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Structural Shear Wall Systems with Metal Energy Dissipation Mechanism

  • Li, Guoqiang (Tongji University, State Key Laboratory of Disaster Reduction in Civil Engineering) ;
  • Sun, Feifei (Tongji University, State Key Laboratory of Disaster Reduction in Civil Engineering) ;
  • Pang, Mengde (Tongji University, College of Civil Engineering) ;
  • Liu, Wenyang (Tongji University, College of Civil Engineering) ;
  • Wang, Haijiang (Tongji University, College of Civil Engineering)
  • Published : 2016.09.01

Abstract

Shear wall structures have been widely used in high-rise buildings during the past decades, mainly due to their good overall performance, large lateral stiffness, and high load-carrying capacity. However, traditional reinforced concrete wall structures are prone to brittle failure under seismic actions. In order to improve the seismic behavior of traditional shear walls, this paper presents three different metal energy-dissipation shear wall systems, including coupled shear wall with energy-dissipating steel link beams, frame with buckling-restrained steel plate shear wall structure, and coupled shear wall with buckling-restrained steel plate shear wall. Constructional details, experimental studies, and calculation analyses are also introduced in this paper.

Keywords

References

  1. Ding Dajun. (1998) "Structural system of high buildings [J]," Industrial Construction, 28(4).
  2. Sherif EI-Tawil, K. A. H. (2010) "Recommendations for seismic design of hybrid of coupled wall systems [G]," ASCE Composite Construction Committee.
  3. Harries, K. A., Moulton J. D., and Clemson R. L. (2004) "Parametric study of coupled wall behavior - Implications for the design of coupling beams [J]," Journal of Structural Engineering-ASCE, 130(3), 480-488. https://doi.org/10.1061/(ASCE)0733-9445(2004)130:3(480)
  4. Tianxiang, P. (2008) "Experimental study on seismic behaviour and design method study of small span-to-depth ratio coupling beams of seismic RC shear walls [D]," Chongqing University, 50-61.
  5. Kasai, K. and Popov, E. (1986) "General Behavior of WF Steel Shear Link Beams [J]," Journal of Structural Engineering, 112(2), 362-382. https://doi.org/10.1061/(ASCE)0733-9445(1986)112:2(362)
  6. Li Guoqiang, Qu Bing, Sun Feifei, Ho Guoman W. M. and Kwok Michael K. Y. (2003) "Cyclic loading tests of steel beam to concrete wall joints in steel-concrete mixed structures [J]," Journal of Building Structures, 24(4), 1-7.
  7. Li Guoqiang, Jin Huajian, Sun Feifei, et al. (2014) "Theoretical study and application of buckling-restrained steel plate shear walls [J]," Earthquake Engineering and Engineering Dynamics, 2014(S1), 629-633.
  8. Nie Jianguo, Fan Jiansheng, Huang Yuan, Zhou Wei, Wang Dasui, and Lu Daoyuan. (2010) "Experimental research on steel plate shear wall [J]," Journal of Building Structures, 31(9), 1-8.
  9. Li Guoqiang, Liu Wenyang, Lu Ye, and Sun Feifei. (2015) "Stressing mechanism and equivalent brace model for buckling restrained steel plate wall with two sided connections [J]," Journal of Building Structures, 2015(04), 33-41.
  10. Li, G. Q., Wang, H. J., and Pang, M. D. (2015) "Concrete Shear Walls Coupled with Energy-Dissipating Elements for Earthquake-Resistance [C]," Proceedings of Symposium on Future Development of Seismic Design, HongKong.