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Probability-based prediction of residual displacement for SDOF using nonlinear static analysis

  • Feng, Zhibin (Faculty of Infrastructure Engineering, Dalian University of Technology) ;
  • Gong, Jinxin (Faculty of Infrastructure Engineering, Dalian University of Technology)
  • Received : 2019.07.16
  • Accepted : 2022.04.11
  • Published : 2022.06.25

Abstract

The residual displacement ratio (RDRs) response spectra have been generally used as an important means to evaluate the post-earthquake repairability, and the ratios of residual to maximum inelastic displacement are considered to be more appropriate for development of the spectra. This methodology, however, assumes that the expected residual displacement can be computed as the product of the RDRs and maximum inelastic displacement, without considering the correlation between these two variables, which inevitably introduces potential systematic error. For providing an adequately accurate estimate of residual displacement, while accounting for the collapse resistance performance prior to the repairability evaluation, a probability-based procedure to estimate the residual displacement demands using the nonlinear static analysis (NSA) is developed for single-degree-of-freedom (SDOF) systems. To this end, the energy-based equivalent damping ratio used for NSA is revised to obtain the maximum displacement coincident with the nonlinear time history analysis (NTHA) results in the mean sense. Then, the possible systematic error resulted from RDRs spectra methodology is examined based on the NTHA results of SDOF systems. Finally, the statistical relation between the residual displacement and the NSA-based maximum displacement is established. The results indicate that the energy-based equivalent damping ratio will underestimate the damping for short period ranges, and overestimate the damping for longer period ranges. The RDRs spectra methodology generally leads to the results being non-conservative, depending on post-yield stiffness. The proposed approach emphasizes that the repairability evaluation should be based on the premise of no collapse, which matches with the current performance-based seismic assessment procedure.

Keywords

Acknowledgement

The research described in this paper was financially supported by the National Natural Science Foundation of China under Grant No. 51678104 and 51978125. The authors sincerely acknowledged the valuable comments and suggestions from anonymous reviewers.

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