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

    The thermally induced interfacial behavior of a thin two-dimensional decagonal quasicrystal film

    Access Status
    Fulltext not available
    Authors
    Dang, H.
    Qi, D.
    Zhao, M.
    Fan, C.
    Lu, Chunsheng
    Date
    2024
    Type
    Journal Article
    
    Metadata
    Show full item record
    Citation
    Dang, H. and Qi, D. and Zhao, M. and Fan, C. and Lu, C. 2024. The thermally induced interfacial behavior of a thin two-dimensional decagonal quasicrystal film. International Journal of Fracture. 246 (2-3): pp. 103-116.
    Source Title
    International Journal of Fracture
    DOI
    10.1007/s10704-023-00698-8
    ISSN
    0376-9429
    Faculty
    Faculty of Science and Engineering
    School
    School of Civil and Mechanical Engineering
    URI
    http://hdl.handle.net/20.500.11937/95907
    Collection
    • Curtin Research Publications
    Abstract

    In this paper, the interfacial behavior of a thin two-dimensional decagonal quasicrystal (QC) film bonded on an elastic substrate is investigated due to a material mismatch strain under thermal variation. The non-slipping contact condition is assumed at interface. The Fourier transform technique is used to transfer the problem as an integral equation in terms of the phonon interfacial shear stress, which can be numerically solved by introducing the series expansion of Chebyshev polynomials. The expressions are explicitly presented for the phonon interfacial shear and internal normal stresses, the horizontal displacement of QC film, and the stress intensity factors. In the numerical calculation, the effects of material mismatch, the geometry of QC film, and temperature variation on the stresses, displacement and stress intensity factors are briefly discussed. It is expected that the results will be helpful to the design and safety assessment of a QC film/substrate system in engineering applications.

    Related items

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

    • On the interfacial behavior of two-dimensional decagonal quasicrystal films with an adhesive layer due to thermal misfit
      Dang, H.Y.; Qi, D.P.; Fan, C.Y.; Lu, Chunsheng ; Zhao, M.H. (2024)
      The interfacial behavior of a thin two-dimensional decagonal quasicrystal (QC) film bonded to a half plane with an adhesive layer is analyzed under thermal misfit. Under a perfect non-slipping contact condition at interface, ...
    • Thermal-induced interfacial behavior of a thin one-dimensional hexagonal quasicrystal film
      Dang, H.; Qi, D.; Zhao, M.; Fan, C.; Lu, Chunsheng (2023)
      In this paper, we investigate the interfacial behavior of a thin one-dimensional (1D) hexagonal quasicrystal (QC) film bonded on an elastic substrate subjected to a mismatch strain due to thermal variation. The contact ...
    • On the Thermally Induced Interfacial Behavior of Thin Two-Dimensional Hexagonal Quasicrystal Films with an Adhesive Layer
      Dang, H.; Zhang, W.; Fan, C.; Lu, Chunsheng ; Zhao, M. (2024)
      The mechanical response of a quasicrystal thin film is strongly affected by an adhesive layer along the interface. In this paper, a theoretical model is proposed to study a thin two-dimensional hexagonal quasicrystal film ...
    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.