Stress-strain-temperature relationship for concrete

被引:19
|
作者
Le, Quang X. [1 ,3 ]
Torero, Jose L. [2 ]
Dao, Vinh T. N. [1 ]
机构
[1] Univ Queensland, Sch Civil Engn, Brisbane, Qld 4072, Australia
[2] UCL, Dept Civil Environm & Geomat Engn, London, England
[3] Univ Danang Univ Sci & Technol, Fac Civil Engn, Danang, Vietnam
基金
澳大利亚研究理事会;
关键词
Stress-strain-temperature relationship; Structural response; Total strain model; Load-induced thermal strain; Performance-based design; TRANSIENT THERMAL STRAIN; BEHAVIOR;
D O I
10.1016/j.firesaf.2020.103126
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
When concrete structures are subjected to load and temperature simultaneously, it is essential to take into account the coupled effects between stress and expansion. However, due to incomplete understanding, such coupled effects have only been incorporated into current Eurocode 2 (EC2) stress-strain curves by means of empirical correlations. These empirical correlations at different target temperatures are presented in tables that do not allow to clearly identify the correlation chosen to obtain the specific values. A further limitation of these tables is that the relationships cannot be used to evaluate the performance of concrete structures during the cooling phase. In this paper, a physically-based model of the coupled effects between stress and expansion is used to define the strain corresponding to the compressive strength, and thus to develop a simple formulation for stress-strain-temperature relationship of concrete. The results are then compared with the EC2 stress-strain-temperature table. The expression of stress-strain-temperature relationship developed in this paper successfully agrees with the stress-strain curves of concrete in EC2 used for the heating phase. More importantly, the proposed stress-strain-temperature relationship can also be applicable for design purposes of concrete structures during the cooling phase.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] ON STRESS-STRAIN-TEMPERATURE RELATION IN TiNi ALLOYS: PHENOMENOLOGICAL STUDY ON BEHAVIOR OF SHAPE MEMORY ALLOYS.
    Tanaka, Kikuaki
    Tobushi, Hisaaki
    Iwanaga, Hiroyuki
    Zairyo/Journal of the Society of Materials Science, Japan, 1988, 37 (414) : 267 - 271
  • [22] Stress-strain-temperature hysteresis and martensite start line in an Fe-based shape memory alloy
    Nishimura, F
    Watanabe, N
    Tanaka, K
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1997, 238 (02): : 367 - 376
  • [23] STRESS-STRAIN RELATIONSHIP FOR PLAIN CONCRETE IN COMPRESSION
    CARREIRA, DJ
    CHU, KH
    JOURNAL OF THE AMERICAN CONCRETE INSTITUTE, 1985, 82 (06): : 797 - 804
  • [24] Stress-strain relationship for asphalt concrete in compression
    Starodubsky, S.
    Blechman, I.
    Livneh, M.
    Materiaux et constructions, 1994, 27 (172): : 474 - 482
  • [25] STRESS-STRAIN RELATIONSHIP FOR ASPHALT CONCRETE IN COMPRESSION
    STARODUBSKY, S
    BLECHMAN, I
    LIVNEH, M
    MATERIALS AND STRUCTURES, 1994, 27 (172): : 474 - 482
  • [27] MODELING THE STRESS-STRAIN RELATIONSHIP OF STRUCTURAL CONCRETE
    NOOR, FA
    WIJAYASRI, S
    MAGAZINE OF CONCRETE RESEARCH, 1982, 34 (118) : 25 - 34
  • [28] Postpeak strain-stress relationship for concrete in compression
    Palmquist, SM
    Jansen, DC
    ACI MATERIALS JOURNAL, 2001, 98 (03) : 213 - 219
  • [29] Stress-strain relationship of confined and unconfined concrete
    Attard, MM
    Setunge, S
    ACI MATERIALS JOURNAL, 1996, 93 (05) : 432 - 442
  • [30] Stress-strain-temperature behavior due to B2-R-B19′ transformation in NiTi polycrystals
    Sittner, P.
    Novak, V.
    Lukas, P.
    Landa, M.
    JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 2006, 128 (03): : 268 - 278