Numerical modeling and experimental validation of Sliding-LRBs considering hysteretic strength degradation

•An advanced numerical model with HSD of Sliding-LRB is developed.•Hysteretic strength degradation of the Sliding-LRB is numerically modeled.•Numerical study is conducted to investigate the hysteretic behavior and compared to experiments.•Effectiveness and accuracy of the developed numerical model i...

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Veröffentlicht in:Engineering structures 2022-07, Vol.262, p.114374, Article 114374
Hauptverfasser: Zheng, Wenzhi, Wang, Hao, Tan, Ping, Li, Jian, Liu, Yanhui
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Sprache:eng
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Zusammenfassung:•An advanced numerical model with HSD of Sliding-LRB is developed.•Hysteretic strength degradation of the Sliding-LRB is numerically modeled.•Numerical study is conducted to investigate the hysteretic behavior and compared to experiments.•Effectiveness and accuracy of the developed numerical model is demonstrated and validated compared with experimental results.•Numerical model representations are derived for the hysteretic behavior of the Sliding-LRB. To investigate the refined hysteretic response of the Sliding-LRB subjected to cyclic loadings, an advanced numerical model with HSD is developed based on the OpenSees platform. The hysteretic performance of the Sliding-LRB is numerically investigated under cyclic loadings and validated by the experimental results accordingly. In particular, various loading conditions, e.g., vertical loading, loading frequency and shear displacement amplitude are considered to conduct the numerical study and the numerical results are compared with the experimental counterparts. The key hysteretic characteristics, including the energy dissipation in each cycle, equivalent stiffness and damping ratio, are compared to demonstrate the accuracy and effectiveness of the developed numerical model of the Sliding-LRB. Results show that the developed numerical model can effectively predict the hysteretic behavior of the Sliding-LRB under cyclic loadings, and the numerical results match well with that of the corresponding experimental values. The numerical model representations of the Sliding-LRB are then achieved based on the numerical and experimental results.
ISSN:0141-0296
1873-7323
DOI:10.1016/j.engstruct.2022.114374