Guidance for Treatment of High-Temperature Creep in Fire Resistance Analysis of Concrete Structures

被引:0
|
作者
V. Kodur
S. M. Alogla
S. Venkatachari
机构
[1] Michigan State University,Department of Civil and Environmental Engineering
[2] Qassim University,Department of Civil Engineering, College of Engineering
来源
Fire Technology | 2021年 / 57卷
关键词
Transient creep; Explicit creep; Design recommendations; Reinforced concrete; Concrete columns;
D O I
暂无
中图分类号
学科分类号
摘要
Concrete structures develop high levels of transient creep strain when exposed to fire, especially when temperatures in a member exceed 500°C. This high-temperature creep strain can dominate the deformation response under severe fire scenarios and needs to be properly accounted for in the fire resistance analysis. Most of the current approaches for fire resistance calculations, including advanced analysis methods, do not consider the transient creep strain to the full extent. This paper presents design recommendations for the treatment of creep in the fire resistance analysis of concrete structures. Three design alternatives are proposed for incorporating creep in fire resistance analysis depending on the conditions encountered during fire exposure. The first solution is ‘creep-not critical’ scenario where the temperature-induced creep strain can be neglected in a structural member subjected to low stress level and experiencing low sectional temperatures. In the second scenario (‘creep-implicit’), where temperature-induced creep strain is moderate, creep can be incorporated implicitly in the analysis. Finally, in situations where creep is significant (as in the case of high stress level and sectional temperatures), it needs to be incorporated explicitly in the fire resistance analysis (‘creep-explicit’ scenario). The practicality of the proposed solution in accounting for creep in the fire resistance analysis of concrete members at different levels is demonstrated using three case studies.
引用
收藏
页码:1167 / 1197
页数:30
相关论文
共 50 条
  • [41] HIGH-TEMPERATURE CREEP - INTRODUCTION
    BASSANI, JL
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1988, 103 (01): : 95 - 95
  • [42] HIGH-TEMPERATURE CREEP OF RHODIUM
    SHALAYEV, VI
    TKACHENK.IB
    PAVLOV, VA
    TIMOFEYE.NI
    GUSHCHIN.AV
    PHYSICS OF METALS AND METALLOGRAPHY-USSR, 1970, 29 (05): : 170 - &
  • [43] HIGH-TEMPERATURE CREEP OF GRAPHITE
    FISCHBACH, DB
    NATURE, 1960, 186 (4727) : 795 - 797
  • [44] High-temperature creep in ceramics
    V. S. Bakunov
    Refractories and Industrial Ceramics, 1997, 38 : 449 - 452
  • [45] HIGH-TEMPERATURE CREEP.
    Mukherjee, Amiya K.
    1975, : 163 - 224
  • [46] HIGH-TEMPERATURE CREEP OF GAAS
    BEHRENSMEIER, R
    BRION, HG
    HAASEN, P
    SIETHOFF, H
    PHYSICA STATUS SOLIDI A-APPLIED RESEARCH, 1991, 124 (02): : 447 - 453
  • [47] Prediction of the corrosion cracking of structures under the conditions of high-temperature creep
    O. K. Morachkovskii
    Yu. V. Romashov
    Materials Science, 2011, 46
  • [48] Strategies for enhancing fire resistance of high-strength concrete structures
    Kodur, Venkatesh Kumar R.
    Betonwerk und Fertigteil-Technik/Concrete Plant and Precast Technology, 2020, 86 (11): : 58 - 68
  • [49] PREDICTION OF THE CORROSION CRACKING OF STRUCTURES UNDER THE CONDITIONS OF HIGH-TEMPERATURE CREEP
    Morachkovskii, O. K.
    Romashov, Yu. V.
    MATERIALS SCIENCE, 2011, 46 (05) : 613 - 618
  • [50] Statistical analysis of strengths of concrete and steel bar after high-temperature treatment
    State Key Laboratory of Subtropical Building Science, South China University of Technology, Guangzhou 510640, China
    Huanan Ligong Daxue Xuebao, 2008, 12 (13-20):