Curtin University Homepage
  • Library
  • Help
    • Admin

    espace - Curtin’s institutional repository

    JavaScript is disabled for your browser. Some features of this site may not work without it.
    View Item 
    • espace Home
    • espace
    • Curtin Research Publications
    • View Item
    • espace Home
    • espace
    • Curtin Research Publications
    • View Item

    Matrix Design of Strain Hardening Fibre Reinforced Engineered Geopolymer Composite

    Access Status
    Fulltext not available
    Authors
    Nematollahi, B.
    Sanjayan, J.
    Shaikh, Faiz
    Date
    2015
    Type
    Journal Article
    
    Metadata
    Show full item record
    Citation
    Nematollahi, B. and Sanjayan, J. and Shaikh, F. 2015. Matrix Design of Strain Hardening Fibre Reinforced Engineered Geopolymer Composite. Composites Part B: Engineering. 89: pp. 253-265.
    Source Title
    Composites: Part B
    DOI
    10.1016/j.compositesb.2015.11.039
    School
    Department of Civil Engineering
    URI
    http://hdl.handle.net/20.500.11937/17011
    Collection
    • Curtin Research Publications
    Abstract

    The feasibility of developing a fiber reinforced engineered geopolymer composite (EGC) exhibiting strain hardening behavior under uni-axial tension has been recently demonstrated. The effect of different alkaline activators on the matrix and composite behavior of such EGC has also been evaluated to enhance its compressive and tensile strengths with relatively low concentration activator combinations. The focus of this study, as a follow up investigation, is to evaluate the quantitative influence of geopolymer matrix properties on the strain hardening behavior of the recently developed fly ash-based EGC with the aim of selecting the appropriate type of geopolymer matrix to manufacture the strain hardening EGC with enhanced elastic modulus while maintaining the tensile ductility behavior of the composite. The effects of water to geopolymer solids ratio, sand size and sand content, as the most significant matrix-related parameters, on the matrix properties including workability, compressive strength, elastic modulus, fracture toughness and crack tip toughness, and the uni-axial tensile performance of the composite were evaluated. Experimental results revealed that lowering the water to geopolymer solids ratio and the addition of sand enhanced the elastic modulus of the geopolymer matrix and composite in all cases. However, the excessive use of fine sand and the use of coarse sand adversely affected the strain hardening behavior of the developed EGC due to the increase of the matrix fracture toughness and the first-crack strength of the composite. Only geopolymer matrices with suitable fracture toughness, as defined by the micromechanics design model, maintained the desirable tensile ductility of the developed fly ash-based EGC.

    Related items

    Showing items related by title, author, creator and subject.

    • Tensile Strain Hardening Behavior of PVA Fiber-Reinforced Engineered Geopolymer Composites
      Nematollahi, B.; Sanjayan, J.; Shaikh, Faiz (2015)
      This paper is aimed to improve the mechanical properties (namely compressive and tensile strengths) of a recently developed fly ash-based engineered geopolymer composite (EGC) with relatively low-concentration activator ...
    • Tensile Strain Hardening Behavior of PVA Fiber-Reinforced Engineered Geopolymer Composite
      Nematollahi, B.; Sanjayan, J.; Shaikh, Faiz (2015)
      This paper is aimed to improve the mechanical properties (namely compressive and tensile strengths) of a recently developed fly ash-based engineered geopolymer composite (EGC) with relatively low-concentration activator ...
    • Comparative Deflection Hardening Behavior of Fly Ash-Based Geopolymer Composite with the Conventional Cement-Based Composite
      Nematollahi, B.; Sanjayan, J.; Shaikh, Faiz (2014)
      This paper compares the behavior of a recently developed fly ash-based ductile fiber reinforced geopolymer composite (DFRGC) exhibiting deflection hardening and multiple cracking behavior in flexure with its cement-based ...
    Advanced search

    Browse

    Communities & CollectionsIssue DateAuthorTitleSubjectDocument TypeThis CollectionIssue DateAuthorTitleSubjectDocument Type

    My Account

    Admin

    Statistics

    Most Popular ItemsStatistics by CountryMost Popular Authors

    Follow Curtin

    • 
    • 
    • 
    • 
    • 

    CRICOS Provider Code: 00301JABN: 99 143 842 569TEQSA: PRV12158

    Copyright | Disclaimer | Privacy statement | Accessibility

    Curtin would like to pay respect to the Aboriginal and Torres Strait Islander members of our community by acknowledging the traditional owners of the land on which the Perth campus is located, the Whadjuk people of the Nyungar Nation; and on our Kalgoorlie campus, the Wongutha people of the North-Eastern Goldfields.