Numerical analysis for low cyclic loading test of shear wall based on MFBFE shear wall element

被引:0
|
作者
机构
[1] [1,Du, Ke
[2] 1,Sun, Jingjiang
[3] 1,Ding, Baorong
[4] 1,Liu, Chen
来源
Du, K. (duke.iem@gmail.com) | 1600年 / Chinese Society of Civil Engineering卷 / 47期
关键词
Software testing - Cyclic loads - Stiffness - Unloading - Energy dissipation - Nonlinear analysis - Numerical analysis - Earthquake engineering - Reinforced concrete - Fibers - Shear walls;
D O I
暂无
中图分类号
学科分类号
摘要
Force-based fiber element, which ignores section shear deformation and assumes the section is plane, is the most commonly used element for the nonlinear analysis of reinforced concrete structures. However, for shear wall structures, the section is much wider than that of beam and column, thus plane-section hypothesis and section shear deformation ignorance will cause greater error. A Modified Force-based Fiber Element (MFBFE) considering the section shear deformation is proposed in this paper. In the modified force-based fiber element, the cross section is no longer plane section but curved surface. The MFBFE elements is first formulated and then implemented in the finite element program OpenSees. Numerical analysis for a group of nine shear wall specimens under low-cyclic loading is conducted using MFBFE element. Analysis results show that the entire hysteretic loops of shear walls, including the initial stiffness, yield strength, ultimate strength, unloading stiffness, residual displacement, ductility and energy dissipation, are well predicted. Trend analysis under variable axial compression ratio, variable aspect ratios and variable concrete strength, variable longitudinal reinforcement ratio, variable constraint zone length, variable stirrup ratio shows that the MFBFE element has broader applicability. The new element proposed in this paper can be used in shear wall structures design to resist earthquake actions.
引用
收藏
相关论文
共 50 条
  • [21] Numerical analysis for reinforced concrete shear wall
    Wang, QF
    STRUCTURAL ENGINEERING AND MECHANICS, VOLS 1 AND 2, 1999, : 1091 - 1096
  • [22] Cyclic Test of a Coupled Steel Plate Shear Wall Substructure
    Li, C. H.
    Tsai, K. C.
    Chang, J. T.
    Lin, C. H.
    PROCEEDINGS OF THE TWELFTH EAST ASIA-PACIFIC CONFERENCE ON STRUCTURAL ENGINEERING AND CONSTRUCTION (EASEC12), 2011, 14
  • [23] Cyclic Lateral Load Test for Shear Wall with Coupling Slab
    Kwon, Jong-Hoon
    Lee, Bum-Sik
    Kim, Sung-Hyun
    Park, Hong-Gun
    ACI STRUCTURAL JOURNAL, 2025, 122 (02) : 3 - 20
  • [24] Cyclic test of a coupled steel plate shear wall substructure
    Li, Chao-Hsien
    Tsai, Keh-Chyuan
    Chang, Jing-Tang
    Lin, Chih-Han
    Chen, Jia-Chian
    Lin, Te-Hung
    Chen, Pei-Ching
    EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS, 2012, 41 (09): : 1277 - 1299
  • [25] Cyclic Test of Precast Reinforced Concrete Tessellated Shear Wall
    Crocker, G. F.
    Ross, B. E.
    Kleiss, M. C.
    Okumus, P.
    Khorasani, N. E.
    ACI STRUCTURAL JOURNAL, 2024, 121 (05) : 37 - 50
  • [26] Unstiffened steel plate shear wall performance under cyclic loading
    Lubell, AS
    Prion, HGL
    Ventura, CE
    Rezai, M
    JOURNAL OF STRUCTURAL ENGINEERING-ASCE, 2000, 126 (04): : 453 - 460
  • [27] Simulation of reinforced concrete short shear wall subjected to cyclic loading
    Parulekar, Y. M.
    Reddy, G. R.
    Vaze, K. K.
    Pegon, P.
    Wenzel, H.
    NUCLEAR ENGINEERING AND DESIGN, 2014, 270 : 344 - 350
  • [28] NUMERICAL ANALYSIS OF SHEAR WALLS UNDER CYCLIC LOADING BASED ON OPENSEES
    Dai, Jin-Hua
    Han, Xiao-Lei
    Chen, Xue-Wei
    Huang, Chao
    Mao, Gui-Niu
    ISISS '2009: INNOVATION & SUSTAINABILITY OF STRUCTURES, VOLS 1 AND 2, 2009, : 410 - 416
  • [29] A VERSATILE PANEL ELEMENT FOR THE ANALYSIS OF SHEAR WALL STRUCTURES
    PEKAU, OA
    HUTTELMAIER, HP
    COMPUTERS & STRUCTURES, 1980, 12 (03) : 349 - 359
  • [30] DESIGN OPTIMIZATION AND SEISMIC ANALYSIS OF SHEAR WALL STRUCTURE BASED ON SHEAR WALL AREA RATIO
    Ma, Hongwei
    Huang, Zibin
    Guo, Jiaxin
    Fundamental Research in Structural Engineering: Retrospective and Prospective, Vols 1 and 2, 2016, : 1816 - 1821