Properties and material models for modern construction materials at elevated temperatures

被引:38
|
作者
Naser, M. Z. [1 ]
机构
[1] Clemson Univ, Glenn Dept Civil Engn, Clemson, SC 29634 USA
关键词
Material models; Concrete; Steel; FRP; Fire resistance; Artificial neural network (ANN); Genetic algorithm (GA); HIGH-PERFORMANCE CONCRETE; HIGH-STRENGTH CONCRETE; MECHANICAL-PROPERTIES; FIRE RESISTANCE; REINFORCED-CONCRETE; THERMAL-PROPERTIES; STRUCTURAL-STEEL; FRP; BEHAVIOR; COMPOSITES;
D O I
10.1016/j.commatsci.2018.12.055
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The construction industry has adopted a number of new building materials over the past few years. While these materials are specifically designed to achieve improved strength and durability characteristics at ambient conditions, the performance of modern construction materials (MCMs) under extreme conditions such as fire is still not understood. Under elevated temperatures, MCMs not only undergo a series of physio-chemical degradations, but these degradations are often of a much severe magnitude than that in traditional construction materials (TCMs). Despite ongoing efforts, there continues to be a lack of guidance/provisions on how to account for such temperature-induced degradations in MCMs. This adds another dimension of complexity to researchers and engineers seeking to carry out fire resistance evaluation and also presents a major challenge towards promoting standardization and performance-based solutions for fire engineering applications. In order to bridge this knowledge gap, this paper presents a methodology to develop temperature-dependent material models for MCMs such as high strength/performance concrete (HSC/HPC), high/very high strength steels (HSS/VHSS), and fiber-reinforced polymer (FRP) composites, using two techniques of artificial intelligence (AI) namely: artificial neural networks (ANNs) and evolutionary genetic algorithms (GAs). The outcome of this study showcases the merit of integrating AI into understanding the complex behavior of MCMs under fire conditions as well as in deriving temperature-dependent material models for these materials.
引用
收藏
页码:16 / 29
页数:14
相关论文
共 50 条
  • [31] MECHANICAL PROPERTIES OF SLABBING MILL ROLL MATERIALS AT ROOM AND ELEVATED TEMPERATURES.
    Suzuki, Katsumi
    Takahashi, Kenji
    Nishi, Tadashi
    Kohira, Hiroshi
    Hori, Masao
    1976, 16 (02): : 106 - 114
  • [32] Compressive strength prediction models for concrete containing nano materials and exposed to elevated temperatures
    Dahish, Hany A.
    Almutairi, Ahmed D.
    RESULTS IN ENGINEERING, 2025, 25
  • [33] EXAMINATION OF THE PROPERTIES OF MATERIALS FOR RESISTANCE-WELDING ELECTRODES AT ELEVATED-TEMPERATURES
    TSYMBALYUK, AA
    WELDING PRODUCTION, 1980, 27 (10): : 21 - 25
  • [34] STUDIES OF MECHANICAL-PROPERTIES OF MATERIALS WITH METALLIZED COATINGS AT ELEVATED-TEMPERATURES
    PISARENKO, GS
    LJASENKO, BA
    ZYGULEV, OV
    NEUE HUTTE, 1983, 28 (03): : 101 - 106
  • [35] Improvement effect of a phase change material on microstructure of cement-based materials at elevated temperatures
    Gao, Furong
    Zhang, Linglei
    Ji, Yongsheng
    Gao, Yan
    Xue, Qi
    Zhang, Zhongzhe
    Ma, Ming Ming
    STRUCTURAL CONCRETE, 2022, 23 (04) : 2233 - 2245
  • [36] Study of benzocyclobutene as an optical material at elevated temperatures
    Strååt, A
    Nikolajeff, F
    APPLIED OPTICS, 2001, 40 (29) : 5147 - 5152
  • [37] Experimental studies on the material properties of high-strength bolt connection at elevated temperatures
    Li, GQ
    Yin, YZ
    Li, MF
    STEEL AND COMPOSITE STRUCTURES, 2002, 2 (04): : 247 - 258
  • [38] Material properties of historical steels from exhibition hall 12 in Leipzig at elevated temperatures
    Neck, Manuel
    Reichel, Susanne
    Thieme, Markus
    STAHLBAU, 2023, 92 (06) : 345 - 355
  • [39] Emerging materials for microelectromechanical systems at elevated temperatures
    Krogstad, Jessica A.
    Keimel, Chris
    Hemker, Kevin J.
    JOURNAL OF MATERIALS RESEARCH, 2014, 29 (15) : 1597 - 1608
  • [40] Emerging materials for microelectromechanical systems at elevated temperatures
    Jessica A. Krogstad
    Chris Keimel
    Kevin J. Hemker
    Journal of Materials Research, 2014, 29 : 1597 - 1608