DOI QR코드

DOI QR Code

Experimental study on component performance in steel plate shear wall with self-centering braces

  • Liu, Jia-Lin (School of Civil Engineering, Beijing Jiaotong University) ;
  • Xu, Long-He (School of Civil Engineering, Beijing Jiaotong University) ;
  • Li, Zhong-Xian (Key Laboratory of Coast Civil Structure Safety of China Ministry of Education, Tianjin University)
  • 투고 : 2019.10.14
  • 심사 : 2020.10.13
  • 발행 : 2020.11.10

초록

Steel plate shear wall with self-centering energy dissipation braces (SPSW-SCEDB) is a lateral force-resisting system that exhibits flag-shaped hysteretic responses, which consists of two pre-pressed spring self-centering energy dissipation (PS-SCED) braces and a wall plate connected to horizontal boundary elements only. The present study conducted a series of cyclic tests to study the hysteretic performances of braces in SPSW-SCEDB and the effects of braces on the overall hysteretic characteristics of this system. The SPSW-SCEDB with PS-SCED braces only exhibits excellent self-centering capability and the energy loss caused by the large inclination angle of PS-SCED braces can be compensated by appropriately increasing the friction force. Under the combined effect of the two components, the SPSW-SCEDB exhibits a flag-shaped hysteretic response with large lateral resistance, good energy dissipation and self-centering capabilities. In addition, the wall plate is the primary energy dissipation component and the PS-SCED braces provide supplementary energy dissipation for system. The PS-SCED braces can provide up to 90% self-centering capability for the SPSW-SCEDB system. The compressive bearing capacity of the wall plate should be smaller than the horizontal remaining restoring force of the braces to achieve better self-centering effect of the system.

키워드

과제정보

The writers gratefully acknowledge the partial support of this research by the National Natural Science Foundation of China under Grant No. 52078036.

참고문헌

  1. Beiraghi, H. (2019), "Earthquake effect on the concrete walls with shape memory alloy reinforcement", Smart Struct. Syst., 24(4), 491-506. https://doi.org/10.12989/sss.2019.24.4.491.
  2. Chou, C.C., Hsisal, C.H., Chen, Z.B., Chung, P.T. and Pham, D.H. (2019), "Seismic loading tests of full-scale two-story steel building frames with self-centering braces and buckling-restrained braces", Thin-Wall. Struct., 140, 168-181. https://doi.org/10.1016/j.tws.2019.03.024.
  3. Christopoulos, C., Filiatrault, A. and Folz, B. (2002), "Seismic response of self-centering hysteretic SDOF systems", Earthq. Eng. Struct. D., 31(5), 1131-1150. https://doi.org/10.1002/eqe.152.
  4. Clayton, P.M., Berman, J.W. and Lowes, L.N. (2015), "Seismic performance of self-centering steel plate shear walls with beam-only-connected web plates", J. Constr. Steel Res., 106, 198-208. https://doi.org/10.1016/j.jcsr.2014.12.017.
  5. Dowden, D.M. and Bruneau, M. (2019), "Quasi-static cyclic testing and analytical investigation of steel plate shear walls with different post-tensioned beam-to-column rocking connections", Eng. Struct., 187, 43-56. https://doi.org/10.1016/j.engstruct.2019.02.048.
  6. Eatherton, M.R., Fahnestock, L.A. and Miller, D.J. (2014), "Computational study of self-centering buckling-restrained braced frame seismic performance", Earthq. Eng. Struct. D., 43(13), 1897-1914. https://doi.org/10.1002/eqe.2428.
  7. Fang, C., Yam, M.C.H., Lam, A.C.C. and Zhang, Y.Y. (2015), "Feasibility study of shape memory alloy ring spring systems for self-centering seismic resisting devices", Smart Mater. Struct., 24(7), 075024. https://doi.org/10.1088/0964-1726/24/7/075024.
  8. FEMA P-58-1 (2012), Seismic Performance Assessment of Buildings, Federal Emergency Management Agency, Washington, D.C., USA.
  9. Hoveidae, N. (2019), "Multi-material core as self-centering mechanism for buildings incorporating BRBs", Earthq. Struct., Int, J., 16(5), 589-599. https://doi.org/10.12989/eas.2019.16.5.589.
  10. Kajbaf, A.A., Fanaie, N. and Najarkolaie, K.F. (2018), "Numerical simulation of failure in steel posttensioned connections under cyclic loading", Eng. Fail. Anal., 91, 35-57. https://doi.org/10.1016/j.engfailanal.2018.04.024.
  11. Kim, H.J. and Christopoulos, C. (2009), "Seismic design procedure and seismic response of post-tensioned self-centering steel frames", Earthq. Eng. Struct. D., 38(3), 355-376. https://doi.org/10.1002/eqe.859.
  12. Lopez-Barraza, A., Ruiz, S.E., Reyes-Salazar, A. and Bojorquez, E. (2016), "Demands and distribution of hysteretic energy in moment resistant self-centering steel frames", Steel Compos. Struct., 20(5), 1155-1171. https://doi.org/10.12989/scs.2016.20.5.1155.
  13. Ma, H.W., Wilkinson T. and Cho, C.D. (2007), "Feasibility study on a self-centering beam-to-column connection by using the superelastic behavior of SMAs", Smart Mater. Struct., 16(5), 1555-1563. https://doi.org/10.1088/0964-1726/16/5/008.
  14. Reyes-Salazar, A., Ruiz, S.E., Bojorquez, E., Bojorquez, J. and Llanes-Tizoc, M.D. (2016), "Seismic response of complex 3D steel buildings with welded and post-tensioned connections", Earthq. Struct., 11(2), 217-243. http://dx.doi.org/10.12989/eas.2016.11.2.217.
  15. Ricles, J.M., Sause, R., Garlock, M.M. and Zhao, C. (2001), "Posttensioned seismic-resistant connections for steel frames", J. Struct. Eng., 127(2), 113-121. https://doi.org/10.1061/(ASCE)0733-9445(2001)127:2(113).
  16. Rojas, P., Ricles, J.M. and Sause, R. (2005), "Seismic performance of post-tensioned steel moment resisting frames with friction devices", J. Struct. Eng., 131(4), 529-540. https://doi.org/10.1061/(ASCE)0733-9445(2005)131:4(529).
  17. Salari, N. and Asgarian, B. (2015), "Seismic response of steel braced frames equipped with shape memory alloy-based hybrid devices", Struct. Eng. Mech., 53(5), 1031-1049. https://doi.org/10.12989/sem.2015.53.5.1031.
  18. Vatansever, C. and Yardimci, N. (2011), "Experimental investigation of thin steel plate shear walls with different infill-to-boundary frame connections", Steel Compos. Struct., 11(3), 251-271. https://doi.org/10.12989/scs.2011.11.3.251.
  19. Xu, L.H., Fan, X.W., Lu, D.C. and Li, Z.X. (2016a), "Hysteretic behavior studies of self-centering energy dissipation bracing system", Steel Compos. Struct., 20(6), 1205-1219. https://doi.org/10.12989/scs.2016.20.6.1205.
  20. Xu, L.H., Liu, J.L. and Li, Z.X. (2018), "Behavior and design considerations of steel plate shear wall with self-centering energy dissipation braces", Thin-Wall. Struct., 132, 629-641. https://doi.org/10.1016/j.tws.2018.09.024.
  21. Xu, L.H., Xie, X.S., Yan, X.T. and Li, Z.X. (2019), "Seismic behavior enhancement of frame structure considering parameter sensitivity of self-centering braces", Struct. Eng. Mech., 71(1), 45-56. https://doi.org/10.12989/sem.2019.71.1.045.
  22. Xu, X., Zhang, Y.F. and Luo, Y.Z. (2016b), "Self-centering modularized link beams with post-tensioned shape memory alloy rods", Eng. Struct., 112, 47-59. https://doi.org/10.1016/j.engstruct.2016.01.006.
  23. Zhang, A.L., Zhang, Y.X., Li, R. and Wang, Z.Y. (2016), "Cyclic behavior of a prefabricated self-centering beam-column connection with a bolted web friction device", Eng. Struct., 111, 185-198. https://doi.org/10.1016/j.engstruct.2015.12.025.
  24. Zhou, Z., He, X.T., Wu, J., Wang, C.L. and Meng, S.P. (2014), "Development of a novel self-centering buckling-restrained brace with BFRP composite tendons", Steel Compos. Struct., 16(5), 491-506. https://doi.org/10.12989/scs.2014.16.5.491.
  25. Zhu, Y.F., Chen, C.H., Keer, L.M., Huang, Y. and Yao, Y. (2019), "Structural response and resilience of posttensioned steel frames under column loss", J. Constr. Steel Res., 158, 107-119. https://doi.org/10.1016/j.jcsr.2019.03.019.