DOI QR코드

DOI QR Code

Prequalification of a set of buckling restrained braces: Part I - experimental tests

  • Stratan, Aurel (Department of Steel Structures and Structural Mechanics, Politehnica University of Timisoara) ;
  • Zub, Ciprian Ionut (Department of Steel Structures and Structural Mechanics, Politehnica University of Timisoara) ;
  • Dubina, Dan (Department of Steel Structures and Structural Mechanics, Politehnica University of Timisoara)
  • Received : 2019.09.18
  • Accepted : 2020.01.18
  • Published : 2020.02.25

Abstract

Buckling restrained braces (BRBs) were developed as an enhanced alternative to conventional braces by restraining their global buckling, thus allowing development of a stable quasi-symmetric hysteretic response. A wider adoption of buckling restrained braced frames is precluded due to proprietary character of most BRBs and the code requirement for experimental qualification. To overcome these problems, BRBs with capacities corresponding to typical steel multi-storey buildings in Romania were developed and experimentally tested in view of prequalification. The first part of this paper presents the results of the experimental program which included sub-assemblage tests on ten full-scale BRBs and uniaxial tests on components materials (steel and concrete). Two different solutions of the core were investigated: milled from a plate and fabricated from a square steel profile. The strength of the buckling restraining mechanism was also investigated. The influence of gravity loading on the unsymmetrical deformations in the two plastic segments of the core was assessed, and the response of the bolted connections was evaluated. The cyclic response of BRBs was evaluated with respect to a set of performance parameters, and recommendations for design were given.

Keywords

Acknowledgement

The research leading to these results has received funding from the MEN-UEFISCDI grant Partnerships in priority areas PN II, contract no. 99/2014 IMSER: "Implementation into Romanian seismic resistant design practice of buckling restrained braces". This support is gratefully acknowledged.

References

  1. ANSI/AISC 341-10 (2010), Seismic Provisions for Structural Steel Buildings, American Institute of Steel Construction; Chicago, IL, USA.
  2. Black, C., Makris, N. and Aiken, I. (2002), "Component Testing, Stability Analysis and Characterization of Buckling-Restrained Unbonded BracesTM", PEER Report 2002/08. Pacific Earthquake Engineering Research Center, College of Engineering, University of California, Berkeley, USA.
  3. Chao, C.C. and Chen, S.Y. (2009), "Subassemblage tests and finite element analyses of sandwiched buckling-restrained braces with a replaceable core", STESSA 2009: Procc. of 6th International Conference for Behaviour of Steel Structures in Seismic Area, Boca Raton, eds., Mazzolani F.M., Ricles J.M.and Sauce R., Philadelphia, Pennsylvania, USA.
  4. Clark, P., Aiken, I., Kasai, K., Ko, E. and Kimura, I. (1999), "Design Procedures for Buildings Incorporating Hysteretic Damping Devices", Proceedings of the 68th Annual Convention, pp. 355-371, Structural Engineers Association of California, Sacramento, CA, September.
  5. Dassault (2014), Abaqus 6.14 - Abaqus Analysis User's Manual, Dassault Systemes Simulia Corp.
  6. D'Aniello, M., Della Corte, G. and Landolfo, R. (2014), "Finite element modelling and analysis of 'All-Steel' dismountable buckling restrained braces", Open Constr. Build. Technol. J., 8, 216-226. DOI: 10.2174/1874836801408010216.
  7. Della Corte, G., D'Aniello, M., Landolfo, R. and Mazzolani, F.M. (2011), "Review of steel buckling-restrained braces", Steel Constr., 4(2), 85-93. https://doi.org/10.1002/stco.201110012.
  8. Della Corte, G., D'Aniello, M. and Landolfo, R. (2015), "Field testing of all-steel buckling-restrained braces applied to a damaged reinforced concrete building", J. Struct. Eng., 141(1), 1-11. https://doi.org/10.1061/(ASCE)ST.1943-541X.0001080.
  9. EN 15129 (2010), Anti-seismic devices, European Committee for Standardization; Brussels, Belgium.
  10. EN 1998-1 (2004), Eurocode 8: Design of structures for earthquake resistance - Part 1: General rules, seismic actions and rules for buildings, European Committee for Standardization; Brussels, Belgium.
  11. Iwata, M. and Murai, M. (2006), "Buckling-restrained brace using steel mortar planks; performance evaluation as a hysteretic damper", Earthq. Eng. Struct. D., 35(14), 1807-1826. https://doi.org/10.1002/eqe.608.
  12. Pandikkadavath, M.S. and Sahoo, D.R. (2016), "Cyclic testing of short-length buckling-restrained braces with detachable casings", Earthq. Struct., 10(3), 699-716. https://doi.org/10.12989/eas.2016.10.3.699
  13. P100-1/2013 (2014), Code for seismic design - Part I - Design prescriptions for buildings, Official Journal of Romania; Bucharest, Romania (in Romanian).
  14. Sridhara, B.N. (1990), "Sleeved column as a basic compression member", Proceedings of the 4th International Conference on Steel Structures & Space Frames, Singapore.
  15. Stratan, A., Voica, F., Marcu, D., Zub, C.I. and Dubina, D. (2015), "Design of buckling-restrained steel frames according to P100-1/2013", (in Romanian). Proceedings of the 14th National Conference of Steel Structures, Cluj-Napoca, Romania.
  16. Stratan, A., Zub, C.I. and Dubina, D. (2018), "Experimental tests for pre-qualification of a set of buckling-restrained braces", Key Eng. Mater., 763, 450-457. https://doi.org/10.4028/www.scientific.net/KEM.763.450
  17. Tinker, J. and Dusicka, P. (2012), "Challenges in designing ultralightweight buckling restrained brace", Stessa 2012 - Mazzolani & Herrera (eds), Taylor & Francis Group, 569-575, London.
  18. Takeuchi, T. and Wada, A. (2017), Buckling-Restrained Braces and Applications, The Japan Society of Seismic Isolation (JSSI), Jingumae Shibuyaku, Tokyo, Japan.
  19. Tremblay, R., Bolduc, P., Neville, R. and DeVall, R. (2006), "Seismic testing and performance of buckling-restrained bracing systems", Can J. Civil Eng., 33, 183-198. https://doi.org/10.1139/l05-103.
  20. Tsai, K.C., Lin, P.C., Wu, A.C. and Chuang, M.C. (2013) "Buckling restrained braces: research and implementation in Taiwan", Proceedings of the Steel Innovations Conference 2013, Christchurch, New Zeeland, February.
  21. Uang, C.M., Nakashima, M. and Tsai, K.C. (2004), "Research and application of buckling-restrained braced frames", Int. J. Steel Struct., 4(4), 301-313.
  22. Usami, T., Wang, C.L. and Funayama, J. (2012), "Developing high-performance aluminum alloy buckling-restrained braces based on series of low-cycle fatigue tests", Earthq. Eng. Struct. D., 41(4), 643-661. https://doi.org/10.1002/eqe.1149.
  23. Vigh, L.G., Zsarnoczay, A. and Balogh, T. (2017), "Eurocode conforming design of BRBF - Part I: Proposal for codification", J. Constr. Steel Res., 135, 265-276. https://doi.org/10.1016/j.jcsr.2017.04.010
  24. Watanabe, A., Hitomi, Y., Saeki, E., Wada, A. and Fujimoto, M. (1988), "Properties of brace encased in buckling restraining concrete and steel tube", Proceedings of the 9th World Conf. Earthquake Engineering, Tokyo, Japan, August.
  25. Xie, Q. (2005), "State of the art of buckling-restrained braces in Asia", J. Constr. Steel Res.. 61(6), 727-748. https://doi.org/10.1016/j.jcsr.2004.11.005.
  26. Zub, C.I., Stratan, A. and Dubina, D. (in press), "Prequalification of a set of buckling restrained braces: Part II - numerical simulations", Steel and Composite Structures.
  27. Zub, C.I., Stratan, A., Dogariu, A. and Dubina, D. (2018a), "Development of a finite element model for a buckling restrained brace", Proceedings of the Romanian Academy Series A, 19(4), 581-588.
  28. Zub, C.I., Stratan, A., Dogariu, A., Vulcu, C. and Dubina, D. (2018b), "Development of Two Types of Buckling Restrained Braces Using Finite Element Modelling", Seismic Hazard and Risk Assessment, Springer Natural Hazards, R. Vacareanu and C. Ionescu, eds., Springer International Publishing, 373-387, Cham, Switzerland.