DOI QR코드

DOI QR Code

Mid-length lateral deflection of cyclically-loaded braces

  • Sheehan, Therese (School of Engineering and Informatics, University of Bradford) ;
  • Chan, Tak-Ming (Department of Civil and Environmental Engineering, The Hong Kong Polytechnic University) ;
  • Lam, Dennis (School of Engineering and Informatics, University of Bradford)
  • Received : 2014.05.21
  • Accepted : 2014.12.17
  • Published : 2015.06.25

Abstract

This study explores the lateral deflections of diagonal braces in concentrically-braced earthquake-resisting frames. The performance of this widely-used system is often compromised by the flexural buckling of slender braces in compression. In addition to reducing the compressive resistance, buckling may also cause these members to undergo sizeable lateral deflections which could damage surrounding structural components. Different approaches have been used in the past to predict the mid-length lateral deflections of cyclically loaded steel braces based on their theoretical deformed geometry or by using experimental data. Expressions have been proposed relating the mid-length lateral deflection to the axial displacement ductility of the member. Recent experiments were conducted on hollow and concrete-filled circular hollow section (CHS) braces of different lengths under cyclic loading. Very slender, concrete-filled tubular braces exhibited a highly ductile response, undergoing large axial displacements prior to failure. The presence of concrete infill did not influence the magnitude of lateral deflection in relation to the axial displacement, but did increase the number of cycles endured and the maximum axial displacement achieved. The corresponding lateral deflections exceeded the deflections observed in the majority of the previous experiments that were considered. Consequently, predictive expressions from previous research did not accurately predict the mid-height lateral deflections of these CHS members. Mid-length lateral deflections were found to be influenced by the member non-dimensional slenderness (${\bar{\lambda}}$) and hence a new expression was proposed for the lateral deflection in terms of member slenderness and axial displacement ductility.

Keywords

References

  1. Broderick, B.M., Goggins, J.M. and Elghazouli, A.Y. (2005), "Cyclic performance of steel and composite bracing members", J. Construct. Steel Res., 61(4), 493-514. https://doi.org/10.1016/j.jcsr.2004.09.006
  2. ECCS (1986), Recommended Testing Procedure for Assessing the Behaviour of Structural Steel Elements under Cyclic Loads; European Convention for Constructional Steelwork, Brussels, Belgium.
  3. Elchalakani, M., Zhao, X.L. and Grzebieta, R. (2003), "Tests of cold formed circular tubular braces under cyclic axial loading", J. Struct. Eng., 129(4), 507-514. https://doi.org/10.1061/(ASCE)0733-9445(2003)129:4(507)
  4. EN 1992-1-1 (2004), Design of concrete structures, Part 1-1: General rules and rules for buildings; European Standard, CEN, Brussels, Belgium.
  5. EN 1993-1-1 (2005), Design of steel structures, Part 1-1: General rules and rules for buildings; European Standard, CEN, Brussels, Belgium.
  6. Fell, B.V. (2008), "Large-scale testing and simulation of earthquake-induced ultra low cycle fatigue in bracing members subjected to cyclic inelastic buckling", Ph.D. Thesis; University of California, Davis, CA, USA.
  7. Nip, K.H., Gardner, L. and Elghazouli, A.Y. (2010), "Cyclic testing and numerical modelling of carbon steel and stainless steel tubular bracing members", Eng. Struct., 32(2), 424-441. https://doi.org/10.1016/j.engstruct.2009.10.005
  8. Shaback, B. and Brown, T. (2003), "Behaviour of square hollow structural steel braces with end connections under reversed cyclic axial loading", Can. J. Civil Eng., 30(4), 745-753. https://doi.org/10.1139/l03-028
  9. Sheehan, T. and Chan, T.M. (2014), "Cyclic response of hollow and concrete-filled CHS braces", Proceedings of the ICE - Structures and Buildings, 167(3), 140-152. DOI: http://dx.doi.org/10.1680/stbu.12.00033
  10. Tremblay, R. (2002), "Inelastic seismic response of steel bracing members", J. Construct. Steel Res., 58(5-8), 665-701. https://doi.org/10.1016/S0143-974X(01)00104-3

Cited by

  1. Seismic analysis of high-rise steel frame building considering irregularities in plan and elevation vol.39, pp.1, 2015, https://doi.org/10.12989/scs.2021.39.1.065