Multi-scale numerical simulation on mechanical strength of concrete based on its microstructural evolution

被引:1
|
作者
Li, Xiangnan [1 ]
Zhang, Yuye [1 ]
Liu, Jinghan [1 ]
Zuo, Xiaobao [1 ]
机构
[1] Nanjing Univ Sci & Technol, Sch Safety Sci & Engn, Nanjing 210094, Peoples R China
基金
中国国家自然科学基金;
关键词
Concrete; Mechanical strength; Multiscale model; Microstructure; Numerical simulation; ELASTIC-MODULI; MICROMECHANICS; PREDICTION; BEHAVIOR; PERFORMANCE; COMPOSITES; FAILURE; TENSILE; STRESS; SHAPES;
D O I
10.1016/j.conbuildmat.2024.137672
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The aim of this paper is to numerically investigate the relationship between mechanical strength and micro- structural evolution of concrete, firstly, based on the geometrical characteristics of constituents, a multi-scale model of concrete was geometrically reconstructed; Secondly, a stress response equation of composite material at different scale of concrete was presented, and a multiscale model of concrete strength associated with stress response was proposed; Finally, after being verified, this model was utilized to conduct a numerical analysis on the characteristics of stress response and the mechanical strength of concrete in the curing process as well as the effect of microstructural characteristics on the strength of concrete. Results show that, the fact that the compressive strength of concrete is clearly greater than its tensile strength is attributed to the difference in the stress response under uniaxial compressive and tensile loading, while the mechanical strength of concrete is obviously affected by spatial orientation and geometric shape of hydration products in the microstructure.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] Multi-scale numerical simulation analysis for influence of combined leaching and frost deteriorations on mechanical properties of concrete
    Hu, Jiang
    MULTIDISCIPLINE MODELING IN MATERIALS AND STRUCTURES, 2016, 12 (04) : 648 - 671
  • [2] Multi-scale Simulation Techniques of Mechanical Strength of Nanocomposite Insulating Materials
    Kobayashi, Kinya
    Ohtake, Atsushi
    Sano, Akihiro
    Kato, Tetsuji
    IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2017, 24 (06) : 3500 - 3504
  • [3] Multi-Scale Mechanical Performance of High Strength-High Ductility Concrete
    Ranade, Ravi
    Heard, William F.
    Williams, Brett A.
    DYNAMIC BEHAVIOR OF MATERIALS, VOL 1, 2016, : 93 - 101
  • [4] Multi-scale study on mechanical property and strength prediction of aeolian sand concrete
    Li, Yugen
    Zhang, Huimei
    Liu, Guangxiu
    Hu, Dawei
    Ma, Xiangrong
    CONSTRUCTION AND BUILDING MATERIALS, 2020, 247
  • [5] Mechanical property research on concrete based on random multi-scale mechanical model
    Du, Xiu-Li
    Jin, Liu
    Gongcheng Lixue/Engineering Mechanics, 2011, 28 (SUPPL. 1): : 151 - 155
  • [6] Numerical Simulation of an Oil Cooler Based on Multi-Scale Method
    Su F.
    Feng W.
    Yuan X.
    1600, South China University of Technology (48): : 112 - 117
  • [7] Thermal behavior and microstructural evolution of additively manufactured Ni-based superalloys via multi-scale simulation
    Huang, Xiaoqiang
    Chen, Haotian
    Liu, Bin
    Mohammadzadeh, Roghayeh
    Li, Jia
    Fang, Qihong
    Optik, 2021, 243
  • [8] Thermal behavior and microstructural evolution of additively manufactured Ni-based superalloys via multi-scale simulation
    Huang, Xiaoqiang
    Chen, Haotian
    Liu, Bin
    Mohammadzadeh, Roghayeh
    Li, Jia
    Fang, Qihong
    OPTIK, 2021, 243
  • [9] Mechanical behavior of multi-scale fiber-reinforced concrete for secondary tunnel lining: Field test and numerical simulation
    Ren, Lianxi
    Wei, Zhifeng
    Liang, Ninghui
    Liu, Xinrong
    Deng, Zhiyun
    CASE STUDIES IN CONSTRUCTION MATERIALS, 2022, 17
  • [10] Multi-scale simulation of microstructural evolution for molten U-Zr-O ternary system
    Zhang, Bing
    Tian, Ben
    Xu, Bo
    Deng, Junkai
    Wang, Dong
    Gong, Houjun
    Li, Yang
    Guo, Kerong
    Yang, Sen
    Ke, Xiaoqin
    JOURNAL OF NUCLEAR MATERIALS, 2024, 597