• English
    • العربية
  • العربية
  • Login
  • QU
  • QU Library
  •  Home
  • Communities & Collections
View Item 
  •   Qatar University Digital Hub
  • Qatar University Institutional Repository
  • Academic
  • Student Thesis & Dissertations
  • College of Engineering
  • Civil Engineering
  • View Item
  • Qatar University Digital Hub
  • Qatar University Institutional Repository
  • Academic
  • Student Thesis & Dissertations
  • College of Engineering
  • Civil Engineering
  • View Item
  •      
  •  
    JavaScript is disabled for your browser. Some features of this site may not work without it.

    Wave Propagation Identification of Viscoelastic and Metallic Mechanical Metamaterials

    Thumbnail
    View/Open
    Ratiba Ghachi _ OGS Approved Dissertation.pdf (8.124Mb)
    Date
    2021-06
    Author
    Ghachi, Ratiba Fatma
    Metadata
    Show full item record
    Abstract
    Mechanical Metamaterials (MMs) are artificially engineered composites which have unconventional mechanical properties that stem from their microstructural geometry rather than from their chemical composition. Several studies have shown the effectiveness of viscoelastic MMs in vibration attenuation due to their inherent vibration dissipation properties. This study investigates different metamaterial wave transmission properties, namely viscoelastic phononic crystals and plates with locally resonant zigzags, hence giving rise to the two MMs vibration attenuation phenomena called Bragg scattering and local resonance. First, an analytical dispersion relation of an arbitrary multilayered crystal using the transfer matrix method was investigated. The analytical results from this computation served as a topology design tool for bilayered phononic crystals later in the study. Second, a multi-objective optimization was introduced to find the viscoelastic phononic crystal with the lowest vibration transmission in a targeted frequency range. Another objective was optimization of the phononic crystal mass since inertia correlates with vibration attenuation. Experimental testing and finite element analysis were used to support the optimization procedure. An electrodynamic shaker was used to measure the vibration transmission of the three control specimens and the optimal specimen in the frequency range of 1 to 1200Hz.
    DOI/handle
    http://hdl.handle.net/10576/21594
    Collections
    • Civil Engineering [‎55‎ items ]

    entitlement


    Qatar University Digital Hub is a digital collection operated and maintained by the Qatar University Library and supported by the ITS department

    Contact Us | Send Feedback
    Contact Us | Send Feedback | QU

     

     

    Home

    Submit your QU affiliated work

    Browse

    All of Digital Hub
      Communities & Collections Publication Date Author Title Subject Type Language Publisher
    This Collection
      Publication Date Author Title Subject Type Language Publisher

    My Account

    Login

    Statistics

    View Usage Statistics

    Qatar University Digital Hub is a digital collection operated and maintained by the Qatar University Library and supported by the ITS department

    Contact Us | Send Feedback
    Contact Us | Send Feedback | QU

     

     

    Video