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Development of a double-sliding friction damper (DSFD)

  • Shen, Shaodong (Department of Civil Engineering, Tsinghua University) ;
  • Pan, Peng (Department of Civil Engineering, Tsinghua University) ;
  • Sun, Jiangbo (Department of Civil Engineering, Tsinghua University) ;
  • Gong, Runhua (Department of Civil Engineering, Tsinghua University) ;
  • Wang, Haishen (Department of Civil Engineering, Tsinghua University) ;
  • Li, Wei (Department of Civil Engineering, Tsinghua University)
  • Received : 2016.12.28
  • Accepted : 2017.04.07
  • Published : 2017.08.25

Abstract

In practical engineering, the friction damper is a widely used energy dissipation device because of its large deformation capacity, stable energy dissipation capability, and cost effectiveness. While based on conventional friction dampers, the double-sliding friction damper (DSFD) being proposed is different in that it features two sliding friction forces, i.e., small and large sliding friction forces, rather than a single-sliding friction force of ordinary friction dampers. The DSFD starts to deform when the force sustained exceeds the small-sliding friction force, and stops deforming when the deformation reaches a certain value. If the force sustained exceeds the large sliding friction force, it continues to deform. Such a double-sliding behavior is expected to endow structures equipped with the DSFD better performance in both small and large earthquakes. The configuration and working mechanism of the DSFD is described and analyzed. Quasi-static loading tests and finite element analyses were conducted to investigate its hysteretic behavior. Finally, time history analysis of the single-degree-of-freedom (SDOF) and multi-degree-of-freedom (MDOF) systems were performed to investigate the seismic performance of DSFD-equipped structures. For the purpose of comparison, tests on systems equipped with conventional friction dampers were also performed. The proposed DSFD can be realized perfectly, and the DSFD-equipped structures provide better performances than those equipped with conventional friction dampers in terms of interstory drift and floor acceleration. In particular, for the MDOF system, the DSFD helps the structural system to have a uniform distributed interstory drift.

Keywords

Acknowledgement

Supported by : Natural Science Foundation of China

References

  1. Beijing Civil King Software Technology Company Limited (2012), SAP2000 Chinese Version Using Guide, 2nd Ed., China Communication Press, Beijing, China. (in Chinese).
  2. Chen, G. and Chen, C.Q. (2003), "Semi-active control of a steel frame with Piezoelectric friction dampers", Proceeding of the SPIE 5057, Smart Structures and Materials 2003: Smart Systems and Nondestructive Evaluation for Civil Infrastructures, 207-217, San Diego, California, August.
  3. Chen, G.D., Garrett, G.T., Chen, C.Q. and Cheng, F.Y. (2004), "Piezoelectric friction dampers for earthquake mitigation of buildings: design, fabrication, and characterization", Struct. Eng. Mech., 17(3-4), 539-556. https://doi.org/10.12989/sem.2004.17.3_4.539
  4. Deng, K.L., Pan, P., Nie, X., Xu, X.G., Feng, P. and Ye, L.P. (2015), "Study of GFRP Steel Buckling Restraint Braces", J. Composi. Constr., 19(6), 04015009:1-8.
  5. Downey, A., Cao, L., Laflamme, S., Taylor, D. and Rides, J. (2016), "High capacity variable friction damper based on band brake technology", Eng. Struct., 113, 287-298. https://doi.org/10.1016/j.engstruct.2016.01.035
  6. FEMA (2009), "Quantification of building seismic performance factors", FEMA P695, Federal Emergency Management Agency, Washington, DC, California, USA.
  7. Gur, S., Mishra, S.K. and Roy, K. (2016), "Stochastic seismic response of building with super-elastic damper with superelastic damper", Mech. Syst. Signal Pr., 72-73, 642-659. https://doi.org/10.1016/j.ymssp.2015.10.004
  8. Hosseini, M., Fekri, M. and Yekrangnia, M.(2016). "Seismic performance of an innovative structural system having seesaw motion and columns equipped with friction dampers at base level", Struct. Des. Tall Spec. Build., 25, 842-865. https://doi.org/10.1002/tal.1286
  9. Lee, C.H., Kim, J., Kim, D.H., Ryu, J. and Ju, Y.K. (2016), "Numerical and experimental analysis of combined behavior of shear-type friction damper and non-uniform strip damper for multi-level seismic protection", Eng. Struct., 114, 75-92. https://doi.org/10.1016/j.engstruct.2016.02.007
  10. Lefferts, E.J., Markley, F.L. and Shuster, M.D. (1982), "Kalman filtering for spacecraft attitude estimation", J. Guid. Control Dynam., 5(5), 417-429. https://doi.org/10.2514/3.56190
  11. Mazza, F. (2016), "Nonlinear seismic analysis of r.c. framed buildings with setbacks retrofitted by damped braces", Eng. Struct., 126, 559-570. https://doi.org/10.1016/j.engstruct.2016.07.055
  12. Miguel, L.F.F., Miguel, L.F.F. and Lopez, R.H. (2015). "Simultaneous optimization of force and placement of friction dampers under seismic loading", Eng. Optimiz., 48(4), 582-602.
  13. Morgen, B.G. and Kurama, Y.C. (2004), "A Friction Damper for Post-Tensioned Precast Concrete Beam-To-Column Joints", Proceedings of the 13th World Conference on Earthquake Engineering, paper No.3189, Vancouver, B.C., Canada, August.
  14. Ohnishi, H., Kitajima, K., Nakanishi, M. and Adachi, H. (1999), "A study on friction dampers for response-control retrofit of existing R/C buildings", Transactions of the JCI, 21, 439-446.
  15. Pall, A.S. and Marsh, C. (1982), "Response of friction damped braced frames", J. Struct. Div. - ASCE, 108(6),1313-1323.
  16. Pan, P., Wu, S.J. and Nie, X. (2015), "A distributed parameter model of a frame pin-supported wall structure", Earthquake Engineering & Structural Dynamic, 44, 1643-1659. https://doi.org/10.1002/eqe.2550
  17. Shirkhani, A., Mualla, I.H., Shabakhty, N. and Mousavi, S.R. (2015), "Behavior of steel frames with rotational friction dampers by endurance time method", J. Constr. Steel Res., 107, 211-222. https://doi.org/10.1016/j.jcsr.2015.01.016
  18. Ye, X.W., Dong, C.Z. and Liu, T.(2016a), "Image-based structural dynamic displacement measurement using different multi-object tracking algorithms", Smart Struct. Syst., 17(6), 935-956. https://doi.org/10.12989/sss.2016.17.6.935
  19. Ye, X.W., Su, Y.H., Xi, P.S., Chen, B. and Han, J.P. (2016b), "Statistical analysis and probabilistic modeling of WIM monitoring data of an instrumented arch bridge", Smart Struct. Syst., 17(6), 1087-1105. https://doi.org/10.12989/sss.2016.17.6.1087
  20. Yi, T.H., Li, H.N. and Sun, H.M. (2013), "Multi- stage structural damage diagnosis method based on 'energy-damage' theory", Smart Struct. Syst., 12(3-4), 345-361. https://doi.org/10.12989/sss.2013.12.3_4.345
  21. Yi, T.H., Li, H.N. and Zhao, X.Y. (2012), "Noise smoothing for structural vibration test signals using an improved wavelet thresholding technique", Sensors, 12(8), 11205-11220. https://doi.org/10.3390/s120811205