Electrical properties of cement-based materials: Multiscale modeling and quantification of the variability

被引:18
|
作者
Honorio, Tulio [1 ]
Carasek, Helena [2 ]
Cascudo, Oswaldo [2 ]
机构
[1] Univ Paris Saclay, LMT, CNRS, ENS Paris Saclay, F-94235 Cachan, France
[2] Univ Fed Goias, PPG GECON, Escola Engn Civil & Ambiental, Goiania, Go, Brazil
关键词
Electrical resistivity; Electrical conductivity; Specific ion effects; Composition variability; Micromechanics; INTERFACIAL TRANSITION ZONE; C-S-H; RANDOM HOMOGENIZATION ANALYSIS; PORTLAND-CEMENT; IMPEDANCE SPECTROSCOPY; ELASTIC PROPERTIES; MECHANICAL-PROPERTIES; CONCRETE RESISTIVITY; COMPUTER-SIMULATION; RATIO GRADIENTS;
D O I
10.1016/j.conbuildmat.2020.118461
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The electrical properties, resistivity and conductivity, inform on the durability of cement-based materials and can be used for monitoring and inspection of concrete structures. The physical origin of these properties can be linked to the dynamics of the pore solution. We propose a multiscale modeling approach of the electrical conductivity and resistivity informed by the dynamics of ions that enables the quantification of property variability across scales using Monte Carlo Micromechanics (MCM) computations. As a source of variability, we consider the pore solution composition, clinker composition and the uncertainty on solid conductivity. The results are compared to experimental measurements on various cement systems. The age-dependency of ionic diffusion, due to ion-ion and ion-solvent collective effects, is crucial to model the evolution of electrical conductivity. The main results show that Monte Carlo Micromechanics enables the quantification of the variability and uncertainty across scales, since MCM computations have provided estimates of the standard deviation of the electrical conductivity and resistivity at the scales of cement paste, mortar and concrete. Also, the results show that self-consistent scheme provides a good estimate of the effective electrical conductivity of cement-pastes, capturing the transition from a liquid to a solid matrix during cement hydration. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] Multiscale modeling elastic properties of cement-based materials considering imperfect interface effect
    Liang, Siming
    Wei, Ya
    Wu, Zehong
    CONSTRUCTION AND BUILDING MATERIALS, 2017, 154 : 567 - 579
  • [2] Thermal properties of cement-based materials: Multiscale estimations at early-age
    Honorio, Tulio
    Bary, Benoit
    Benboudjema, Farid
    CEMENT & CONCRETE COMPOSITES, 2018, 87 : 205 - 219
  • [3] Electrical tomography for characterizing transport properties in cement-based materials: A review
    Smyl, Danny
    CONSTRUCTION AND BUILDING MATERIALS, 2020, 244
  • [4] Cement-based controlled electrical resistivity materials
    Sihai Wen
    D. D. L. Chung
    Journal of Electronic Materials, 2001, 30 : 1448 - 1451
  • [5] Cement-based controlled electrical resistivity materials
    Wen, SH
    Chung, DDL
    JOURNAL OF ELECTRONIC MATERIALS, 2001, 30 (11) : 1448 - 1451
  • [6] Quantification of dynamic tensile behavior of cement-based materials
    Chen, Xudong
    Wu, Shengxing
    Zhou, Jikai
    CONSTRUCTION AND BUILDING MATERIALS, 2014, 51 : 15 - 23
  • [7] Study on the multiscale properties of cement-based materials containing nano-bubble water
    Liu, Hengrui
    Tian, Zhenghong
    Sun, Xiao
    Xiang, Junzheng
    Jiao, Xinchen
    CONSTRUCTION AND BUILDING MATERIALS, 2022, 360
  • [8] Study on the multiscale properties of cement-based materials containing nano-bubble water
    Liu, Hengrui
    Tian, Zhenghong
    Sun, Xiao
    Xiang, Junzheng
    Jiao, Xinchen
    Construction and Building Materials, 2022, 360
  • [9] Multiscale poro-creep model for cement-based materials
    Gu, Shui-Tao
    Bary, Benoit
    He, Qi-Chang
    Thai, Minh-Quan
    INTERNATIONAL JOURNAL FOR NUMERICAL AND ANALYTICAL METHODS IN GEOMECHANICS, 2012, 36 (18) : 1932 - 1953
  • [10] Modeling Framework for Fracture in Multiscale Cement-Based Material Structures
    Qian, Zhiwei
    Schlangen, Erik
    Ye, Guang
    van Breugel, Klaas
    MATERIALS, 2017, 10 (06):