Seismic performance analysis on energy dissipating self-centering hinge joint frame based on Pushover method

被引:0
|
作者
Lu L. [1 ]
Yan H. [1 ]
Ye Y. [2 ]
机构
[1] College of Civil Engineering, Tongji University, Shanghai
[2] East China Architectural Design & Research Institute Co. Ltd., Shanghai
关键词
damper; energy dissipating self-centering hinge joint; finite element model; Pushover analysis; seismic performance;
D O I
10.3969/j.issn.1001-0505.2024.03.011
中图分类号
学科分类号
摘要
The static Pushover analysis method is adopted to study the seismic performance of reinforced concrete frames with energy dissipating self-centering hinge joint (EDSC-HJ). Firstly,the structure of EDSC-HJ frame is introduced,and the finite element model of EDSC-HJ frame structure is established,and the correctness of the numerical simulation is verified by comparing with the shaking table test results. Secondly,the Pushover method is employed to assess the seismic performance of EDSC-HJ frame both with and without dampers and determine the mechanical parameters of the joint elastic force-restoring device and the energy-dissipating device. The results indicate that the reasonable range of relative rotational stiffness ratio of beam-column nodes of the EDSC-HJ frame is 0. 05-0. 5;the interlayer displacement responses of the EDSC-HJ frame with dampers decrease by 76% and meet the limit requirements;the base shear responses of the EDSC-HJ frame with dampers increase by 23% due to the additional lateral stiffness of the structure increased by the setting of dampers. The seismic performance of EDSC-HJ frame is obviously better than that of reinforced concrete frame (RCF)structure,and it has good toughness structure characteristics. © 2024 Southeast University. All rights reserved.
引用
收藏
页码:608 / 615
页数:7
相关论文
共 21 条
  • [1] Priestley M J N, Tao J R., Seismic response of precast prestressed concrete frames with partially debonded tendons[J], PCI Journal, 38, 1, pp. 58-69, (1993)
  • [2] Stone W, Cheok G, Stanton J., Performance of hybrid moment-resisting precast beam-column concrete connections subjected to cyclic loading[J], Aci Structural Journal, 92, pp. 229-249, (1995)
  • [3] Morgen B G, Kurama Y C., A friction damper for post-tensioned precast concrete moment frames [J], PCI Journal, 49, 4, pp. 112-133, (2004)
  • [4] Huang L J, Zhou Z, Huang X G, Et al., Variable friction damped self-centering precast concrete beam-column connections with hidden corbels:Experimental investigation and theoretical analysis[J], Engineering Structures, 206, (2020)
  • [5] Shu G P, Li R., Experimental study on seismic performance of pin-connected steel frame-self-centering-energy-dissipation bracing substructure, Journal of Southeast University (Natural Science Edition), 51, 2, (2021)
  • [6] Jia J F, Zhao L Y, Bai Y L, Et al., Design of self-centering energy dissipation brace with U-Shaped steel plates and analysis on hysteretic behavior [J], Journal of Southeast University (Natural Science Edition), 51, 5, (2021)
  • [7] Lu L, Chen K F, Hu Y F., Experimental research on the energy-dissipating self-centering frame joint with beam-end spring[J], Structural Engineers, 35, 1, pp. 122-130, (2019)
  • [8] Fajfar P, Fischinger M., N2-A method for non-linear seismic analysis of regular buildings, Proceedings of the 9th World Conference on Earthquake Engineering, 5, (1988)
  • [9] Fajfar P, Gaspersi P., The N2 method for the seismic damage analysis of RC buildings[J], Earthquake Engineering & Structural Dynamics, 25, 1, (1996)
  • [10] Krawinkler H, Seneviratna G D P K., Pros and cons of a pushover analysis of seismic performance evaluation [J], Engineering Structures, 20, 4, (1998)