Evaluation of lateral stiffness of steel structures having different types of lateral load- resisting systems

被引:0
|
作者
Sadeghi, Kabir [1 ]
Nabi, Krekar Kadir [2 ]
Nouban, Fatemeh [1 ]
机构
[1] Near East Univ, Civil Engn Dept, Near East Blvd,Via Mersin, TR-99138 North Cyprus, Turkiye
[2] Ishik Univ, Civil Engn Dept, Filkey Baz Sq, Erbil 44001, Iraq
关键词
bracing; lateral load-resisting systems; lateral stiffness; pushover analysis; shear wall; FRAME;
D O I
10.12989/acd.2024.9.3.151
中图分类号
TP31 [计算机软件];
学科分类号
081202 ; 0835 ;
摘要
In this paper, the evaluation of the elastic lateral stiffness factor (ELSF) of steel frames for different lateral load-resisting systems (LLRSs) is presented. First, 720 steel structural frame models have been analyzed and designed using the equivalent lateral force method. Then by using pushover analysis method, all models have been analyzed, compared and evaluated. Finally, the effects of a number of influenced parameters such as different types of LLRSs, span length, number of stories, number of spans as well as story height of the buildings on the lateral stiffness are assessed and by applying regression analysis some useful equations were submitted. Based on the results obtained for steel frames having different LLRSs, compared to ordinary moment-resisting frames (OMRFs) as a base (having ELSF of 1), the normalized average ELSFs of K-eccentrically braced-frames (K-EBFs), V-, Z-, inverted V-, X-braced-frames, shear walls with thickness of 25 cm (SW25) and shear walls with thickness of 30 cm (SW30) are about 2.2, 6, 7, 9, 11, 95, 155, respectively. Among the braced-frames, X-braced-frames have the maximum ELSF, about 10 times more than OMRF, while OMRFs provide the minimum ELSFs among all LLRSs, and the frames supported by shear walls have ELSFs about 100 to 150 times more than OMRFs.
引用
收藏
页码:151 / 165
页数:15
相关论文
共 50 条
  • [1] Robustness analysis of steel structures with various lateral load resisting systems under the seismic progressive collapse
    Tavakoli, HamidReza
    Afrapoli, Majid Moradi
    ENGINEERING FAILURE ANALYSIS, 2018, 83 : 88 - 101
  • [2] Seismic performance of lateral load resisting systems
    Subramanian, K. (drkscit@gmail.com), 1600, Techno-Press (51):
  • [3] Seismic performance of lateral load resisting systems
    Subramanian, K.
    Velayutham, M.
    STRUCTURAL ENGINEERING AND MECHANICS, 2014, 51 (03) : 487 - 502
  • [4] Perforated steel structural fuses in mass timber lateral load resisting systems
    Daneshvar, Hossein
    Niederwestberg, Jan
    Dickof, Carla
    Jackson, Robert
    Chui, Ying Hei
    ENGINEERING STRUCTURES, 2022, 257
  • [5] Load Distribution in Timber Structures Consisting of Multiple Lateral Load Resisting Elements with Different Stiffnesses
    Chen, Zhiyong
    Chui, Ying H.
    Ni, Chun
    Doudak, Ghasan
    Mohammad, Mohammad
    JOURNAL OF PERFORMANCE OF CONSTRUCTED FACILITIES, 2014, 28 (06)
  • [6] Types and layouts of bracing and their effects on lateral stiffness of steel-frame structures
    Gao, Xuan-Neng
    Jiang, Yuan
    Peng, Guan-Shou
    Zhang, Hui-Hua
    Gongcheng Lixue/Engineering Mechanics, 2010, 27 (SUPPL. 1): : 280 - 285
  • [7] Evaluation of cyclic behavior of lateral load resisting system with eccentric brace and steel plate
    Sarbangolia, Reza Khalili
    Maleki, Ahmad
    Badrib, Ramin K.
    STRUCTURAL ENGINEERING AND MECHANICS, 2024, 89 (03) : 239 - 252
  • [8] Seismic resilient lateral load resisting system for timber structures
    Hashemi, Ashkan
    Zarnani, Pouyan
    Masoudnia, Reza
    Quenneville, Pierre
    CONSTRUCTION AND BUILDING MATERIALS, 2017, 149 : 432 - 443
  • [9] Critical loads of lateral load resisting structures for tall buildings
    Hoenderkamp, JCD
    STRUCTURAL DESIGN OF TALL BUILDINGS, 2002, 11 (03): : 221 - 232
  • [10] Experimental investigations on reinforced concrete lateral load resisting systems under lateral loads
    G. N. Devi
    K. Subramanian
    A. R. Santhakumar
    Experimental Techniques, 2011, 35 : 59 - 73