Replaceable Rotational Viscoelastic Dampers for Improving Structural Damping and Resilience of Steel Frames

Author(s):  
Zhan Shu ◽  
Zhaozhuo Gan ◽  
Cheng Fang ◽  
Gregory MacRae ◽  
Hanlin Dong ◽  
...  
1993 ◽  
Vol 9 (3) ◽  
pp. 371-387 ◽  
Author(s):  
K. C. Chang ◽  
T. T. Soong ◽  
M. L. Lai ◽  
E. J. Nielsen

On the basis of extensive analytical and experimental investigations, some practical issues associated with the application of viscoelastic dampers to building structures for seismic performance enhancement are considered. It is first shown that the seismic response of a structure can be significantly improved with added dampers. Even at high temperatures, results show that a viscoelastically damped structure can still achieve a significant reduction of structural response as compared to the case with no dampers added. The development of a design procedure for viscoelastic dampers by taking into account the ambient temperature is addressed next, following a modal strain energy approach. Numerical simulation on equivalent structural damping and structural response confirms that the dynamic behavior of structures with added viscoelastic dampers can be satisfactorily predicted by conventional analytical tools. In addition, the design of structures with added viscoelastic dampers can be easily incorporated into a conventional design process.


2009 ◽  
Vol 74 (645) ◽  
pp. 2011-2020 ◽  
Author(s):  
Yoji OOKI ◽  
Kazuhiko KASAI ◽  
Shigekazu YOKOYAMA ◽  
Akira WADA ◽  
Mitsumasa MIDORIKAWA

Author(s):  
Marcos Henrique Bossardi Borges ◽  
Adelano Esposito ◽  
Herbert Gomes

1982 ◽  
Vol 315 (0) ◽  
pp. 48-60
Author(s):  
Tsuneyoshi NAKAMURA ◽  
Osamu OHTA ◽  
Koji UETANI

2020 ◽  
pp. 136943322097728
Author(s):  
Haoran Yu ◽  
Weibin Li

Reduced web section (RWS) connections and welded flange plate (WFP) connections can both effectively improve the seismic performance of a structure by moving plastic hinges to a predetermined location away from the column face. In this paper, two kinds of steel frames—with RWS connections and WFP connections—as well as different frames with welded unreinforced flange connections were studied through seismic fragility analysis. The numerical simulation was conducted by using multiscale FE modelling. Based on the incremental dynamic analysis and pushover analysis methods, probabilistic seismic demand analysis and seismic capability analysis were carried out, respectively. Finally, combined with the above analysis results, probabilistic seismic fragility analysis was conducted on the frame models. The results showed that the RWS connection and WFP connection (without double plates) have little influence on reducing the maximum inter-storey drift ratio under earthquake action. RWS connections slightly reduce the seismic capability in non-collapse stages and improve the seismic collapse resistance of a structure, which exhibits good structural ductility. WFP connections can comprehensively improve the seismic capability of a structure, but the seismic collapse resistance is worse than that of RWS connections when the structure has a large number of storeys. The frame with WFP connections has a lower failure probability at every seismic limit state, while the frame with RWS connections sacrifices some of its structural safety in non-collapse stages to reduce the collapse probability.


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