A coupled phase-field model for sulfate-induced concrete cracking

被引:1
作者
Luo, Jie [1 ]
Wang, Qiao [1 ]
Zhou, Wei [1 ]
Zhuang, Xiaoying [2 ]
Peng, Zhangzheng [1 ]
Chang, Xiaolin [1 ]
Rabczuk, Timon [3 ]
机构
[1] Wuhan Univ, State Key Lab Water Resources Engn & Management, Wuhan 430072, Hubei, Peoples R China
[2] Leibniz Univ Hannover, Inst Photon, Dept Math & Phys, D-30167 Hannover, Germany
[3] Bauhaus Univ Weimar, Inst Struct Mech, D-99423 Weimar, Germany
基金
中国国家自然科学基金;
关键词
Sulfate corrosion; Cracks; Chemical-transport model; Phase-field model; Multi-field coupling model; Spalling phenomenon; CEMENT PASTES; DAMAGE MODEL; ATTACK; FRACTURE; TRANSPORT; DEGRADATION; PROPAGATION; EVOLUTION; GROWTH; PLAIN;
D O I
10.1016/j.ijmecsci.2024.109694
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The performance of concrete will decrease when subjected to external sulfate corrosion, and numerical models are effective means to analyze the mechanism. Most models cannot efficiently consider the effect between cracks and ionic transport because crack initiation and propagation are ignored. In this paper, a coupled chemical- transport-mechanical phase-field model is developed, in which the phase-field model is applied for the first time to predicate the cracking of sulfate-eroded concrete. The chemical-transport model is established based on the law of conservation of mass and chemical kinetics. The phase-field model equivalents the discrete sharp crack surface into a regularized crack, making it convenient to couple with the chemical-transport model. The crack driving energy in the phase-field model is computed by the expansion strain, which can be obtained from the chemical-transport model. The coupling of crack propagation and ionic transport is achieved by a theoretical equation, which considers both the effects of cracking and porosity. Complex erosion cracks can be automatically tracked by solving the phase-field model. The simulation results of the multi-field coupling model proposed in this paper are in good agreement with the experimental data. More importantly, the spalling phenomenon observed in physical experiments is reproduced, which has not been reported by any other numerical models yet, and new insight into the spalling mechanism is provided.
引用
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页数:21
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共 86 条
  • [1] MODELING OF THE CORROSION OF THE CEMENT PASTE BY DEIONIZED WATER
    ADENOT, F
    BUIL, M
    [J]. CEMENT AND CONCRETE RESEARCH, 1992, 22 (2-3) : 489 - 496
  • [2] A review on phase-field models of brittle fracture and a new fast hybrid formulation
    Ambati, Marreddy
    Gerasimov, Tymofiy
    De Lorenzis, Laura
    [J]. COMPUTATIONAL MECHANICS, 2015, 55 (02) : 383 - 405
  • [3] Concrete fracture models: testing and practice
    Bazant, ZP
    [J]. ENGINEERING FRACTURE MECHANICS, 2002, 69 (02) : 165 - 205
  • [4] Thermo-anisotropic crack propagation by XFEM
    Bouhala, Lyazid
    Makradi, Ahmed
    Belouettar, Salim
    [J]. INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2015, 103 : 235 - 246
  • [5] The variational approach to fracture
    Bourdin, Blaise
    Francfort, Gilles A.
    Marigo, Jean-Jacques
    [J]. JOURNAL OF ELASTICITY, 2008, 91 (1-3) : 5 - 148
  • [6] Chemo-mechanical modelling of the external sulfate attack in concrete
    Cefis, Nicola
    Comi, Claudia
    [J]. CEMENT AND CONCRETE RESEARCH, 2017, 93 : 57 - 70
  • [7] A Chemical-Transport-Mechanics Numerical Model for Concrete under Sulfate Attack
    Chen, Xuandong
    Gu, Xin
    Xia, Xiaozhou
    Li, Xing
    Zhang, Qing
    [J]. MATERIALS, 2021, 14 (24)
  • [8] Compressive strength assessment of sulfate-attacked concrete by using sulfate ions distributions
    Cheng, Hanbin
    Liu, Tiejun
    Zou, Dujian
    Zhou, Ao
    [J]. CONSTRUCTION AND BUILDING MATERIALS, 2021, 293
  • [9] Gradient damage vs phase-field approaches for fracture: Similarities and differences
    de Borst, Rene
    Verhoosel, Clemens V.
    [J]. COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2016, 312 : 78 - 94
  • [10] Explicit implementation of hydrogen transport in metals
    Diaz, A.
    Alegre, J. M.
    Cuesta, I. I.
    Zhang, Z.
    [J]. INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2024, 273