and Ghorbel, E. (2009), "Incorporation of crushed sands and tunisian desert sands in the composition of self compacting concretes Part I: Study of formulation", Int. J. Concrete Struct. Mater., 3(1), 3-9. https://doi.org/10.4334/IJCSM.2009.3.1.003
  25. Saadatmanesh, H., Ehsani, M.R. and Jin, L. (1996), "Seismic strengthening of circular bridge pier models with fiber composites", ACI Struct. J., 93(6), 639-738.
  26. Saadatmanesh, H., Ehsani, M.R. and Jin, L. (1997), "Repair of earthquake-damaged RC columns with FRP wraps", ACI Struct. J., 94, 206-215.
  27. Seible, F., Priestley, M.N., Hegemier, G.A. and Innamorato, D. (1997), "Seismic retrofit of RC columns with continuous carbon fiber jackets", J. Compos. Constr., 1(2), 52-62. https://doi.org/10.1061/(ASCE)1090-0268(1997)1:2(52)
  28. Trabelsi, A., Mekki, O.B. and Hassis, H. (2011), "Analyse sismique non lineaire d'un bâtiment classe renforce par des plaques minces en fibres de carbone", Eur. J. Environ. Civ. Eng., 15(3), 367-389. https://doi.org/10.1080/19648189.2011.9693332
  29. Yousfi, S., Nouri, L., Saidani, M. and Hadjab, H. (2014), "The use of the dreux-gorisse method in the preparation of concrete mixes: an automatic approach", Asian J. Civ. Eng. (BHRC), 15(1), 79-93.
  30. Zeghichi, L., Benghazi, Z. and Baali, L. (2012), "Comparative study of self-compacting concrete with manufactured and dune sand", J. Civ. Eng. Architec., 6(10), 1429.

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