Numerical simulation of the fracture behaviour of glass fibre reinforced cement: A cohesive crack approach

被引:0
|
作者
Enfedaque, A. [1 ]
Alberti, M. G. [1 ]
Galvez, J. C. [1 ]
机构
[1] Univ Politecn Madrid, ETSI Caminos Canales & Puertos, Dept Ingn Civil, Construcc, Madrid, Spain
来源
COMPUTATIONAL MODELLING OF CONCRETE STRUCTURES. EURO-C 2018 | 2018年
关键词
FINITE-ELEMENT-ANALYSIS; MODEL; CONCRETE; DURABILITY;
D O I
暂无
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The exceptional mechanical characteristics that Glass Fibre Reinforced Cement (GRC) shows are obtained by merging the properties of the glass fibres and the brittle matrix. Cement mortar provides a notable compressive strength and correspondingly the presence of glass fibres enhances the material toughness. Moreover, the fracture energy is also increased due to the presence of the glass fibres that add a multiple cracking damage pattern and, hence, a large damaged surface. In order to provide available resources that may ease and widen the structural design of GRC, the assessment and verification of its constitutive relations is of high significance, given that such relations may reproduce the fracture behaviour. The softening function of GRC under flexural tensile fracture tests in an in-plane disposition has been obtained by combining numerical simulations with an inverse analysis. The application of trilinear softening functions reproduces with notable accuracy the fracture behaviour of GRC. The constitutive relations found can be used for future modelling and structural design and, therefore have widened the feasible applications and reliability of GRC in the construction industry.
引用
收藏
页码:867 / 875
页数:9
相关论文
共 50 条
  • [1] Numerical simulation of the fracture behaviour of glass fibre reinforced cement
    Enfedaque, A.
    Alberti, M. G.
    Galvez, J. C.
    Domingo, J.
    CONSTRUCTION AND BUILDING MATERIALS, 2017, 136 : 108 - 117
  • [2] Application of trilinear softening functions based on a cohesive crack approach to the simulation of the fracture behaviour of fibre reinforced cementitious materials
    Enfedaque, A.
    Alberti, M. G.
    Galvez, J. C.
    FIBRE CONCRETE 2017, 2017, 246
  • [3] Numerical modelling of the fracture of polyolefin fibre reinforced concrete by using a cohesive fracture approach
    Alberti, M. G.
    Enfedaque, A.
    Galvez, J. C.
    Reyes, E.
    COMPOSITES PART B-ENGINEERING, 2017, 111 : 200 - 210
  • [4] Fracture behaviour of glass fibre-reinforced polyester composite
    Leonard, L. W. H.
    Wong, K. J.
    Low, K. O.
    Yousif, B. F.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART L-JOURNAL OF MATERIALS-DESIGN AND APPLICATIONS, 2009, 223 (L2) : 83 - 89
  • [5] Mechanical and fracture properties of mortars reinforced with glass fibre and prepared with different cement types
    Ibrahim, Haruna
    Wardeh, George
    Fares, Hanaa
    Ghorbel, Elhem
    INTERNATIONAL JOURNAL OF BUILDING PATHOLOGY AND ADAPTATION, 2024,
  • [6] Fatigue behaviour of glass-fibre-reinforced polymers: Numerical and experimental characterisation
    Alcayde, B.
    Merzkirch, M.
    Cornejo, A.
    Jimenez, S.
    Marklund, E.
    Barbu, L. G.
    COMPOSITE STRUCTURES, 2024, 337
  • [7] Numerical simulation of fracture of concrete at different loading rates by using the cohesive crack model
    Morales-Alonso, Gustavo
    Rey-de-Pedraza, Victor
    Galvez, Francisco
    Cendon, David A.
    THEORETICAL AND APPLIED FRACTURE MECHANICS, 2018, 96 : 308 - 325
  • [8] Analysis of fracture tests of glass fibre reinforced cement (GRC) using digital image correlation
    Enfedaque, A.
    Galvez, J. C.
    Suarez, F.
    CONSTRUCTION AND BUILDING MATERIALS, 2015, 75 : 472 - 487
  • [9] Analysis of glass fiber reinforced cement (GRC) fracture surfaces
    Enfedaque, Alejandro
    Cendon, David
    Galvez, Francisco
    Sanchez-Galvez, Vicente
    CONSTRUCTION AND BUILDING MATERIALS, 2010, 24 (07) : 1302 - 1308
  • [10] Predicting the Behaviour of Fibre Reinforced Cement Treated Clay
    Nguyen, Lam
    Fatahi, Behzad
    Khabbaz, Hadi
    ADVANCES IN TRANSPORTATION GEOTECHNICS III, 2016, 143 : 153 - 160