Backbone curve variations on steel building seismic response

被引:3
|
作者
Maison, Bruce
Speicher, Matthew S. [1 ]
Lignos, Dimitrios [2 ]
机构
[1] Natl Inst Stand & Technol, Gaithersburg, MD 20899 USA
[2] Ecole Polytech Fed Lausanne EPFL, Lausanne, Switzerland
关键词
Adaptive component modeling; ASCE; 41; Standard; backbone curves; cyclic degradation; design practice; in-cycle degradation; incremental dynamic analysis; performance-based engineering; physical test loading protocols; steel moment-frame building; MOMENT; PERFORMANCE;
D O I
10.1177/87552930231172529
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
A 4-story steel moment-frame building designed according to ASCE 7 was used in a numerical parameter study to assess the effects of modeling features on peak drift demands. Features studied included strength, stiffness, ductility, and degradation along with several hysteretic models. Attention was given to ASCE 41-type backbone curves. Of particular interest was exploring the effects of degradation, in which an adaptive backbone curve was used to capture both in-cycle and cyclic degradations. Incremental dynamic analyses (IDAs) were performed using a suite of earthquake records to assess the response over a range of shaking intensities. It was found that in-cycle degradation had more influence on the response compared to cyclic degradation for the set of ground motion records that were employed. Moreover, use of the monotonic backbone alone, with its in-cycle degradation, was sufficient. In addition, it was found that increasing strength, stiffness, and/or ductility resulted in decreased peak drift demands, whereas modifying the hysteretic type (elasto-plastic, stiffness-degrading, and pinching) had little effect on peak drifts. These findings indicate that using backbone curves based on envelopes of first-cycle test data, as done in ASCE 41, can result in overly conservative seismic response predictions.
引用
收藏
页码:1945 / 1962
页数:18
相关论文
共 50 条
  • [41] NONLINEAR SEISMIC RESPONSE EVALUATION - CHARAIMA BUILDING
    MAHIN, SA
    BERTERO, VV
    JOURNAL OF THE STRUCTURAL DIVISION-ASCE, 1974, 100 (NST6): : 1225 - 1242
  • [42] EFFECT OF WATERPROOF LININGS ON THE SEISMIC RESPONSE OF A BUILDING
    CHESI, C
    MITSOPOULOU, E
    ENGINEERING STRUCTURES, 1981, 3 (04) : 203 - 209
  • [43] SEISMIC RESPONSE OF ECCENTRICALLY BRACED TALL BUILDING
    CELEBI, M
    JOURNAL OF STRUCTURAL ENGINEERING-ASCE, 1993, 119 (04): : 1188 - 1205
  • [44] Inelastic Seismic Response of Building with Friction Damper
    Banerjee S.
    Patro S.K.
    Journal of The Institution of Engineers (India): Series A, 2016, 97 (4) : 395 - 404
  • [45] Modelling the Cyclic Response and Development of the Backbone Curve of Corroded RC Bridge Piers
    Ahmad, Gheyasuddin
    Kamatchi, P.
    Sunil, J. C.
    STRUCTURAL ENGINEERING INTERNATIONAL, 2023, 33 (02) : 270 - 278
  • [46] Synthesis of new building blocks for peptide nucleic acids containing monomers with variations in the backbone
    Jordan, S
    Schwemler, C
    Kosch, W
    Kretschmer, A
    Schwenner, E
    Stropp, U
    Mielke, B
    BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 1997, 7 (06) : 681 - 686
  • [47] Building a better backbone
    Savage, N
    TECHNOLOGY REVIEW, 2001, 104 (05): : 40 - 46
  • [48] Steel Braced frames: Enhancing seismic response
    Fell, Benjamin
    Kanvinde, Amit
    Structural Engineer, 2009, 87 (21): : 22 - 26
  • [49] SEISMIC RESPONSE OF CONCENTRICALLY BRACED STEEL FRAMES
    REDWOOD, RG
    LU, F
    BOUCHARD, G
    PAULTRE, P
    CANADIAN JOURNAL OF CIVIL ENGINEERING, 1991, 18 (06) : 1062 - 1077
  • [50] SEISMIC RESPONSE OF RC FRAMES WITH STEEL BRACES
    JAIN, AK
    JOURNAL OF STRUCTURAL ENGINEERING-ASCE, 1985, 111 (10): : 2138 - 2148