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    Flexural behaviour of ambient cured geopolymer concrete beams reinforced with BFRP bars under static and impact loads

    91474.pdf (3.772Mb)
    Access Status
    Open access
    Authors
    Huang, Z.
    Chen, Wensu
    Hao, Hong
    Chen, Z.
    Pham, Thong
    Tran, Tung
    Elchalakani, M.
    Date
    2021
    Type
    Journal Article
    
    Metadata
    Show full item record
    Citation
    Huang, Z. and Chen, W. and Hao, H. and Chen, Z. and Pham, T.M. and Tran, T.T. and Elchalakani, M. 2021. Flexural behaviour of ambient cured geopolymer concrete beams reinforced with BFRP bars under static and impact loads. Composite Structures. 261: ARTN 113282.
    Source Title
    Composite Structures
    DOI
    10.1016/j.compstruct.2020.113282
    ISSN
    0263-8223
    Faculty
    Faculty of Science and Engineering
    School
    School of Civil and Mechanical Engineering
    Funding and Sponsorship
    http://purl.org/au-research/grants/arc/FL180100196
    URI
    http://hdl.handle.net/20.500.11937/91650
    Collection
    • Curtin Research Publications
    Abstract

    The applications of GeoPolymer Concrete (GPC) with basalt-fiber-reinforced-polymer (BFRP) reinforcements could be alternative for conventional structural designs with Portland Cement Concrete reinforced with steel bars for green and sustainable constructions. Very limited studies, however, have been carried out to investigate the performance of GPC beams reinforced with BFRP bars subjected to static loads, and no study of their performance under impact load is available in open literature yet. In this study, ambient-cured GPC beams reinforced with BFRP bars were tested under static and impact loads. Their damage modes, static and dynamic responses were recorded and analysed. The test results showed that the beams experienced flexural failure mode under static load while combined flexure-shear failure mode was observed under impact load. The impact-loading tested beams were further statically loaded to examine their residual capacities. Additionally, numerical models of the tested GPC beams were developed adopting the commonly used concrete material model *Mat_072R3 (KCC model) in LS-DYNA with modified parameters based on the GPC material testing data. The calibrated numerical model was used for parametric simulations. The results showed that with the increased impact velocity, failure mode of the beam shifted from the flexure-governed to punching-shear-governed along with the rupture of longitudinal BFRP bars.

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