Constitutive model for concrete under biaxial tension-compression stresses based on statistical damage theory

被引:0
|
作者
Bai, Weifeng [1 ,2 ]
Sun, Shengnan [3 ]
Guan, Junfeng [1 ]
Chen, Jianyun [2 ]
机构
[1] Water Resources Department, North China University of Water Resources and Electric Power, Zhengzhou,450011, China
[2] State Key Laboratory of Coastal and Offshore Engineering, Dalian University of Technology, Dalian,116024, China
[3] School of Architecture & Civil Engineering, Liaocheng University, Liaocheng,252059, China
关键词
Concretes - Constitutive models - Compressive stress - Failure (mechanical) - Strain;
D O I
10.16058/j.issn.1005-0930.2015.05.003
中图分类号
学科分类号
摘要
The statistical damage constitutive model for concrete under biaxial tensile and compressive stresses was proposed, based on the statistical damage theory and the experimental phenomena. It considered two meso-scale damage modes, rupture and yield. The evolution process of damage was driven by the principal tensile and compressive strains. The damage evolution process of concrete under complex stress state was considered as the combination of uniaxial tension and uniaxial compression, which were regarded as the two most fundamental failure forms. The equivalent relations of micromechanical damage mechanisms corresponding to the macroscopic tensile and compressive failure modes were established, by introducing the concepts of equivalent transfer tensile damage strain and the damage influence parameter. The results show that it can accurately predict the constitutive behavior in the uniform damage phase for concrete under biaxial tension and compression. The damage mechanism was discussed from the view points of biaxial strength, deformation properties and the failure form. © 2015, Editorial Board of Journal of Basic Science and Engineering. All right reserved.
引用
收藏
页码:873 / 885
相关论文
共 50 条
  • [41] Mechanical behavior of different types of concrete under multiaxial tension-compression
    Shang, Huai-shuai
    Yang, Shu-tong
    Niu, Xue-ying
    CONSTRUCTION AND BUILDING MATERIALS, 2014, 73 : 764 - 770
  • [42] Residual stresses and endurance strength under tension-compression in the conditions of stress concentration
    Pavlov V.F.
    Kirpichev V.A.
    Yakovenko N.I.
    Ivanov D.V.
    Russ. Aeronaut., 2007, 4 (442-445): : 442 - 445
  • [43] Research on damage constitutive model of rock under dynamical load based on statistical theory
    Yang, Ming-Hui
    Zhao, Ming-Hua
    Cao, Wen-Gui
    Wuhan Ligong Daxue Xuebao/Journal of Wuhan University of Technology, 2007, 29 (04): : 95 - 98
  • [44] A microplane constitutive model for shape memory alloys considering tension-compression asymmetry
    Ravari, M. R. Karamooz
    Kadkhodaei, M.
    Ghaei, A.
    SMART MATERIALS AND STRUCTURES, 2015, 24 (07)
  • [45] EFFECTS OF JOINT CONGRUENCY ON THE RESPONSE OF A TENSION-COMPRESSION NONLINEAR CONSTITUTIVE MODEL FOR CARTILAGE
    Ellis, Benjamin J.
    Ateshian, Gerard A.
    Anderson, Andrew E.
    Canal, Clare
    Maas, Steve A.
    Weiss, Jeffrey A.
    PROCEEDINGS OF THE ASME SUMMER BIOENGINEERING CONFERENCE 2008, PTS A AND B, 2009, : 1073 - 1074
  • [46] A Uniaxial Nonlinear Tension-Compression Constitutive Model Based on Boltzmann Function for Typical PBXs under Quasi-Static Loading
    Tang, Wei
    Yan, Xi-Lin
    Wen, Mao-Ping
    Zhao, Long
    Li, Ming
    Liu, Tong
    Zhang, Ding-Guo
    Hanneng Cailiao/Chinese Journal of Energetic Materials, 2017, 25 (08): : 689 - 693
  • [47] A damage constitutive model for concrete under uniaxial compression capturing strain localization
    Wang, Yanpeng
    CEMENT AND CONCRETE RESEARCH, 2024, 178
  • [48] Microplane model for reinforced-concrete planar members in tension-compression
    Park, H
    Kim, H
    JOURNAL OF STRUCTURAL ENGINEERING, 2003, 129 (03) : 337 - 345
  • [49] Dynamic damage constitutive model of concrete in uniaxial tension
    Tsinghua Univ, Tsinghua, China
    Eng Fract Mech, 3 (449-455):
  • [50] Dynamic damage constitutive model of concrete in uniaxial tension
    Li, QB
    Zhang, CH
    Wang, GL
    ENGINEERING FRACTURE MECHANICS, 1996, 53 (03) : 449 - 455